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Title: Practical podiatry
Author: Alfred Joseph
E. K. Burnett
Reuben H. Gross
Editor: Maurice J. Lewi
Release date: July 29, 2026 [eBook #79224]
Language: English
Original publication: New York: The First Institute of Podiatry, 1918
Credits: deaurider and the Online Distributed Proofreading Team at https://www.pgdp.net (This file was produced from images generously made available by The Internet Archive)
*** START OF THE PROJECT GUTENBERG EBOOK PRACTICAL PODIATRY ***
[Pg iii]
PRACTICAL PODIATRY
BY
ALFRED JOSEPH
Senior Professor of Podiatry, The First Institute of Podiatry;
Ex-President, Nat’l. Ass’n. Chiropodists; Editor, Pedic Items.
E. K. BURNETT
Professor of Clinical Podiatry, The First Institute of Podiatry;
Vice-President, Nat’l. Ass’n. Chiropodists; Editor, The Podiatrist.
REUBEN H. GROSS
Professor of Didactic Podiatry and Registrar, The First Institute of
Podiatry; Associate Editor, Pedic Items.
EDITED BY
MAURICE J. LEWI, M.D.
President, The First Institute of Podiatry; Ex-Secretary, N. Y.
State Board of Medical Examiners; formerly Professor of Medical
Jurisprudence, Albany Law School; Ex-President, Albany Co. Medical
Society; formerly Instructor, Albany Medical College; Member, American
Medical Association; Member, N. Y. State Medical Society; Member N. Y.
Co. Medical Society, etc.
PUBLISHED BY
THE FIRST INSTITUTE OF PODIATRY 213-215-217 WEST 125TH STREET NEW YORK
[Pg iv]
Copyright, Maurice J. Lewi, 1918
The William G. Hewitt Press Brooklyn, N. Y.
[Pg v]
TO THE MEMORY OF
George Erff and Elliott W. Johnson,
builders of the foundation upon which
the edifice of modern podiatry is
reared, this book is reverently and
appreciatively dedicated.
[Pg vi]
The beauties of contour of the human foot,
coupled with its strength to perform the functions
for which it was created, caused the
ancient Greeks to glorify it in song and in art.
Medically and surgically it has always been a
negligible factor in the world of science, notwithstanding
the burdens which it is made to
bear and in spite of the interference with locomotion
and with general health which this
non-care has occasioned for all centuries since
creation. Our propaganda recognizes the importance
of this part of the anatomy and is
causing the race to realize the need for foot care
in health and for scientific foot treatment
in disease.
This volume has been compiled by men who started out in life
as chiropodists. They have lived to see the genesis of podiatry
from the trade which was theirs, and each of them has
taken active part in the efforts which marked the transition from
the old to the new order of things. The period of evolution has
been extremely brief. Five short years have sufficed to transform
the corn-cutters’ trade to the podiatrists’ profession.
One of the programmed features of the educational development
of podiatry was the creation of a scientific literature bearing
upon the practice of this branch of medicine. The earliest manifestation
along the lines of this progress was the production of “The
Text Book of Chiropody.” This ponderous tome (1183 pages)
contained matter pertaining to the teaching of medical and other
scientific subjects that led up to the study of chiropody and to
practical chiropody itself. The chapters on this latter topic were
the first attempts of a scientific nature to collect material relating
to podiatry practice. In consequence, the articles were few and
their contents were meagre. Nevertheless this pioneer attempt to
array chiropodical facts and methods of treating foot lesions
proved efficacious in stimulating members of the chiropody profession
to the higher educational needs, and all over the english speaking
globe this literature was hungrily masticated and digested
by individual practitioners and by chiropody societies.
Bright and intelligent members of the profession utilized the
material thus furnished them by practically applying suggested
treatments and methods. Aspiring to augment their own knowledge
and to add to this literature, they wrote up their experiences
and, from time to time, their matured deductions were given publicity
through the columns of “The Pedic Items” and “The Podiatrist.”
The instructors on the faculties of the various chiropody
teaching institutions, utilized these chapters in their pedagogic work,
and medical practitioners turned to them to gain their first concrete
knowledge of the subjects which they treated. These initial
chapters thus filled an acute want and so proved their worth.
[Pg x]
In this volume, a more serious task has been undertaken. Each
article will be found to have been prepared with a view to presenting
the subject matter in its entirety, in scientific order and with
accuracy. There has been no guessing as to cause and effect. Empiricism
finds no place in these pages. The medical and surgical
viewpoint is continuously in evidence and “Practical Podiatry”
thus becomes the first medical work of its kind ever published, a
sad commentary on the negligence of medical teachers and medical
practitioners who have thus permitted non-medical graduates
to compile the first facts relating to an important branch of medicine.
The erstwhile tabooed “corn-cutter” thus becomes a leader
in a collateral branch of medicine, and medical practitioners are
compelled to glean their knowledge of this subject from laymen,
who, without their material, moral or monied support—yes, often in
spite of obstacles which medical practitioners have placed in their
way—have succeeded in clearly and scientifically portraying features
of essential medical practice which are to aid materially in
creating a better species of the genus homo, and in relieving the
woes of our race. Podiatrists may well feel a pride in this achievement
and medical practitioners would do well to take home the
lesson of indifference which this incident discloses.
Podiatry has not alone enriched the scholastic literature of
medicine, but has also augmented the language of science. New
terms have had to be coined to properly designate conditions, diseases
and instruments. In order that these may be understood by
the readers of this volume, their purport is given in the general
glossary which will be found in the book. The etymologic construction
of these new words is not explained because their origin will be
readily apparent from their definitions.
“Surgery with special reference to Podiatry” was the first
volume of this series to be published. In presenting “Practical
Podiatry” to the profession and to the public, the second rung in
the ladder of podiatry literature has been created and within two
years it is hoped that the “System of Podiatry,” of which both of
the above volumes are a part, will have been completed.
Thus will be constituted a library for practitioners and
students of podiatry which it is hoped will ever prove creditable
to its sponsors, profitable to the profession and helpful to humankind.
M. J. L.
[Pg 1]
CHAPTER I
THE RECENT HISTORY OF
PODIATRY
The first steps in the movement for the enactment of a
law governing the practice of chiropody in the United
States were made in the state of New York, when, in 1895
C. S. Levy, H. Levy, L. B. Rosenberg, H. Mayer, E. Werther
and M. M. Marks met at the residence of C. S. Levy to discuss
this matter. As a result of this meeting, a bill drafted
by Maurice Marks, a well known New York lawyer, was
subsequently presented to the New York State legislature.
John B. Stanchfield, leader of the assembly, spoke at length
on the question of “feet” and amid mirth and laughter (the
question was considered somewhat of a joke), the bill was
passed by the lower house. Shortly thereafter, the senate
took similar action on the bill, whereupon Governor Morton
promptly signed it.
In accordance with the provisions of the law, the Pedic
Society of the State of New York was organized on the 3rd
of June, 1895, and R. H. Westervelt was elected president,
George Erff, treasurer and Louise Hartogensis, secretary.
Wm. D. Gaige, Jonas M. Heimerdinger and L. B. Rosenberg
were selected as the first board of examiners.
R. H. Westervelt served as president of the society for
a period of two years, when he was succeeded by Elliott W.
Johnson, who acted as chief executive officer for fifteen
years. George Erff was the next president and he in turn
was succeeded by Alfred Joseph, J. P. Solomon and Ernest
Graff.
The affairs of the society improved with each succeeding
[Pg 2]year, and much of the credit of its success should go to
Maurice M. Marks, who acted as attorney for the society,
and in addition, assisted wherever he could.
BIRTH OF “THE PEDIC ITEMS”
“The Pedic Items,” which has done so much to advance
the calling of podiatry, is the child of Alfred Joseph. In
1906 he outlined a plan to the members of the Pedic Society
of the State of New York, whereby a journal could be
created and conducted profitably. On January 1st, 1907, a
leaflet called the “Pedic Society Items” was sent to the
members. On April 1st, 1907, a four page paper was published,
and after that Alfred Joseph was offered the position
of editor. The “Items” appeared every four months for
the first few years of its existence, and finally became a
monthly paper which has grown to a sixty-four page book,
and even this is inadequate to convey all that is new and of
interest to the members of the profession. This book is now
current podiatry literature in every english speaking country
in the world. A number of chiropody publications have
appeared from time to time, most of them, of no scientific
value, and they died an early death. The newest paper,
“The Podiatrist,” is a thoroughly scientific journal, that
has already found a place in the profession; it is edited and
published by E. K. Burnett, one of the progressive members
of the podiatry profession, and appears once each month.
FIRST SCHOOL OF CHIROPODY
At the March, 1911 meeting of the Pedic Society of the
State of New York, Alfred Joseph, as chairman of a committee
appointed to take the matter under advisement, read
a report on the question of organizing a school, and asked
that moneys be subscribed for the purposes of incorporating
such an institution. In a short time, over $1,200.00 was subscribed
and the corporation known as “The Chiropodists of
[Pg 3]America” came into existence, with George Erff, president
and Alfred Joseph, secretary.
This school was conducted along commercial lines, and
although its purposes were good, it did not meet the standards
which its promoters were hopeful of establishing for
it and which it later secured through the action of the
Regents of the University of the State of New York.
THE NATIONAL ASSOCIATION OF CHIROPODISTS
The October, 1911, issue of “The Pedic Items” contained
the first announcement of a proposed plan to organize
a national association of chiropodists. All chiropodists
were invited to become members, and after a mail vote,
Chicago was selected as the first convention city. On July
1st, 2nd, and 3rd, after the usual preliminaries, the organization
was completed, and Alfred Joseph, who was the organizer
of the association, was elected president. Ernest
Graff was elected secretary-treasurer. This organization
has grown from 225 members at its first meeting, to the
present large society of over 1,000 members. The influence
of the N. A. C. is and has been decidedly salutory, and its
organizers can well be proud of the work they have accomplished.
CHANGE IN THE CHIROPODY LAW OF NEW YORK
The members of the Pedic Society of the State of New
York, after a brief experience, realized the shortcomings of
the original law which governed the practice of chiropody.
They sought to advance their calling and to provide so that
those entering the profession should be properly equipped.
A committee of the Pedic Society of the State of New
York composed of George Erff, Maurice Marks and Alfred
Joseph, called upon Edward Milton Foote, M. D., a prominent
surgeon, for advice as to procedure. Dr. Foote, in
turn, advised that the secretary of the N. Y. State Board
[Pg 4]of Medical Examiners be consulted. Thus it came to pass
that these gentlemen met Maurice J. Lewi, M. D.
Dr. Lewi listened attentively to the request of the committee
that he devise ways and means for improving the
then inefficient chiropody law, fell in heartily with their
objects and after outlining a plan of procedure, drafted a
bill which, after receiving the sanction of the State education
authorities, was introduced in the legislature. The bill
was unanimously passed and became a law September 1st,
1912. Thereupon the State Education Department delegated
Dr. Lewi to outline a standard for chiropody schools
which they promptly adopted. Much to the surprise of the
officials of the New York School of Chiropody, these standards
were so high that they feared it would be impossible for
them to carry them into effect.
Conducting a school along the lines set by the State
made it necessary to engage as its head one who was a
medical practitioner, an educator, an executive and a man
of character. Where was such a man to be found? After
much deliberation and numerous consultations, the committee
of the Pedic Society decided that there was but one man
known to them who combined all of these attributes and he
was the very individual who had guided them in seeking to
advance their profession, Dr. Lewi. When the proposition
was put to Dr. Lewi, he declined with thanks on the ground
that his position as Secretary of the State Board of Medical
Examiners was to his liking. The committee was insistent
and pleaded with him to reconsider his determination. For
three months the committee and their friends labored with
Dr. Lewi and finally, after making certain stipulations which
placed the management of the school in his sole charge, he
capitulated, and on January 1st, 1913, he assumed the presidency
of the reorganized School of Chiropody of New York.
With meagre funds, but with earnest zeal he commenced his
task and soon surrounded himself with a splendid faculty
and with a modest but sufficient equipment. The school has
flourished. It behooves every member of the profession of
[Pg 5]podiatry to remember that had it not been for the broad-mindedness
and the foresight of Dr. Lewi, this calling which
is gradually taking its place as a legitimate branch of
medicine, would still be the trade it was, and the podiatrists
of today would still be the “corn-cutters” of yesterday.
On September 27th, 1917, the Regents of the University
of the State of New York granted a provisional charter to
The First Institute of Podiatry and henceforth the School
of Chiropody of New York will be known by that title.
THE DEVELOPMENT OF OTHER SCHOOLS
After the organization of the new regime in podiatry
education, the old system of conducting schools for gain
only, was gradually eliminated and the need for schools to
teach foot ills in a scientific manner, became apparent.
Since the organization of The First Institute of Podiatry,
several other institutions have come into existence whose
purpose is to equip their students to be true podiatrists.
The California College of Chiropody, situated in San
Francisco, is the only institution west of Chicago, imparting
knowledge of this character. In the middle west, the City
of Chicago boasts of two schools, viz.: the Illinois College
of Chiropody and the Chicago School of Chiropody. The
State of Ohio is well represented by the Ohio College of
Chiropody in the City of Cleveland. Temple University of
Philadelphia, Pa., has a Department of Chiropody and is
educating specialists in conjunction with its medical course.
The latest addition to chiropody teaching institutions is
the University of Massachusetts in East Cambridge,
Mass.
All of these institutions are endeavoring to educate
their students along ethical and scientific lines, and it is
but a question of time when they will have attained the
status and educational influence of The First Institute of
Podiatry.
[Pg 6]
ORGANIZATION OF PEDIC SOCIETIES
After the Pedic Society of the State of New York had
been conducting its affairs for several years, podiatrists
throughout the country, recognizing the advantages to be
derived from a conjunction of individual interests into
groups, created organizations in thirty-seven States of the
Union. It is safe to predict that within the next five years,
there will be a podiatry organization in each of the remaining
States not now so organized.
Activities along these lines have not been limited to the
United States alone. In England, the Incorporated Society
of Chiropodists is a flourishing body, boasting a large membership.
Ernest G. V. Runting is president of that organization
and he and many others in the British Isles are
helping to make podiatry a real profession. The other
European countries are not progressive in podiatry work
(possibly due to the war situation), but as the United States
and Great Britain advance, so will the other nations follow.
It is unfortunate that the people of many of these European
countries do not fully appreciate the value of scientific foot
treatment, but, as in other educational branches, it is only
a question of time when every government in the civilized
world will recognize the necessity for a full study of this
important branch of medical science, and will also pass laws
regulating podiatry practice.
In the United States, one of the first states to follow the
example of New York, was California. In July, 1901,
George Koenigstein called a meeting of the chiropodists
in San Francisco, and an organization known as the San
Francisco Chiropodists Association was formed. This
society had for its prime purpose, the passing of a law
governing the practice of chiropody in the State of California;
the organization elected no regular set of officers
but held desultory meetings once or twice a month at the
office of Charles L. Scharff.
The bill that this society formulated was presented to
[Pg 7]the legislature at Sacramento and Drs. Scharff and Koenigstein
were delegated to press it to passage. They worked
like Trojans but to no avail. The bill was pigeon-holed and
nothing more was heard of it. Subsequently the Society
died a peaceful death.
In 1907, following the great fire in San Francisco, a
few chiropodists again attempted to pass legislation in California,
but this endeavor was also fruitless. In the latter
part of 1911 and in the early part of 1912, stimulated by an
article relating to the subject which appeared in “The Pedic
Items,” and fully realizing the benefits of chiropody organization,
if properly conducted, several California practitioners
were elected to membership in the National Association.
Among these were Oscar L. Gruggel, S. Rutherford
Levy, and Charles L. Scharff. These men became N. A. C.
propagandists, and secured the applications of others in
California for membership in the National Association. On
January 12th, 1912, The Pedic Society of the State of California
was permanently organized and chartered. Its first
officers were, S. Rutherford Levy, President; William F.
Leck, First Vice-President, Oscar L. Gruggel, Second Vice-President;
H. H. Katz, Third Vice-President; Charles L.
Scharff, Secretary-Treasurer; Z. L. Comet, Sergeant-at-arms,
and F. Schilling, Counsel for the Society.
This society attempted to pass a State law regulating
the practice of chiropody (in 1913) and a bill drafted for the
purpose by Mr. Schilling, was presented to the legislature.
By almost superhuman effort on the part of every member
of the society, the bill passed both houses of the legislature,
but the Governor vetoed it on the ground that he was
opposed to the creation of new State Commissions.
Dismayed, but not disheartened, the legislative committee
immediately made arrangements to carry on the fight at
the next session of the legislature. The new bill introduced,
instead of creating a separate commission, placed the supervision
of chiropody practice in the hands of the existing
State Board of Medical Examiners. Changes agreeable to
[Pg 8]all concerned were made, and in the 1915 session of the
legislature, the Benson Medical Act, 443, to regulate the
practice of podiatry in California, was passed by both
houses. On June 8th, the bill was signed by the Governor
and the law became effective August 8th, 1915.
In the State of Illinois, the first organization was effected
in September, 1904. A charter was applied for and
granted to Charles Kenison, Nicholas Von Schill, Frank
Johnson and Ignace J. Reis. The officers elected were,
Charles Kenison, President; Leonard Lower, Vice-President;
C. G. Sims, Treasurer and Ignace J. Reis, Secretary.
On September 18th, 1912, the temporary organization of
The Illinois Pedic Association was effected. The organization
was made permanent on October 2nd, 1912, and the
following were elected as the first officers:
President, Ignace J. Reis; Vice-President, Maximilian
Pincus, M. D.; Secretary, Henry Schmidt; Treasurer, John
Kenison; Trustees, Leonard A. Lower; Henry J. Riegelhaupt;
Charles Kenison; Counsellors, Frank S. Lower,
M.D., H. P. Kenison, M. Pincus, M.D.
In the year 1906, S. L. Lawton of Fall River, Mass.,
consulted with F. J. Coughlin of Boston as to the advisability
of forming a state chiropody association. Harry
P. Kenison of Boston was advised with and readily fell in
with the plans. As a result, a meeting was called at the
office of the latter and the Massachusetts Association was
created. The first officers were J. P. Buntin, Boston, President;
S. D. Lawton, Fall River, Vice-President; F. J.
Coughlin, Boston, Secretary-Treasurer, and the following
Directors: H. P. Kenison, F. E. Davis, C. R. Watkins, A.
M. Brackett, W. E. Lee and G. M. Pettingill. This society
has flourished and, due to the efforts of several of its members,
including the present president of the N. A. C., H. P.
Kenison, the present law governing the practice of
chiropody in Massachusetts was passed. This was accomplished
in spite of strenuous opposition on the part of
[Pg 9]medical practitioners and a few disgruntled chiropodists
within and out of the organization.
In the West, there is gradually springing up a progressive
spirit in all that pertains to podiatry. Much of this
spirit has been created through the efforts of a few practitioners
in the State of Colorado who have been extremely
active in the past few years. In 1914, Bertha De Wolfe,
having taken a course at the School of Chiropody of New
York, located in the City of Denver. Realizing the necessity
of organization, she immediately set to the task, and in
December of that year, the Colorado Pedic Society held its
first meeting. It was incorporated, January, 1915. Its first
officers were, C. S. Rees, President; A. M. Parker, first Vice-President;
Lucy Ballou, second Vice-President;
Bertha De Wolfe, Secretary-Treasurer.
The late Benjamin Oelsner of Bridgeport, Conn., was
always an active member of the profession, and through his
efforts, the Connecticut Pedic Society was organized, in the
city of New Haven, March 23rd, 1910. This organization
has grown rapidly, and because of its activities, Connecticut
now has a chiropody law on its statute books.
The Rhode Island Chiropodists Society was organized
November 8th, 1914, largely through the efforts of Alfred
C. Moran, who represented the National Association of
Chiropodists in that section of the country. This organization
is gradually growing, and since the convention of the
N. A. C. which was held in Providence, R. I., many practitioners
who previously showed no interest in the union of
podiatry forces, have become active workers in the interests
of the profession. The officers of The Rhode Island Chiropodists
Society are Charles T. Heilborn, President; Henry S.
Batchelder, first Vice-President; F. S. Sargent, second
Vice-President; Alfred C. Moran, Secretary-Treasurer.
LAWS GOVERNING PODIATRY PRACTICE
Since the first law governing the practice of podiatry
passed in the State of New York, eighteen other
[Pg 10]states have taken similar action. The National Association
of Chiropodists has been largely responsible
for most of the success along these lines. The committee
in charge of legislation has been a most active one, and its
usefulness may be realized, when it is recorded that during
the period from August, 1916, to July, 1917, six states in
the union passed laws regulating the practice of podiatry.
As the profession advances, and the academic requirements
are increased, the laws are so changed as to create a greater
scope of endeavor for our practitioners. Thus in some
states the law permits the podiatrist to perform operations
of a major nature, while in others the practice is limited
to structures involving the true skin only. It is safe to
predict that in a few years, every state in the union will have
enacted legislation regulating the practice of podiatry. The
states now governed by such laws (New Jersey was the
first) are Colorado, California, Connecticut, Illinois, Louisiana,
Maryland, Massachusetts, Michigan, Minnesota, New
Jersey, New York, Ohio, Pennsylvania, Rhode Island, Vermont,
Virginia, Washington, West Virginia and Wisconsin.[1]
Educators and the public generally throughout the entire
country are beginning to realize the value of scientific
foot care, and where the chiropodist was derided and scoffed
at years ago, the podiatrist of today is gradually taking
the place he so rightly deserves, at the side of the members
of the other professions, honored and respected as a well
trained, educated man who is proving a benefactor to the
human race. So it is, that the schools of chiropody are
being developed, and in a few years when the academic
requirements will have become the same as for the other
professions, the courses of study at these schools will run
on all fours with the schedules of study maintained at
medical schools.
[Pg 11]
CHAPTER II
THE SKIN
Podiatry deals largely with ailments involving the skin
or its appendages and it is deemed advisable to describe
briefly the anatomy and physiology of that organ, so as to
refresh the memories of those who study this work.
It is not the intention of the authors to enter deeply
into this subject and the reader is referred to the works in
this series which deal exclusively with anatomy and physiology,
for a more intimate knowledge of the skin. It is an
accepted fact that no one can intelligently comprehend
[Pg 12]pathology without knowing the normal structure and functions
of the tissues of the body to be considered, and it is
for that reason that the pages to follow have been written.
The skin as a whole is composed of two distinct layers
resting upon a third structure, the subcutaneous tissue.
The outer portion is called the epidermis, cuticle or scarf
skin, and is without blood and nerve supply, while the inner
portion is called the corium, derma or cutis vera, and contains
the capillary loops and nerve endings.
THE EPIDERMIS
The Epidermis is divided into four layers, named from
without inward, the stratum corneum, the stratum lucidum,
the stratum granulosum and the stratum mucosum or rete
Malpighii.
The Stratum Corneum, or horny layer of the skin, is
composed of many layers of horny, non-nucleated scales
which are being continuously displaced by exposure to
weather, water, etc., and are being as continuously renewed
by the deeper layers. This layer of the skin is involved in
the simpler foot lesions such as heloma and callositas.
The Stratum Lucidum, or clear layer of the skin, is composed
of a few rows of transparent cells, without distinct
boundary, and, except on the palms and soles, is considered
a part of the stratum corneum. It is composed of from two
to four layers of cells, which are like the cells of the horny
layer except that they are brighter and more homogeneous.
This layer is not often clearly defined and is of no importance.
The Stratum Granulosum, or granular layer of the skin
is composed of several rows of polygonal shaped cells which
are well marked on the soles of the feet. The nuclei of the
cells are not well defined and the cell itself refracts light.
[Pg 13]The granules found in this layer are varied in shape and
contain a fluid called eleidin and a peculiar solid substance
called keratohyalin. This substance is derived from the
cytoplasm of the cells and represents the first process in
the cornification of the cells in the outer layers of the
epidermis.
The Stratum Mucosum, or mucous layer of the skin,
usually called the rete, or rete Malpighii, is the deepest and
most important layer of the epidermis. The basal layers
of cells are separated from the corium by a basement membrane
or membrana propria, and these layers, which are
made up of columnar cells, contain the pigment of the skin.
The next few layers show elongated, oval or rounded shaped
cells, the form varying with the locality, the tendency being
to a rounded shape, owing to the more even pressure on the
cells from above and below. The cells are irregularly
formed and are made up of a soft substance with large oval
or rounded nuclei. In the intercellular spaces is found a
fluid which is nutrient in character. In the stratum
mucosum are found the prickle cells. These cells have hairlike
processes on them which serve to hold the cells together.
THE DERMA
The Derma, or Corium, is divided into two layers, the
outer, called the papillary layer, or pars papillaris, and the
inner, called the reticular layer, or pars reticularis. It is
composed of bundles of fibrous tissue, yellow elastic tissue
and connective tissue cells, the reticular layer being more
compact than the papillary layer. The derma contains blood
vessels, nerves, lymphatics, touch corpuscles, hairs, sweat
glands and sebaceous glands.
The Papillary Layer of the skin is composed of small
conical elevations called papillæ, which blend with the prolongations
of the rete above. The best developed papillæ
are found on the under or flexor surfaces of the fingers and
toes and attain their greatest length at this point. They are
[Pg 14]placed in double rows that underlie the cutaneous ridges on
the fingers and toes. These cutaneous ridges remain unchanged
throughout life and are so characteristic of each
individual, that they are used as a means of detecting and
identifying criminals and others. Papillæ of two kinds are
noticed, the one being very well supplied with blood vessels,
and are called vascular, the others being only scantily supplied
with blood, containing medullated nerves, and are
called sensory papillæ.
The Reticular Layer of the derma is composed of loosely
arranged bundles of connective tissue which merge with the
papillary layer without a distinct line of demarcation. In
these bundles of connective tissue are found the sweat
glands, the sebaceous glands, the hair follicles and the
deeper lymphatics. This layer of the derma is made up of
fasciculi of connective tissue which blend into each other
obliquely and give it a plexiform appearance. As the
bundles ascend towards the surface they divide into smaller
and finer bundles, and when the papillary layer is reached,
they have a close, felt-like appearance.
The Subcutaneous Areolar Tissue, or tela subcutanea,
connects the skin with the deeper structures and should be
considered a part of the true skin. It is made up of loosely
arranged bundles of connective tissue which cross each
other repeatedly and form well defined spaces. These
spaces contain fat, and where there are large quantities
of this fat, as on the soles of the feet, the tissue is designated
as adipose. The subcutaneous areolar tissue also contains
the deeper hair follicles and the deeper sweat glands.
Blood Supply. The layers of the epidermis are without
vascular supply, but the derma and the subcutaneous tissue
are well supplied with blood vessels. There are two plexuses,
one superficial in the upper layer of the derma, and
the other deep, in the subcutaneous tissue. The vessels of
the upper layer arise from the deeper plexus and give off
branches in all directions supplying the hair follicles, sweat
and sebaceous glands. The papillary layer is richly supplied
[Pg 15]with delicate capillaries, which terminate in the
papillæ, and are called capillary loops.
Lymphatics. The lymphatics follow the vessels in a
general way, there being two plexuses, viz.: deep and superficial.
Lymph spaces are found in the rete Malpighii, which
connect with the channels of those in the derma. The
papillæ and the glands also have lymph channels.
Nerve Supply. The skin contains both medullated and
non-medullated nerve fibres; these fibres are especially
abundant in the soles of the feet and at the ends of the toes.
They enter the skin with the more important ascending
blood vessels. The non-medullated nerves terminate in the
rete as fine filaments, and the medullated nerves end in the
corium and subcutaneous tissue in special terminals called
corpuscles. Examples of these are Pacinian corpuscles,
tactile corpuscles and the end bulbs of Krause.
In addition to the sensory nerves, the skin also contains
vasomotor nerves. These nerves are found on the smooth
muscles of the skin and on all glands having such muscles,
and have a direct action on these glands.
Muscles. Both striated and non-striated or smooth
muscles are found in the skin. Those of the latter variety
are most common, while the former are sparingly found.
The smooth muscle fibres are found in connection with
the hair follicles, the sebaceous and the sudoriferous glands,
and they act upon these organisms.
Sudoriferous Glands. The sudoriferous glands, or
sweat glands, are found in the reticular layer of the corium
and in the subcutaneous tissue. They are simple tubular
glands which are coiled into globular shape. The tubule of
the gland empties into a gland duct which passes through
the corium and the epidermis and opens on the surface of
the skin in a funnel-shaped sweat pore. The sweat glands
are very numerous, particularly on the soles of the feet.
It is estimated that there are 2,000,000 sweat glands in the
adult human body.
Sebaceous Glands. The sebaceous glands, or oil glands,
[Pg 16]are found in the reticular layer of the derma, usually
associated with or in close proximity to a hair follicle. They
may occur independent of the hairs however, as is the case
in the lips. They vary in size from a simple pouch to a
many pouched or multilobular gland. These pouches empty
into a common duct, which in turn empties between the
hair and the inner sheath. The ducts secrete sebum, which
consists of fatty degenerated cells, in which is found epithelial
waste matter. The sebum keeps the skin and the hair
soft and oily.
NAILS
The Nails are a specialized form of epidermis, and are
considered by many to correspond to the stratum lucidum
of that structure. They are horny, elastic, transparent,
quadrilateral plates, and are found at the distal ends of the
fingers and toes, on their dorsal surfaces. The nails are
convex on the outer surface and concave within. The nail
itself is called the body and rests upon the nail bed. It has
a free edge distally and two lateral and a proximal or short
edge which latter lie in a groove called the nail or ungual
fold. The ungual wall overlies the lateral and proximal
portions. The nail is embedded into the derma at its
proximal end by a root. This part of the nail is found
beneath the ungual wall and is composed of cells which have
not yet become horny.
The thin layer of skin, which extends forward from
the nail groove at the beginning of the body of the nail, is
called the eponychium or nail skin. The lunula is the little
whitish, crescentic spot, a portion of the nail bed, which is
found in front of the nail fold, and extends to the lateral
edges of the nail.
The matrix of the nail is situated beneath the
root of the nail, and is so-called because it is from this
structure that the nail is produced. The matrix is thick,
and raised in a series of longitudinal ridges, which are
readily seen through the transparent nail tissue. It corresponds
[Pg 17]to the mucous layer of the epidermis, and is
essentially of the same structure. The matrix is highly
vascular, which accounts for the pink color seen through
the nail, except at the lunula.
PHYSIOLOGY OF THE SKIN
The functions of the skin may be subdivided as follows:
Touch Organ
Protective Covering
Excretory and Secretory Organ
Temperature Regulator
Organ of Respiration
The skin acts as a touch organ or as an organ of tactile
sensibility; this power is supplied by special bodies found
in the papillæ. The degrees of consistency, of size, of form
and of other qualities are recognized by this function.
Other sensations are conveyed by these special nerve endings,
such as heat and cold, burning, itching, tingling, etc.
The sense of touch is well developed, particularly in the
skin at the ends of the fingers, and this sense may be
farther increased, as is the case with blind persons.
The skin acts as a protective organ to the body within,
by excluding harmful agents such as bacteria, chemicals,
heat, cold, etc. It is elastic and thick and is without sensation
and thus protects the delicate structures beneath it
from injury from various causes.
The functions of excretion and of secretion are performed
by the glands. The sudoriferous, or sweat glands,
excrete the perspiration, and in this way also act as elimination
organs, accessory to the kidneys. The body is continuously
sweating. When there is no indication of this
function, when the skin seems dry, the name “insensible
perspiration” is applied; when the function is apparent, by
the formation of drops of moisture on the surface, it is
called “sensible perspiration.”
The sebaceous glands are organs of secretion. They
[Pg 18]give off an oily substance called sebum, which lubricates
the hairs, and gives an oily, soft appearance to the skin.
This tends to keep the outer layers elastic and pliable;
where this function is absent, the skin becomes dry and is
likely to form cracks or fissures.
The skin acts as a regulator of the body heat, by controlling
the radiation of the heat as brought to the surface
from within, and by regulating evaporation. The normal
tension of the skin on the various parts of the body has an
influence in the regulation of body temperature.
The function of respiration is, to some extent, duplicated
by the skin, the process being analogous to the respiration
that takes place in the lungs. The amount of oxygen
absorbed is small, but water and carbon dioxide are freely
given off.
[Pg 19]
CHAPTER III
ASEPSIS AND ANTISEPSIS
To understand thoroughly and rationally to practise
asepsis and antisepsis, it is necessary for the operator to
realize the difference between the two terms. There is a
general belief among the laity—and, unfortunately, among
some chiropodists—that these two words are synonymous,
and that asepsis and antisepsis comprehend the same
system of treatment. This is a fallacy.
Asepsis is a condition in which living pyogenic organisms
are absent. Aseptic surgery comprehends the performance
of an operation in a field free from pyogenic or
septic germs, with sterilized hands, instruments, etc., preventing
the introduction of germs from without.
Antisepsis is the process whereby germs causing disease,
fermentation, or putrefaction are destroyed. Antiseptic
treatment comprehends the use of certain drugs or a
group of drugs which prevent the action of germs, which
inhibit their growth, or which destroy them.
In the comparison of these two foregoing definitions
the distinction between the two words is clearly brought
out. We speak of a drug—mercuric chloride, for instance,
as having an antiseptic action. We speak of a piece of
sterile gauze—sterilized, we will say, by heat—as being
aseptic. The mercuric chloride is an active substance which,
applied to a septic area, will proceed energetically to its
work of germ inhibition or destruction. The sterile gauze,
placed over a similar area, has no power to prevent or even
retard the action of the invading bacteria, let alone destroy
them, but once having been rendered free from such germ
life by an antiseptic, the aseptic gauze will keep the area
[Pg 20]in a germ free condition for a greater or lesser length of
time.
To sum up, then, the term “antiseptic” is applied to a
drug or group of drugs from whose actions bacteria are
rendered innocuous or are destroyed; and “aseptic” is
applied to a condition in which no germ life exists, having
previously been freed from such contamination by the use
of an antiseptic agent.
Some years ago the term “germicide” was used in contradistinction
to that of “antiseptic.” This usage was
brought about through the belief that some antiseptics
would not destroy all forms of germ life. Germicide, at
that time, was used to distinguish a drug which would
energetically attack and destroy all bacteria. Inasmuch as,
on close survey, it was found that the antiseptics which
would not destroy all germs were, in a great measure,
weaker solutions, and that, if used in greater strength, they
would be efficient as purifying agents, this distinction, today,
has been done away with, and the terms germicide and
antiseptic are used synonymously and will be similarly
employed in this chapter.
ANTISEPSIS
Antiseptics to be actually efficient must be brought in
direct contact with the septic area. There is an erroneous
belief that all of the official germicidal agents and a
majority of the proprietary preparations, the advertising
matter of which latter claims for them great antiseptic
proprieties, are efficient in deep-seated, septic processes by
mere surface application. This is wrong, and it is for this
reason that in all septic inflammations, free drainage must
be obtained and maintained, and the actual surface upon
which the bacterial action is in evidence must be exposed
before the beneficial action of antiseptic agents can be
exerted or prove beneficial.
The skin unquestionably does, at times, absorb a drug
applied to its surfaces; but where an active infective process
[Pg 21]is present, the antiseptic action of a germicidal agent is
practically nil unless the drug is brought into direct contact
with the septic surface.
The present success of Dakin’s solution, for instance,
is not so much on account of the great efficacy of the solution
itself—although it has potent germicidal properties—as it is
due to the Carrel method of irrigation whereby this solution
is carried to the most obscure recesses in which the
infective process is present. Applied superficially, as must
needs be done in chiropodial practice, we find that Dakin’s
solution is of no greater value than many other antiseptic
agents, except perhaps that, on account of its being non-toxic,
it can be used in cases where germicides with strong
toxic properties are contra-indicated.
HISTORY OF ANTISEPTICS
The story of antiseptics is one of the most interesting
in all the pages of medicine and surgery.
Antiseptics were employed as remedial agents long
before the exact causes of putrefaction or fermentation
were known. The Egyptians preserved the human body
against the attacks of putrefactive organisms, without any
knowledge of the character of the organisms causing decay.
The wonderful state of preservation in which we, today,
find the bodies of their kings, was brought about by means
of balsams containing, probably, such antiseptics as benzoic
and cinnamic acids.
In the sixteenth century the surgeons treated gunshot
wounds with boiling oil. They knew that if these wounds
were left untreated, putrefaction would ensue accompanied
by great suffering, and the ultimate death of the patient.
They also knew, empirically, to be sure, that boiling oil
applied to the wound prevented the development of this
putrefactive process, but they did not know why such was
the case, nor did they realize that, by this use of superheated
oil they were merely cauterizing the wound.
Ambrose Pare (1510-1590), who started life as an apprentice
[Pg 22]barber-surgeon in Paris, became a military surgeon
in the army of Francis I, in Piedmont; and he, more from a
humane feeling, as his writings tell us, than from any particular
scientific knowledge, had the temerity to dispense
with this oil boiling technic and to trust to a simple bandage
saturated with a concoction of herbs. Pare, however, has
no particular place in the development of antisepsis, his
principal contribution to surgery being in the development
of the use of the ligature for large arteries, which made
amputation on a large scale possible for the first time.
Antiseptic surgery dates from the last few years of the
nineteenth century, and among the names of its sponsors
which will ever remain foremost, are Pasteur and Lister.
Lister’s use of local antiseptics in surgery, however,
should not, perhaps, be spoken of as a discovery. Without
detracting in any way from the credit due him, it should be
referred to, more correctly, as a practical application, in
particular of the theories of Pasteur, and of several previous
investigators.
Prior to Lister’s use of phenol, the substance had already
been described by Reichenbach in 1832, and by
Runge in 1834, as one which would prevent putrefaction.
Long before these, tar and a number of similar products
were advocated and used for foul ulcers, but the fact remains
that Joseph Lister placed the use of antisepsis in
connection with surgical procedures on a sound and practical
basis.
Taking as a working basis the experimental researches
of Louis Pasteur (Communications on the Theory of Fermentation
1853, 1858; The Germ Theory, read before the
French Academy of Sciences on April 29th, 1878, and The
Extension of the Germ Theory, which appeared in 1880),
Joseph Lister, an English surgeon, developed his theory
of antiseptic wound treatment. His first experiments were
made public in 1860. At that time he stated that the evils
observed in open wounds were due to the admission into
them of organisms which “exist in the air, in water, on
[Pg 23]instruments, on sponges, and on the hands of the surgeon
or the skin of the patient.” Having accepted the germ
theory of putrefaction, Lister applied himself to discover
the best way of preventing harmful organisms from reaching
the wound from the moment it was made until it was
healed, or, if this could not be done, of using some agent
to destroy the organism, either before it reached the wound
or after it had lodged there.
Acting on the advice of Lemaire, who had already experimented
with several substances which were known to be
antagonistic to putrefaction, Lister chose carbolic acid,
which he used first in the crude form.
His experiments extended over a number of years
during which period he surmounted many obstacles, until
in the early 80’s he finally perfected his antiseptic treatment
of wounds by means of carbolized sprays for the air of the
room, carbolized solutions for irrigation, for instruments
and for surgeons’ hands, and carbolized dressings with
mackintosh protection, as post-operative procedures. Today
we smile at the idea of a dressing of phenol in any
strength, covered with mackintosh protection; but in advocating
this procedure, Lister had in mind, as nearly as
possible, to cover the wound so that no external agencies
might come in contact with it.
From this beginning, our present day antiseptic surgical
technic has been gradually developed. Mercuric chloride
gradually replaced phenol, and the use of the carbolic spray
was discontinued on account of its chilling influences on
exposed surfaces, which tended to lower their vitality.
Aseptic surgery owes its origin primarily to antiseptic
surgery. Not long after Lister’s rules for antiseptic
procedure were generally observed, the realization came to
many that the success of Listerian surgery did not depend
so much upon the spray or the carbolized gauge, as it did
upon cleanliness; the surgeon’s hands, the instruments, the
area to be operated upon, and the dressings must be clean—surgically
clean.
[Pg 24]
Today we have the rule of “the soap and nail brush,”
the sterilized instruments, the aseptic rubber gloves for the
operator’s hands, and the sterile dressing. The modern
surgeon uses no antiseptics during operations; he uses instruments
which are positively germless and the dressings
of aseptic gauze are not impregnated with medications.
ANTISEPTICS
The important subject of antisepsis embraces such a
variety of agents which may be employed in the numberless
conditions arising, that it is usually divided into three
groups. (1) general antiseptics; (2) local antiseptics; (3)
internal antiseptics. For the purposes of the podiatrist,
some knowledge of the first group is desirable, but his principal
thought on this subject should be given to a thorough
knowledge and understanding of the second group, those for
local application. Inasmuch as the podiatrist is not
allowed to prescribe internal medicines, no discussion of the
third group, comprising internal antiseptics, will be included
in this chapter.
General Antiseptics, or disinfectants, play so great a
part today in preventive medicine that the podiatrist
should at least inform himself on the general principles
involved.
Under this group we find a number of agents which are
employed for purposes of general disinfection. First on the
list comes:
Sunlight. The bright, direct rays of the sun, coming
into direct or immediate contact with germ life, are the best
of all disinfectants. This does not mean their merely shining
on one side of a carpet, or on small masses of blood,
pus or sputum, but their penetrating each individual microorganism.
When this can be accomplished, all germ life is
destroyed in a few hours. But this cannot be accomplished
in all conditions, and, unless the penetration of sunlight is
thorough it is not dependable. For this reason we are
[Pg 25]forced to rely on other agents (thermal and chemical) to
accomplish our purpose.
Heat. A direct flame will, of course, instantly destroy
all forms of microscopic life; dry air heated to 160° C.
(320°F.) will destroy all disease germs—but not all spores—in
one hour. Moist heat, water or air saturated with
aqueous vapor, heated to 75°C. (167°F.) will destroy most
germs.
Boiling water will even kill spores in ten minutes, if
they are not in small masses. To break up such masses the
addition of a small amount of baking soda will serve, not
alone to dissolve these albuminous collections, but will also
keep instruments from rusting (see Sterilization). Steam,
or air which is supersaturated with steam, is fatal to pathogenic
organisms, and at a much lower temperature than
dry hot air.
Chemicals which may be included under this group of
general disinfectants are: formaldehyde, lime, sublimed sulphur
and chlorinated lime.
Formaldehyde, formalin or formic aldehyde, is widely
used as a general disinfectant. It is exceedingly powerful,
one part of the gas rendering fifty thousand parts of air
irrespirable. The action of formaldehyde is increased by
moist heat, it does not actively corrode metallic instruments
nor does it injure fabrics. The formaldehyde cabinet is used
generally by podiatrists. (See Sterilization).
The official preparation of formaldehyde is a 37% solution
known as liquor formaldehydi, U. S. P. For the disinfection
of rooms, the solution may be applied directly by
washing or spraying, or it may be used in vapor form.
When the latter is employed, the windows and doors are
tightly closed and all the crevices are plugged with paper.
Lime, calx, or calcium oxide, is extensively used but
must be freshly prepared to be effective. Unslacked lime
is a cheap, and an efficient means of destroying animal matter,
but the milk of lime, freshly slaked, is by far the most
desirable form.
[Pg 26]
Sublimed Sulphur, or flowers of sulphur, is not so generally
used today as is formaldehyde. It should be used
only in places where nothing can be injured by the corrosive
action of the resulting sulphurous acid. As with formaldehyde
disinfection, the vapor must come into actual
contact with the microorganisms and the atmosphere should
be moist.
Chlorinated Lime, improperly called chloride of lime, is
a ready source of chlorine, and is a convenient and inexpensive
agent for general disinfection purposes. It has a
corrosive action, however, and therefore should not be used
in places where this action will do damage.
There are a number of drugs which may be more or less
successfully employed as general antiseptics and disinfectants.
Phenol, cresol, potassium permanganate, mercuric
chloride and copper sulphate are on this list, but as the
podiatrist is principally concerned with the second group,
local antiseptics, these drugs, which are included usually
under that group, will now be discussed.
It is deemed wise before passing on to the subject of
local antiseptics, to bring one important point to the attention
of the student. Under no circumstances must the term
deodorant be confused with disinfectant. A deodorant is
an agent which merely destroys or conceals an offensive
odor and has no power whatsoever to actually destroy or
inhibit the growth or action of bacteria. Many disinfectants
are also deodorants, but a deodorant may not always have
germicidal properties.
Local Antiseptics are agents which are applied locally
and externally for the purpose of arresting putrefaction.
In podiatry there are a number of drugs belonging to this
class which may be safely employed and whose beneficent
action may be depended upon.
There has been a marked tendency in podiatry in the
past toward the use of a number of proprietary drugs for
germicidal purposes. Happily this practice is dying out,
[Pg 27]and a few years will find the therapeutics of podiatry established
on a sound, rational basis.
The following local antiseptics can be safely employed
in podiatry operations:
Alcohol is used generally in practice to render fields
of operation surgically clean. The pure grain alcohol is
used for the immersion of instruments prior to operation,
but a 60% solution is found more efficient for antiseptic
action upon the body surfaces. A pledget of sterile cotton,
saturated with alcohol and placed over a part, insures absolute
asepsis in a short time. Alcohol alone cannot be practically
used as a wet dressing. In this connection it is combined
with boric acid, equal parts, and is efficient as an
antiseptic.
Liquor Alumini Acetatis, an 8% aqueous solution of
acetate of aluminum, is used almost entirely as a wet dressing
in infective inflammations. It is non-toxic and, while
it is irritant to extensive denuded surfaces, it is usually employed
for its astringent action.
Balsam of Peru is used chiefly in podiatry as a stimulating
agent; its antiseptic properties, however, are well
known and are probably due to the benzoic and cinnamic
acid which it contains. It is used either alone, in ointment
form, 3% to 10%, or in combination with collodion, 10%.
Boric Acid is employed principally as a wet dressing in
cases of inflammations. It is quite free from toxicity and
is but slowly absorbed. It is also used in powder form as
an antiseptic.
Boroglycerine, U. S. P., contains 30% of boric acid. It
is found particularly effective in the treatment of indolent
ulcers where a mild antiseptic lotion is desired.
Borate of Sodium (Sodii boras, U. S. P.), borax, has
an alkaline reaction and for this reason is sometimes substituted
for boric acid. It is soluble in 16 parts of water.
Dakin’s Solution is a solution of hypochlorite of soda,
¹⁄₂%. The preparation of the original solution is so difficult
that large quantities of the drug are not easily obtainable.
[Pg 28]Chlorazene, an American product which is recommended
by both Dakin and Carrel, is obtainable in tablet
and in ointment form. One tablet dissolved in 8 ounces
of water makes a solution, ¹⁄₂ of 1%. The solution is unstable,
necessitating its being constantly made fresh, and
for this reason the use of the drug is not practical in
podiatry practice today. When used, the solution must be
changed within twenty-four hours; if this is not done it
becomes irritant, setting up an acute dermatitis. The drug
is used as a wet dressing, but never with rubber or oiled
silk covering.
Di-Chloramin-T, the newer form in which Dakin’s solution
is used, is a 5% or 10% hypochlorite of soda solution
in oil of eucalyptus. This combination is found to be less
irritating than the original solution. It is used as an antiseptic
dressing.
Glycerinum, U. S. P., is not alone useful as a mild
antiseptic but is also extensively used as a vehicle for many
other substances in the treatment of skin lesions.
Hydrogen Dioxide, peroxide of hydrogen, is used principally
in podiatry to decompose pus in which bacteria are
protected from the action of other antiseptics. As the
antiseptic action of hydrogen dioxide is dependent solely
upon the liberation of its component oxygen, it is easily
seen that once the ebullition occurring on its contact with
albuminous surfaces ceases, it becomes inert. “Peroxide”
is used as a pus germ destroying agent, and to loosen
dressings which have become adherent from copious discharge.
Iodine, Tinct. Iodii, U. S. P., is 7% of iodine in alcohol,
and presents the best agent known at the present time by
which surface sterilization can be obtained. It is highly
germicidal, but continued applications are decidedly corrosive
and not alone inhibit the development of new granules,
but also cause severe dermatitis, and at times symptoms of
iodine poisoning. The one feature which prevents its use
in some chiropodial procedures is the discoloration of the
[Pg 29]tissues produced by its application. It may be used full
strength or diluted with water, as weak as a 1% solution.
Iodoform, despite its unpleasant and suggestive odor, is
an efficient antiseptic and is used in powder form. Its
antiseptic action is principally derived by the slow liberation
of its component iodine.
Several forms of mercury are used in podiatry.
Bichloride of Mercury, or mercuric chloride, is used,
¹⁄₂₀₀₀, to prepare fields for operation, and from ¹⁄₅₀₀₀
to ¹⁄₁₀₀₀₀ as a wet dressing in infective inflammations. It
is highly toxic and should never be used for any great
length of time, or on a denuded surface of any size, as it
is rapidly absorbed into the general system, and its corrosive
action tends to inhibit the development of new granules.
There are also systemic effects to be feared from its
absorption.
Mercurous Chloride, calomel, can be used as an antiseptic
dusting powder on many chiropodical lesions. It is
combined generally with bismuth, equal parts, as an antiseptic
and astringent application for blisters and burns.
Unguentum Hydrargyri, U. S. P., is a 50% ointment,
used principally in chiropody in the treatment of parasitic
diseases of the nails.
Unguentum Hydrargyri Ammoniatum, 10%, is an antiseptic
ointment used safely in any case where such action
is desired.
Phenol Liquefactum, U. S. P., carbolic acid, is used as
an antiseptic in solution, 2¹⁄₂%. It is highly toxic and is
never used as a wet dressing under any circumstances.
Phenol, besides its toxic properties, has an anesthetic action
on the peripheral nerves, and due to this action, many cases
of carbolic gangrene have been reported.
Liquor Cresolis Compositas, U. S. P., also a coal tar
product, can be advantageously used in a general spray for
the foot, or for the special field of operation. It is antiseptic,
and its saponaceous properties (it is a solution of
[Pg 30]cresol and soap) aid in softening the tissues as well as in
cleansing them. It is used in 2% strength.
Lysol, an unofficial phenol derivative, is also used as a
general spray, 2%, in water. Its odor is very strong and it
is therefore objectionable to many persons.
Thymol is a phenol occurring in a volatile oil. It
possesses strong antiseptic properties, but its comparative
insolubility in water has prevented its more general use.
The only official combination of thymol is
Thermolis Iodidum, U. S. P. Thymol iodide, or more correctly
dithymoldiiodid, has been better known for years
under its trade name “aristol.” It is used as a dusting
powder, is actively antiseptic by the liberation of iodine, and
has become popular as an iodoform substitute.
Potassium Permanganate, U. S. P., has its greatest usefulness
as a local antiseptic application where deodorant
action is also desired. In the treatment of indolent, foul
ulcerations it is very efficacious.
Sulphur is used principally in podiatry in the form of
Unguentum Sulphuris, U. S. P. It is composed of 15% of
washed sulphur, usually in a lanolin base, and has a mildly
stimulating and antiseptic action.
There are any number of additional drugs, both official
and unofficial, which can be and are used in podiatry practice,
but it is deemed sufficient to name the foregoing which
constitute a complete armamentarium for all antiseptic procedures.
THE FIELD OF OPERATION
For rendering the field of operation aseptic the following
technic will be found efficient:
In addition to preparing the immediate field it is found
advantageous to treat the surrounding areas to prevent the
washing in of bacteria. To accomplish this the use of an
antiseptic spray is to be advocated.
Equipped as the podiatrist is with modern air compressing
[Pg 31]devices, this is a simple matter, the principal question
being the selection of a proper spray.
An aqueous solution of alcohol is exceptionably suited
for purposes of this kind and where a lesion is already
present this drug should be used to the exclusion of all
others.
Most cases the podiatrist is called upon to treat,
however, present no lesion, yet asepsis must be procured in
the event of a lesion being made during his operative procedures.
In cases of this nature a spray of liq. cresolis
compositus, U. S. P., 2¹⁄₂%, will be found to be an agreeable
and efficient application. This solution has but a slightly
disagreeable odor and has marked softening as well as
antiseptic properties.
After the whole foot has been thoroughly sprayed and
dried with a sterile towel, the immediate field of operation
may be coated with tr. iodine, 3¹⁄₂%. This is one-half the
strength of the official tincture and is advocated to obviate
the deep stain occasioned by the use of the 7% tincture.
In many cases, however, no stain whatsoever can be countenanced
for fear of obliterating some diagnostic point, and
it may be found advisable to dispense entirely with iodine,
substituting alcohol, 60%, in its stead.
A pledget of sterile cotton saturated in this solution
of alcohol and placed over the area under treatment, will
produce asepsis in a short time. The penetrating qualities
of alcohol are, however, found to be increased, if application
is made by means of a cotton wound applicator, the
mixture being rubbed vigorously into the parts.
The use of either of these two methods will procure a
sterile field upon which any chiropodial operation may be
commenced and completed in safety.
Should hemorrhage be caused during operation, it may
be arrested in a number of ways: (1) Bichloride of mercury,
¹⁄₁₀₀₀, may be applied on a pledget of sterile cotton.
This will serve to check the blood flow by hastening coagulation,
and at the same time will procure asepsis. (2) Tr.
[Pg 32]iodine may be painted over the lesion and digital or tourniquet
pressure applied until coagulation is complete. (3)
Astringent and antiseptic dusting powders may be applied.
(4) Styptics (Monsel’s solution is efficient and the least
irritating) may be used, but it must be remembered that
these drugs combine no antiseptic qualities and therefore it
is good surgery to apply tr. iodine before their use.
A hemorrhage arrested by any of the foregoing methods
should be dressed antiseptically, as well. For this form of
dressing, antiseptic ointments or dusting powders are found
to be most effective.
ASEPSIS
The topic of asepsis will be found more thoroughly, discussed
under the chapter “Sterilization.”
Aseptic procedure comprehends the employment of all
instruments and materials which have by some means been
previously rendered free from germ life. Instruments are
to be thoroughly sterilized by boiling in water for at least
fifteen minutes, the hands of the operator are to be thoroughly
cleansed, or are made as nearly germ free as is possible;
the dressings used are to be surgically cleansed
(usually by moist or dry heat) before application; and no
antiseptic solutions are included in the treatment.
It is doubtful if aseptic procedures can be practised in
podiatry to the exclusion of antisepsis. It must be remembered
that after most chiropodical surgical procedures, the
foot surfaces (again encased in a shoe) teem with septic
matter which present the mediums best suited for the propagation
of bacterial life,—heat, moisture and darkness.
An aseptic dressing having been employed, the length of
time it will remain germ free is problematic; so it is found
advisable in most instances where there is danger of infection,
to resort to an antiseptic method of treatment rather
than to rely solely upon the aseptic.
Dr. Edward Adams, Professor of Surgery at The First
[Pg 33]Institute of Podiatry, lecturing to the students on “The
Newer Antiseptics in the War,” spoke as follows:
“The immense number and variety of wounds encountered
in the present war, necessitating the care of many
thousands of men at one time, and the entirely new situations
created by modern warfare, have led to an amount of
research heretofore unknown. True to its traditions, the
medical profession has endeavored to discover the best
methods in treatment and to render the best service in its
power to bestow. Never has the surgeon had to face greater
difficulties and never has he recorded more brilliant success.
“Where practically every wound is infected, antisepsis
has necessarily received unusual attention, and the merits
of different substances having antiseptic properties have
been thoroughly discussed and have narrowed down to a
very few. The fact is emphasized that those which are
strong enough to be antiseptic must be used with great care,
especially in cases where drainage is not free.
“After many trials and many discussions the tendency
of men of the greatest experience, however, is to reduce the
problem to very simple terms which may be expressed thus:
(1) How to secure a clean wound. (2) How to give nature a
chance with a minimum of interference, since, after all, she
must do the healing.
“The early part of the war demonstrated the fact that
both antisepsis and asepsis, as heretofore practised, have
been vanquished by Mars. By some it was even considered
that Lister’s work went for naught. Now, however, antisepsis
and asepsis, each in its proper place, have come into
their own again and Lister is still the apostle of good
tidings.
“The reasons are plain: first, at the beginning of
the war we did not possess sufficiently effective antiseptics
such as have now been given us; second, we were not masters
of an efficient technic. We owe these innovations especially
to two men, Dakin and Carrel, who have wrought a
marvelous change. Lister taught us above all how to prevent
[Pg 34]infection; Dakin and Carrel, following his principles,
have taught us how to conquer even the most virulent infections.
For nearly half a century surgeons have been
fighting strenuously against infection, but it required the
stimulus of war to enable us to win a victory. Prevention
and cure both are ours now.
“The newer antiseptics that have been discovered and
used since the war are chiefly: Dakin’s solution of hypochlorite
of soda, di-chloramin-T, eusol and eupad, both
preparations of hypochlorous acid, flavin, acriflavin, and
proflavin, and a mercurial preparation known as mercurophen.
“These newer antiseptics, especially the flavin group,
have pronounced bactericidal qualities, but it is too recent
as yet for them to have been tested on a sufficiently large
scale to permit of positive conclusions as to their value.
Flavin is described in detail as to its process of manufacture
and its action in an article by C. H. Browning and his colleagues
in the Bland-Sutton Institute of Pathology of Middlesex,
London (British Medical Journal, January 20, 1917,
page 73). For technical reasons flavin as one of the acridin
group is now called acriflavin, and a more potent preparation
is called proflavin, which is described in the British
Medical Journal, June 9, 1917. Dakin, in the same journal,
June 23, 1917, endorses Browning’s method of treatment
with acriflavin. Its antiseptic action, instead of being diminished
by blood serum, is increased thereby, even up to
five times its potency. Moreover, as used by Browning, it is
harmless to the tissues and does not interfere with the activity
of the leucocytes nor with phagocytosis.
“The most important paper yet published on these
newer antiseptics is by Browning Culbranson and L. H. D.
Thornton in the British Medical Journal, July 21, 1917.
The principal points brought out by their experiments with
the use of acriflavin and proflavin are as follows: first, that
the bactericidal power of acriflavin and proflavin, instead
of being diminished and even destroyed by the contact of
[Pg 35]blood serum (as is the case with hypochlorite of soda,
bichloride of mercury, etc.), is greatly increased from 10
to 40 fold. Second, as a result, these two antiseptics, though
acting at first merely by inhibiting bacterial growth, later
become increasingly powerful and actively destroy the bacteria.
After two hours’ contact in the presence of serum,
mercuric chloride is practically equal to acriflavin in its lethal
effect on the streptococcus and bacillus coli, but by this time
the effective action of the mercury salt on the bacteria has
come to an end, and a concentration which has then failed
to kill the organisms, exerts little or no inhibiting effect
on the proliferation of the survivors. On the other hand,
concentrations of the flavins, which at this period have
merely inhibited multiplication, later on prove bactericidal,
so that finally the flavin compound is ten to twenty times
more lethal than corrosive sublimate. Therefore, instead
of renewing the solution every two hours, only one or two
daily dressings are required. Moreover, they are apparently
harmless to the tissues. Experiments show that such
concentrations of flavin as will effectively control the bacteria
do not interfere with phagocytosis.
“Brilliant green, like the hypochlorites, in the presence
of serum, soon loses its value as a bactericide; hence, if used
it must be renewed at frequent intervals. On the other
hand, it possesses the advantage of being an extremely potent
bactericide, far exceeding the flavins in watery solutions,
while at the same time it is comparatively harmless
to phagocytosis, as well as to the tissues locally, and when
applied to a wound it is devoid of general toxic action on the
body. Its use by two hourly flushings after the Carrel
method, has proved most encouraging.
“The Dakin Solution. The value of this antiseptic has
been demonstrated by Drs. Carrel and Dakin. It is a carefully
standardized solution of sodium hypochlorite and is
usually prepared from chlorinated lime (bleaching powder),
but may be prepared directly from chlorine gas. The formula
has been varied from time to time. Some surgeons
[Pg 36]use an acid solution (anærobes do not live in an acid medium),
others an alkaline solution, while Drs. Dakin and
Carrel in their method, avoid an excess of either quality. In
the solution now used by them which is made according
to the formula of Dufresne, the chlorinated
lime is combined accurately with both sodium carbonate
and sodium bicarbonate, making a nearly neutral
product which contains from 0.45 to 0.5 per
cent. of sodium hypochlorite, because less is too weak
and more is too strong. The advantages of this solution
are as follows: (1) It is antiseptic and does not damage the
tissues. (2) It is non-toxic and no danger is to be apprehended
from its absorption. (3) It is hypertonic, that is,
the concentration of the solution is greater than that of
blood serum and tissue fluids, and therefore, it produces an
outflow of lymph. (4) If used as an acid solution it is available
against anærobic bacteria which require an alkaline
medium.
“The fact that nearly all wounds of the present war are
infected, in connection with the serious and often fatal nature
of the infection, has stimulated an unusual amount of
research with the hope that a reliable and safe disinfectant
may be discovered—especially one that will not injure the
tissues of the body, since these are more easily affected by
the disinfectant than the bacteria themselves. This object
has been realized in large part by the Dakin-Carrel solution,
which, however, to be effective, must be frequently renewed
according to the Carrel technique. It is also frequently
very irritating to the skin, although this may be avoided
by the use of petrolatum.
“According to the investigation of Dakin, a chemical
action takes place between the hypochlorite in the solution
and the proteins in the wound exudate with the formation of
the new substances called chloramines. One of these chloramines
has been prepared synthetically and introduced under
the name of chlorazene, which is said to possess a germicidal
power four times greater than the Carrel-Dakin solution
[Pg 37]itself and is unirritating to the skin but, like the latter, must
be frequently renewed. By dissolving one of these chloramines
in an oily medium, however, it is possible to keep it in
contact with the wound surfaces for a much longer time than
can be done with a watery solution. The advantage of this
is evident.
“The solution which is used at present has been named
di-chloramin-T, the medium being chlorinated eucalyptus
oil or paraffin oil. A ten per cent. solution of di-chloramin-T
and eucalyptol may be kept in a colored bottle for at least
one month with only slight change. It is applied to the
wound surface in the form of a spray after the removal of
infection foci and devitalized tissues. Deep cavities are
filled with the liquid and drainage afterwards provided for.
The high percentage of disinfectant contained in this preparation
renders it active for a period of twenty-four hours
because of the slow liberation of the germicide. It would
appear that when applied with strict attention to detail it is
not only less expensive than the Dakin-Carrel method, but
will secure healing of a wound in a much shorter time. The
gradual elaboration of the remedy makes it particularly applicable
in cases that cannot be frequently dressed during
transportation. Di-chloramin-T, hypochlorites and hypertonic
salt solutions all have the power of dissolving dead tissue.
A precaution to be remembered, however, is that if
used near a blood vessel hemorrhage may occur.
“For a detailed report of the use of di-chloramin-T
in the treatment of infected wounds, read Dr. H. T. Dakin’s
article in the Journal of the American Medical Association,
July 7, 1917. For a still later description of the Dakin-Carrel
treatment of wounds, see the report of the Surgical Commission
to the Directors General of the British Army Medical
Service reprinted from the British Medical Journal,
November 3, 1917.
“To my mind the best preparations that can be easily
used are: (1) Chlorazene (Abbott), in tablet form; (2) in
form of a non-irritating surgical powder containing 1 per
[Pg 38]cent. chlorazene; (3) in form of a cream containing 1 per
cent. of chlorazene in a sodium stearate base. These I can
recommend.”
[Pg 39]
CHAPTER IV
STERILIZATION
In the practice of medicine and its allied branches, it is
recognized that no unsterilized object is clean; it is therefore
necessary for every such object to be sterilized before
being brought in contact with, or near to a wounded surface,
or to a surface about to be wounded.
Previous to the time of Lister, who was the first one
to practise and to advocate asepsis and antisepsis, it was
considered normal for a wound to suppurate and the consequent
appalling results were accepted as being in order.
Today, however, asepsis and antisepsis have been proven to
be absolute essentials to intelligent treatment, and it is accordingly
necessary that every practitioner treating the
human body, should exercise the greatest care so as to prevent
the invasion of hostile bacteria.
Sterilization may be defined as the act of rendering an
object sterile (clean), by the destruction of microorganisms,
preferably by means of heat. To perform any operative
work, so that there is perfect asepsis, or freedom from bacteria,
depends entirely upon the care exercised in practising
such asepsis. The instruments, the dressings, the field of
operation and the hands of the operator are all media for
contamination and the infection of wounds, and the sterilization
of all these is necessary, as infection might come from
lack of care in the preparation of any one of these details
before an operation.
Instruments. The most efficient way of rendering instruments
sterile, is by immersing them in boiling water for
fifteen minutes. To each quart of water used in the sterilizer,
is added one-half an ounce of sodium carbonate (washing
[Pg 40]soda). This prevents rusting and also acts as a solvent
for any fatty substance that may be on the instruments.
Superheated steam is used for sterilizing instruments,
but this requires especially large and expensive apparatus
which is not at the command of most practitioners. Dry
heat will destroy bacteria, but it is not as effective as moist
heat (steam). To procure absolute results requires a high
temperature, which effects the temper of the steel in the instruments.
Instruments with sharp cutting edges, such as are used
in the removal of helomata, are blunted by boiling. They
are therefore best sterilized by immersing them in pure carbolic
acid for a few minutes, followed by dipping in grain
alcohol, the instruments being handled with a pair of
forceps.
Dressings. Dressings such as gauze, bandages, absorbent
cotton and other cloth materials are best sterilized by
steam which is allowed to circulate through the material
for fifteen minutes, and they may then be placed in dry heat
for a short time, thus allowing the moisture to evaporate.
If a steam sterilizer is not available, the dressings may be
boiled, or they may be baked for ten minutes in a temperature
not lower than that of the boiling point of water. Care
should be taken that the heat is not great enough to scorch
or burn the materials.
Sterilized dressings of all kinds may be purchased in
convenient, hermetically sealed packages, and may be safely
used without preparation. Once such a package has been
opened and used, the contents do not remain sterile; the
materials left over from an operation should not be used
at another operation unless they have been again thoroughly
sterilized.
Field of Operation. The skin of the foot is much
thicker than that on the other parts of the body and in addition
it usually does not receive the same hygienic care as
does the rest of the skin surface. It is therefore highly essential
[Pg 41]that additional precautions be taken in preparing
the foot for operation.
The entire foot should be scrubbed with soap and warm
water so as to remove as much of the exfoliated skin and
dirt as possible. It is then immersed in a solution of bichloride
of mercury (¹⁄₂₀₀₀) and wrapped in a sterile towel
until ready for operation. The foot may also be prepared
by first scrubbing with soap and water, washing with alcohol,
60%, and finally painting the part to be operated upon
with tincture of iodine. Iodine has proven to be the best
antiseptic in use today, but very often it interferes with
chiropodical operations due to the stain it produces. This
may be overcome to a certain extent by washing the part
with alcohol after the iodine has been applied.
Alcohol in a sixty per cent. solution is a very efficient
antiseptic and wherever iodine cannot be used, it may be
substituted. A piece of absorbent cotton, dipped into the
alcohol, is placed in contact with the part to be treated and
is allowed to remain for a few minutes. Like iodine, alcohol
penetrates the layers of the epidermis and so destroys
the bacteria that lurk between the outer layers.
Hands of the Operator. There are several ways of
cleaning the operator’s hands, but each such procedure is
preceded by thoroughly scrubbing them with green soap
and a nail brush for at least ten minutes, in warm water.
Alcohol or ether should then be rubbed over the hands to
dissolve fats, and they should then be dipped in a solution
of bichloride of mercury (¹⁄₂₀₀₀) for a few minutes. A
most efficient way of sterilizing the hands consists of the
following: after scrubbing the hands as before described,
take equal parts of chloride of lime and carbonate of soda
(about one-half teaspoonful of each) and add enough water
to make a paste. This is thoroughly rubbed into the hands
and when the sensation of warmth has disappeared they
are rinsed in sterile water.
The use of rubber gloves to protect the hands is of
some advantage in that they may be thoroughly boiled before
[Pg 42]they are used; but unless the hands are sore or the skin
is tender, they should not be employed, as they decrease the
sense of touch so necessary in chiropodial procedures.
STERILIZING APPARATUS
There are many kinds of apparatus for each form of
sterilization, and the podiatrist, in selecting a sterilizer,
must be guided by the size of his purse as well as the amount
of space he can afford for such an apparatus.
The steam sterilizer is unquestionably the best for general
purposes, and the dual compartment arrangement is
better than a single chamber outfit. Steam sterilizers for
office purposes vary in size from the small single chamber,
measuring four inches wide, eight inches long and four
inches deep, to the larger double chamber which measures
twelve inches wide, twenty-four inches long, the upper chamber
twelve inches deep and the lower chamber six inches
deep. The latter sterilizers are the best possible for the
podiatrist’s work, in that they allow for the sterilization
of towels, dressings and instruments at the same time, and
there is no direct contact between the instruments and the
boiling water. The apparatus may be heated by gas or by
electricity, gas being the most desirable as it is more easily
controlled and regulated. The cost of the instrument
equipped for gas heating is very much cheaper, and the
operating expense is less than when electricity is similarly
used.
As its name implies, the double compartment sterilizer
is composed of two distinct sections which are easily separated,
and when put together look as if they were one section.
The lower compartment is more shallow than the
upper and contains the water which is boiled for the manufacture
of the steam to be utilized in the sterilization. The
upper compartment has an inner jacket which is so arranged
that the steam passing from below is collected in
it, and is admitted into the compartment proper through a
[Pg 43]small opening at one end. This causes the steam to be
forced in under a slight pressure, which increases the heat
and adds to its power as a germ destroying agent. The
opening is controlled by an inlet valve which may be adjusted
so as to prevent the steam from entering the compartment.
The steam then circulates around it in the
jacket and in this way
dry heat is generated in
sufficient quantity to allow
for dry heat sterilization.
If space permits, it
is advisable to have two
such sterilizers, one for
steam sterilization and
the other for dry heat
sterilization. The instruments,
towels and dressings
may thus be dried
which prevents the rusting
of the steel, and
makes the linen more easy to handle. These sterilizers
are as well, an ornament to any office.
ELECTRIC STERILIZER
Where space is limited, the smaller electric sterilizers
may be substituted for the larger outfits. There are many
styles and shapes of this kind of instrument, but the principle
is the same in all of them. There must be ample space
for the reception of the instruments, and the cover must
be closed when the water is boiling. The electric current is
passed into a metallic disc, situated beneath the bottom of
the water receptacle. As the current passes through this
disc, it becomes hot, and the water in the compartment is
gradually heated until the boiling point is reached. The
current must never be left on when the machine is not in
use, for when the water has evaporated, the heat will cause
the solder holding the joints of the sterilizer to melt and
cause a separation of the seams. This molten solder might
even drip on something combustible and set it alight. There
[Pg 44]are some electric sterilizers which are equipped with safety
devices which prevent this possible accident. The device
provides so that when this heat is great enough, it melts a
small piece of an alloy with a very low melting point. This
metal is held in position by a clamp which is attached to the
current flow and when this melts, the current is cut off and
further heating is impossible.
This is a very
valuable attachment,
particularly when one is
inclined to be careless.
Another form of
smaller electric sterilizer
consists of a glass
compartment into
which is placed the
heating apparatus.
This latter is composed
of coils enclosed in a
metal protector. The
protector is attached to a handle, through which pass the
electric wires. This coil and handle is placed into the glass
bowl and is held fixed by a small clamp. A cover is then
placed over the bowl, which is so arranged as to allow the
wires to pass through it.
For sterilization with pure phenol and alcohol, it is
necessary to have two wide mouth, glass stoppered, two-ounce
bottles. When the instruments are being sterilized
they may be left standing in either bottle until ready for
use. A piece of felt, cut to fit the inside bottom of each of
the bottles, should be placed in situ, so that when sharp
edged instruments are placed in the bottles, their points
will not be broken, by coming in contact with the hard glass.
FORMALDEHYDE STERILIZER
Formaldehyde gas is an agent which has germicidal
properties, and is used to a great extent where steam sterilizers
are not available. Formalin, a concentrated solution
of the formaldehyde gas, readily gives up its gaseous constituent
[Pg 45]so that when the liquid is placed on a flat tray, the
gas will penetrate objects around it. Cabinets have been
constructed which are so arranged that the lower shelf
contains the solution, and the upper shelves may be used
for instruments, dressings, towels, etc. When the cabinets,
which vary greatly in size, are tightly closed, the gas will
penetrate every object contained therein, thus destroying
any microorganisms which might be present.
[Pg 46]
CHAPTER V
THE CARE OF THE FOOT
The Naked Foot. For many centuries the human foot
was allowed to go naked, and our aboriginal ancestors never
knew what foot clothing of any type meant. Much the same
as with the rest of his body, unaided nature was allowed to
minister to the needs of his pedal extremities. Research
has shown that primitive man was very strong and able to
withstand the abuses of the elements to a marked degree.
The body adapted itself to nature and the elements, so that
it could bear extreme heat or cold, wind or rain, or any
condition of the weather, without giving way before these
nature forces.
So it was with the foot of man during this period. The
skin of the soles became thickened so that even the roughest
surfaces caused no discomfort when borne upon by his bare
feet. Even to this day, savage tribes that still go barefoot
have skin on the soles of the feet that is tough and hardened.
The author has seen natives of Central America, who are of
this class, step on objects such as glass, lighted cigars, etc.,
without experiencing any appreciable discomfort.
In aboriginal man, muscular action of the entire foot
was developed to its maximum. The muscles of the toes
were under perfect control so that objects could be felt and
lifted with them, much the same as with the fingers of man
today. The leg muscles were well developed so that the
position of the body in walking could be altered quickly and
the body weight could be rapidly changed from one foot to
another, so as to avoid contact with sharp pointed objects,
such as burrs, sharp twigs, pointed stones, etc.
Nature was primitive man’s physician. Being continuously
[Pg 47]exposed to the air, skin exfoliation, evaporation of
moisture and other normal functions were never interfered
with. The objects with which the body came in contact in
wading through small streams, or in walking through the
wet grass and dewy underbrush, acted much the same as
the bath brush of modern times. Further, man of that
period, living on nature’s foods, was never subject to the
various conditions brought about by improper diet and
which in turn manifest themselves in the feet as well as in
other parts of the body.
Advent of Foot Clothing. As time went on and man
became more and more civilized, clothing for the foot was
gradually adopted, and from that time to the present the
foot has undergone changes that make it necessary for the
human race to resort to treatment for lesions that could not
have developed if nature had had her way, and man had
never adopted covering for the foot.
The first style of foot covering was the sandal. This
caused no special trouble, but when man began to depend
upon them for protection for the soles of the feet, nature
consequently no longer required the tough, protecting, heavy
skin, and gradually the integument of that region became
thinner. The result has been, that today, slight trauma or
irritation causes many disturbances on the soles, among
which are the common helomata dura and verrucæ.
An evolution of footgear followed the use of the sandal,
and with civilization came vanity in foot dress and finally
the modern shoe, completely at variance with nature’s demands
and causing so many disturbances that specialists
in treating foot lesions became requisite to care for them.
Modern Footgear. The modern shoe, as compared to
the normal foot, is worthy of special consideration. As a
rule, the men who build shoes have from time immemorial
been pure commercialists. Their purpose in engaging in
the manufacture of footwear always has been and is to do
business. They have attempted to create styles that would
sell. They have produced wares that would be popular and
[Pg 48]therefore saleable. The question of the niceties of the anatomy
and physiology of the foot and leg played no part in
their calculations because they knew nothing about these
features as factors in gaining results. The foot was treated
as a whole, much as the hat manufacturer considers the
human head when building a head covering. No consideration
was given the natural beauties of the foot, so much
appreciated by the ancient Greeks. The need for conserving
the functions of the small bones of the foot so that their
articulations would not be disturbed, caused them no pause.
The necessity for allowing free play to all of the muscles
which abduct, adduct, evert, invert, flex and extend the foot
was and is a negligible quantity with the shoe-builder.
There are few exceptions to this rule.
Suppose the dentist were to make sets of teeth to
be fitted to the jaws of those who had become toothless,
basing their manufacture of these dental adjuvants
on the prevailing needs of groups of these tooth-defectives,
and tooth-shops were to be instituted to
fit these sufferers from wares in stock! The public would
deride such an innovation. And still it is almost as ridiculous
to suppose that our shoe-shops can properly clothe the
feet of the public as they should be clothed from a stock of
shoes which are made without careful relevancy to the anatomy
and physiology of the foot. Let us take one feature
of the modern shoe as a sample of this pandering to style:
the high heel, so common on women’s shoes, is a pure conceit.
It is responsible for many of the foot lesions of today,
and in addition causes systemic disturbances of a serious
nature. When the body in standing is erect, the foot should
be at right angles to the leg. When the heels are raised,
however, it would be necessary to tilt the body forward to
still maintain the right angular posture. It therefore becomes
necessary in maintaining the erect position to allow
for the malalignment of the body, due to the high heels,
and this is accomplished in the knees, hips and spine. The
knees are flexed, the hips rotated and the abdomen thrust
[Pg 49]forward. This latter interferes with the normal position
of the abdominal organs, and thus arise many diseases
common to women. The high heel is the etiologic factor.
Locally, the calf muscles become contracted and an inward
lateral displacement of some of the tarsal bones results.
Gradually the other bones of the foot are displaced,
and weak and flat foot result. Further, the high heel
causes the foot to slip forward in the shoe and the toes
are thus crowded. When the body weight is brought to bear
upon the ball of the foot in walking, this crowding prevents
the normal spreading of the metatarsal bones, and there is
distortion of the bones, causing anterior displacement, or
dropping of the anterior arch with resulting metatarsalgia.
Another illustration: the function of the sudoriferous
glands, namely, the elimination of liquid waste, in the form
of sweat or perspiration, is going on continuously. As the
fluids are brought to the surface by the gland ducts, evaporation
takes place immediately, except under unusual
circumstances, such as mental excitement, increased temperature,
etc., in which instances the production may be very
rapid or may be retarded. When the foot is encased in a
shoe, or in a stocking that does not absorb moisture, such
as silk or lisle, this evaporation is retarded to a greater or
lesser degree, depending upon the leather of which the shoe
is made. Such interference with normal functions is productive
of many foot ills elsewhere noted in these pages.
In this connection the podiatrist should be familiar with
these facts: Vici kid is the most porous of all the leathers
used in shoe manufacture, so that most if not all of the
moisture excreted by the glands evaporates. Calf skin is
not so efficient for foot covering, in that evaporation is limited;
both of these leathers are far superior to either patent
leather or colt skin, which latter are absolutely air and
water tight, and should never be used as a foot covering.
The stocking should be of a material that will absorb moisture,
and cotton or woolen hose are best for this purpose and
will assist in keeping the feet dry and normal.
[Pg 50]
Again, the nails of the toes are often unfavorably
affected by the modern shoe, especially the nails of the great
toes. The toe box of the average shoe is made of stiff, unyielding
material so that if the shoe is narrow or short,
irritation or undue pressure is brought to bear upon the
nail or the surrounding tissues, causing disease. It is especially
necessary to obviate the possibility of pressure of the
soft tissue of the nail groove against the hard nail substance,
because if such a condition arises and is allowed to
persist, calloused nail grooves, helomata and often ingrown
toe nails result. In the same manner, pressure on the
various parts of the nail may cause club nail, onychia
or paronychia. Simple packing of the nail grooves with
absorbent cotton, if properly done, is often the means
of avoiding serious nail lesions, which, as a rule, are
very painful.
In this connection it would be well to remember that it
is most important that the nails be cut properly. The corners
of the nails should never be removed, unless there is
some trouble beneath the part. Removal of the corners of
the nails changes the position of the surrounding soft tissues,
which depend upon the hard nail substance for support,
and thereby causes them to collapse. This is one of
the primary etiologic factors of ingrown toe nail.
The bony structures of the foot have suffered extensively
since the advent of modern footgear, and the treatment
of the lesions in which the osseous tissue is involved is
of importance to the podiatrist as well as to the surgeon or
orthopedist. Many deformities of the foot are such that
only the surgeon is qualified to successfully treat them, but
the more common lesions properly come under the care of
the podiatrist, and should be treated by him.
Pointed shoes cause displacement of the metatarsal
bones, with subsequent nerve compression; hallux valgus is
a common deformity due to misfitting shoes. These latter
conditions are the result of improper footgear, as also of
incorrect posture and of faulty locomotion.
[Pg 51]
The soft tissues of the foot have suffered to a great
extent because of the modern shoe, especially the muscles
that arise in the leg and are inserted in the foot. Upon
these muscles principally depend the motions of the foot,
especially those of flexion, extension, adduction and abduction.
The calf muscles, as previously stated, become shortened,
due to the high heels. Additionally the muscles on the
outer side of the leg are shortened while those on the inner
side are lengthened. The long extensors of the toe are also
shortened.
When it is remembered that there are twenty muscles
in addition to the twelve muscles of the leg inserted into
the foot, the limited motion of this area, as compared to
other parts of the body, is apparent. Take for instance,
the movements of the toes in the average adult. The action
of the great toe is markedly limited and that of the lesser
toes is almost lost. This loss of action is brought about by
a lack of use of the digits of the feet. The hands and fingers
being used continuously, the movements of these digits are
active and numerous. The toes have a like muscular supply,
but are far less efficient. The ability of the barefoot races
to use their toes as accessory fingers, is proof that lack of
development is due to lack of motion because of the toes
being encased for most of the time in footgear.
Hygiene of the Foot. The many perverted functions
of the foot that have been brought about by the use of modern
footgear have made it essential that this part of the body
be given special attention both by the specialist and by the
individual himself. There are several essentials for proper
foot care with which everybody should be familiar, and it is
the duty of the podiatrist to instruct his patients in these
essentials. The general hygiene of the foot is little understood
by the average layman, and the fact that a patient
takes a daily bath is no indication that the feet are being
properly cleansed. To accomplish this the foot should be
washed with soap and water, care being taken that any excrementitious
matter which may have accumulated between
[Pg 52]the toes is thoroughly removed. It is best to use warm
water for this purpose, and when the feet have been thoroughly
cleansed they should be rinsed in cold water. This
closes the glands which have become dilated by the heat; if
allowed to remain open, they will over-functionate. The
foot must be dried well, especially between the toes, and
after this has been done, alcohol may be applied to assist
in this purpose. Alcohol is both astringent and dehydrating.
In cases of a normally dry skin, alcohol may be dispensed
with; instead, a small quantity of an animal oil
should be rubbed into the skin; lanolin is very efficient for
this purpose.
Water, as a therapeutic agent, is used extensively and
has many advantages that are lacking in other remedial
measures. It is one of the most ancient of remedies, and its
value has been recognized to such an extent that there are
large institutes in this and other countries devoted exclusively
to hydrotherapy.
No other agent is capable of producing so great a variety
of physiologic effects as water; it is easily obtained and
is also readily adaptable for the various conditions in which
it is of benefit. Pastor Kneipp obtained excellent results
with his water cure in Europe, and although his methods
are not original creations, and their application was largely
empiric, they attracted international attention. The entire
system of treatment as practised by him was based upon
some hygienic principle, and most of the results achieved
were due to the application of common sense.
Water has three properties to which its value as a
therapeutic agent are due; first, its power to absorb and
communicate heat; second, its solvent properties; third, the
ease with which it changes its physical state from the liquid
to the solid or gaseous form. These three properties, either
alone or combined, are to be considered when water is
applied to the body as a therapeutic agent.
A given quantity of water by weight can absorb more
heat than any other substance. The readiness with which
[Pg 53]this heat is absorbed makes it possible to apply either heat
or cold to the body. Thus, ice applied to the body will melt,
and in doing so will extract a large amount of heat from the
tissues. It is valuable therefore in conditions such as local
infections, in which the heat of the body is above normal.
Every substance is more or less soluble in water.
Water is therefore called the universal solvent. Water is
the medium by which foods are dissolved and absorbed in
digestion; water also dissolves and carries off the waste
products to the various organs of elimination.
For therapeutic application, the temperature of water
varies from 32 degrees, F. to 120 degrees, F., depending
upon the condition in which it is used and also the purpose
of its use. Foot baths are of special interest to the podiatrist,
so that it is necessary to be familiar with the particular
type of foot bath that is valuable in the treatment of foot
lesions.
The alternate foot bath is used for stimulating the
cutaneous circulation, and acts as a general tonic for the
nerves and other tissues. The bath is given as follows: the
feet are placed in hot water for two minutes and then
plunged into cold water and kept there for 30 seconds.
They are then returned to the hot water for two minutes
and back into the cold water for 30 seconds. This is repeated
a number of times, always starting with the hot
water and finishing with immersion in cold water. This
bath affords great relief to those suffering with tired feet
after having worn shoes for a long period. As a general
hygienic adjunct, the alternate foot bath is of great benefit,
and should be employed at night before retiring.
Foot Care of Infants and Adolescents. About eighty
per cent. of the civilized, shoe wearing people, are foot
afflicted to a greater or lesser degree, and most of this can
be traced to neglect of the feet in infancy and youth. Many
of the most common diseases found in adults might have
been avoided if proper care had been taken and the causative
factors removed in proper time.
[Pg 54]
The foot of an infant, which has never worn a shoe, is
really a perfect foot, and it is the only stage in life in which
the perfect foot is commonly found. The toes are spread
and the forefoot is slightly adducted. When the first footgear
is selected for the infant (it must be borne in mind that
the foot grows rapidly at this age) the shoe should be of
sufficient length and width to allow for this growth. The
softest materials should be used for the first shoes of the
infant, for as the feet are not used in walking at this age,
the necessary support to locomotion received from the
material in the shoe, is a negative factor.
When the child commences to walk, the shoes should be
changed, and a sole should be provided. The upper should
be of kid, and should extend slightly above the ankle. Laced
shoes should be used, and continued throughout the entire
period of infancy and youth. The normal adduction of the
forefoot should be considered and the outer border should
curve inward in a gradual line. The foot should be measured
for shoes with the child bearing its weight on the foot.
This allows for the spread of the foot in weight bearing,
and measurements taken under these conditions give assurance
of a proper fit.
As the infant grows, the muscular strength of the legs
is increased, and eventually the limbs are strong enough to
support and carry the body weight. It is at this time that
the child will commence to walk by natural impulse or
instinct. From the short, jerky, uncertain step, there is a
gradual improvement and, with time, the infant gains confidence
and strength and the step soon becomes firm and
steady. The question is often asked of physicians and
podiatrists by anxious mothers: “why is it that my baby
does not walk?” It seems to be a source of worry to them,
for as these mothers watch other children walking, they
become envious and attempt to teach their children to walk.
Walking is a natural function and it is foolhardy to insist
upon infants attempting this foray until the bones to
which the muscles are attached are sufficiently unyielding
[Pg 55]and the muscles involved can coordinate for that purpose.
The use of artificial means of assistance for the child, viz.,
the various contrivances on the market that support the
child under the arms and allow the feet to drag on the
ground, should be discouraged.
Premature locomotion causes an unnatural strain upon
the legs and feet and is often the cause of malformations
which continue on in later life. Many foot and leg lesions
can be attributed to an over-anxious mother who insisted
upon her child walking before the time was ripe for it to do
so. Therefore it behooves every mother to allow nature to
have its way, and to wait until the legs are strong enough.
In cases where walking is unsteady, it may be advisable to
assist the strengthening of the muscles by massage and
passive motion.
The use of appliances to assist a child which already
walks should be guarded, and only when there is something
pathologically wrong should they be employed. Weak-ankle
shoes, or weak-ankle braces or supports, although
they apparently help the child’s gait, really retard the
normal motions at the ankle joint, and there is little possibility
of a compensatory increase in strength of the parts
as a result of their use. When the ankle is continuously
supported by some outside agent, the normal support, i.e.,
the muscles of the leg, become weaker. This is because they
are not used, and atrophy is the result. When conditions
are such that assistance must be sought, the part should be
exercised by massage, exercises and passive motion. It is
often a difficult matter to prescribe exercises for a child,
but if given in a cheery way, so that the child thinks it is
playing a new game or is having heaps of fun, the results
are often remarkable. The First Institute of Podiatry is
now planning an exercise room for children of the poor
whose locomotion is impaired and the experiment will be
watched with interest.
As the child grows into adolescence, the shoes should be
changed often enough to allow for the normal growth of
[Pg 56]the foot. It is better to buy shoes oftener, than to attempt
economy at the expense of health. The parents should
acquaint themselves with an orthopedist or a podiatrist to
advise and a competent shoe man, under the direction of the
advisor, should fit the shoes of the growing child. Thus,
caring for the same foot over a protracted period, such a
specialist is better able to judge the size and shape best
adapted for the individual. Walking and other forms of
exercise should be encouraged, especially those exercises
that develop the muscles of the foot and leg. It must be
borne in mind that the flat foot and weak foot of later life
are caused by deficient muscular action of certain groups of
muscles.
Foot Care of Adults. After the foot has attained its
full growth, and the bones have become calcified, correction
of the lesions involving the bony tissue is difficult. Young
persons who have been accustomed to wearing shoes with a
straight inner line, and with broad toes, will pass into middle
age without much, if any foot trouble. Slight friction
or pressure may produce small helomata, but these are of
little consequence and are easily relieved by intelligent care
and treatment.
As previously stated, pointed and narrow shoes with
high heels are responsible for many of the local foot lesions,
and corrective treatment should be begun at as early a
period as possible. When a person reaches middle age, the
bones of the foot have become set. Attempts at correction,
such as the prescribing of shoes with a straight inner line
for such persons, cause the foot to be put into an entirely
new position, and because the bones have become firmly
set, such a new departure is frequently fraught with discomfort,
and at times causes other bone and muscle troubles
which are painful.
In younger adults, correction should be gradual. It is
inadvisable to adopt radical measures for those who have
been wearing incorrect shoes, or who have been walking
and standing incorrectly for a long period of time. A
[Pg 57]woman who has been wearing high-heeled shoes for a few
years, has a shortening of the calf muscles which should
be corrected, but to change from a two-inch heel to one a
half-inch high, without gradually reducing the height, will
cause extreme discomfort. Appropriate exercises should be
advised and the style of the footgear should be gradually
and not abruptly changed as the foot responds to treatment.
Walking is one form of exercise in which every able-bodied
person can indulge, and is a means of maintaining
body health as well as of keeping the muscles of the foot
and legs strong. Like every other form of exercise, it
should be practised with caution. The individual who walks
long distances is placing an undue strain upon the muscles
of the lower extremity, and instead of being benefited, he
is being harmed. The position of the foot is important in
walking. The foot should point forward, and the forefoot
should swing slightly inward with each step. In this way
all of the muscles of the leg receive their proper share of
work. The pace should be brisk and steady, yet not fast
enough to cause the person to suffer in breathing. Slow,
leisurely strolls are useless as a medium for muscular improvement,
and are simply a waste of time.
The Care of the Soldier’s Foot. The foot of the soldier
is subjected to unusual strain, both on the march and while
in the trenches, and special care is necessary if the maximum
of efficiency is to be maintained. Hygiene should be
practised to a greater extent than under ordinary circumstances,
and immediate attention should be given to minor
troubles that might pass unnoticed in civil life.
The feet should be washed daily, and if long marches
are contemplated, they should receive this attention both
before and after the march. The feet should be thoroughly
dried after each washing, and dusted with some foot powder
that will absorb moisture. Lycopodium is the best base to
use in foot powders. Socks should be examined and if
found torn or badly mended, should be discarded because
the pressure of the spots that have been darned may result
[Pg 58]in painful troubles. Shoes should be large enough to accommodate
the spreading of the anterior arch in walking, yet
should be snug in the heel to prevent the foot from sliding
and creating friction. When soldiers are to serve in the
trenches their feet should be given special attention, to
prevent the possibilities of trench foot and other foot
lesions that are the result of trench life. It has been proven
by those who have gone thoroughly into the matter that the
water and mud which is found in the trenches is responsible
for these lesions, therefore it is necessary to guard against
it reaching the feet of the men. In addition to wearing rubber
boots, the feet should be thoroughly rubbed with some
greasy substance immediately before entering the trenches.
Mineral oils are best, and although the process of rubbing
the feet and legs with oil is repulsive to the men, it should be
compulsory, as it is the means of preventing loss of limbs.
Cloths dipped in melted paraffin and then wrapped around
the feet will suffice to keep the water from the skin.
Immediately after a siege in the trenches, the feet
should be thoroughly washed with soap and warm water,
carefully dried, and dusted with an antiseptic foot powder.
One containing boracic acid and talcum will answer ordinary
purposes. If abnormal lesions develop, these should
be treated in keeping with the requirements.
The men should receive instructions at regular intervals,
and lectures on the care of the foot should be given by
the officer in charge of that particular branch of the medical
department. Foot inspections should be made at prescribed
times, and during these inspections, the podiatrist can
easily determine whether or not the men are in need of foot
attention beyond that which comes with self-care. The feet
should also be examined before a march of ten miles or
more, and should be re-examined immediately after the
march. This procedure will save the men from developing
any serious trouble, as the beginning of any such trouble
is thus detected, and proper preventive treatment can be
applied, sufficiently timely.
[Pg 59]
One or two podiatrists should be attached to each
ambulance train while the troops are on the march, so that
they are available at short notice. The immediate application
of a shield or pad over some part of the foot that is
being irritated will often save the individual from foot infection
that may be serious. Too much care cannot be given
the feet of the soldiery as their efficiency is based upon their
powers of locomotion. It was the opinion of the first
Napoleon that an army moved upon its stomach. By that
he meant that plenty of proper food was essential to every
fighting force. In these times, it is conceded that the foot-whole
alone can be counted as competent soldiers, important
as may be the food question. It behooves us, therefore, to
give to the men who are willing to offer up their lives for
their country’s weal, the very best possible care, and although
the foot of the soldier has received no special attention
in the past, the time is now ripe for the recognition of
the podiatrist as an integral part of every officered unit
in the Medical Corps of the Army and of the Navy. From
a national economic standpoint alone, this recognition
should be accorded because it must be clear that unless
proper precautions are taken to note the condition of the
soldier’s feet before he goes overseas, thousands will be
found unavailable for first line work and will thus constitute
themselves an incubus rather than an aid to the fighting
force of our country.
[Pg 60]
CHAPTER VI
DRESSINGS AND BANDAGING
DRESSINGS.
Definition. A dressing is the material applied to a
wound for the purpose of excluding the air, stimulating repair
and protecting the affected areas from irritation and
from other untoward conditions.
Four classes of dressings are used in podiatry, viz.:
the moist dressing, the dry dressing, the ointment dressing
and the occlusive dressing.
The Moist Dressing. The moist dressing is generally
composed of several thicknesses of gauze applied to a part
and moistened with some germicidal, antiseptic, astringent,
antiphlogistic or sedative solution.
There are two forms of moist dressing: the evaporating
and the non-evaporating.
The Evaporating Moist Dressing, generally known as
the wet dressing, is an application of several thicknesses of
gauze saturated with a solution and allowed to remain uncovered
so that evaporation of the solution takes place.
The gauze is remoistened from time to time so that it is
kept continually wet. The action of this form of dressing,
independent of the specific action of the solution employed,
is heat reducing and causes localized anemia. It may be
employed wherever infection or inflammation is present.
The Non-Evaporating Moist Dressing is composed of
several thicknesses of gauze saturated in a solution and
covered with some impervious covering such as gutta percha
tissue, oiled silk or fish skin. This form of dressing, independent
of the action of the solution employed, is heat producing
[Pg 61]and locally hyperemic. It is contra-indicated in the
presence of pus, as the warmth and moisture produced by
its use is congenial to the growth of bacteria. It should
only be used when the skin is unbroken, in such cases as
sprains and bruises, or where the action of a poultice is
not contra-indicated.
The Dry Dressing. The dry dressing is composed of
several thicknesses of sterile gauze applied to a part and
allowed to remain dry. There are two forms of dry dressing,
(1) that in which the gauze itself is alone applied, and,
(2) one composed of dry sterile gauze or cotton used for
the purpose of applying a dusting powder, having either
antiseptic, astringent or stimulative qualities or in some
instances, all three. The plain gauze dressing is used where
asepsis and drainage alone are desired in a wound, all
symptoms demanding the treatment by means of drugs having
been eliminated. The gauze is used either as a “wick”
and packed into a cavity as a drain, or in a series of thicknesses
covering the whole affected area.
The dusting powder dressing consists in applying a
powder to the affected surfaces and covering the same with
several thicknesses of sterile gauze, or with a pledget of
sterile cotton. The dusting powder is used when astringency
is desired, as from bismuth subgallate (dermatol);
or where stimulative and antiseptic action is desired, as
from thymol iodide (aristol).
The Ointment Dressing. The ointment dressing is one
in which an ointment, held in place either by lint, gauze or
cotton, plays a conspicuous part in the repair of the lesion.
The ointment is either spread upon the fabric used, or is
applied directly to the affected areas by means of a spatula.
This form of dressing can be used in the treatment of
superficial inflammations, blisters, pernio, etc., but is contra-indicated
in the presence of a discharge, as the fatty or oily
base of the ointment interferes with the absorption of such
a discharge and so prevents proper drainage of the part.
The Occlusive Dressing. The occlusive dressing is one
[Pg 62]employed for the purpose of excluding the air and of completely
sealing the parts. In podiatry this occlusion is obtained
by the use of collodion, either plain or medicated, by
a combination of collodion and cotton, or by the application
of compound tincture of benzoin.
FABRICS.
There are a number of fabrics which may be used for
dressing materials in podiatry. The three most important
are gauze, cotton and lint.
Gauze is a thin meshed, loosely woven cloth employed
in the manufacture of bandages and used for wound dressings;
such gauze should be sterilized or impregnated with
antiseptics.
The varieties of gauze which are of practical use in the
practice of chiropody are:
(1) Plain aseptic gauze, either dry or moist; a gauze
sterilized either by dry heat, so that the fabric remains dry,
or subjected to moist heat (steam) sterilization from which
the gauze retains a certain amount of moisture. The dry
gauze is put up commercially in pasteboard boxes, and can
be thus obtained in quantities of one square yard and upwards.
The moist aseptic gauze is obtainable in as small a
quantity as the former, but comes in sealed glass jars which
may be kept upon the operating stand or cabinet.
(2) Corrosive sublimate gauze is put up in glass jars
in quantities of one square yard and upwards. The gauze
is saturated in a solution of mercury bichloride and may
be obtained in strengths from ¹⁄₂₀₀₀ to ¹⁄₁₀₀₀₀.
(3) Iodoform gauze is put up for surgical use in the
same manner and quantity as No. 2. The medication impregnates
the whole fabric and constitutes an excellent
method of applying the drug. On account of the suggestive
odor of iodoform, however, this gauze has lost favor with
the podiatrist.
[Pg 63]
(4) Borated gauze, or gauze impregnated with boric
acid in 10% strength, is used in podiatry where a mild antiseptic
dressing is desired. It comes in glass jars in
quantities similar to the two foregoing varieties.
The forms in which gauze are used in podiatry practice
are numerous. The following are the most important:
(1) Bandage.
Gauze, in varying
widths, makes a highly
practical bandaging
material. Cotton bandages
are used, but cannot
compare with even
the poorer grades of
linten gauze for durability.
The reader is
referred to the sub-heading,
“Bandaging,”
at the end of
this article.
LARGE GAUZE SQUARE FOR DRESSING
INGROWN NAIL
(2) Large gauze
squares. It is a common
practice among
podiatrists to cut large
quantities of gauze
into pieces about three
inches square. These
have two uses: (a), to
dry off instruments
dripping with alcohol
or whatever germicidal
solution has been used, before operation, and (b),
as a dressing applied over the affected area. In the latter
instance this size square is practical where the whole
distal end of the toe is to be covered, as in applying a moist
dressing in the treatment of ingrown nail, or where there
[Pg 64]is a large area to be covered on the dorsum, plantar or
lateral sides of the foot or upon the lower leg. As a “wipe”
for instruments, one thickness, and as a dressing, three or
four thicknesses are used.
(3) Small gauze squares. These are about an inch-and-a-half
square and have their principal use as a dressing to
cover one side of a toe nail, or to cover a small area of the
integument, or as a “wick” in the drainage of a large sinus
or deep ulcerative condition. Both the large and small
squares, cut to size, are sterilized by heat and are then
placed in a formaldehyde sterilizer until used; this assures
their absolute asepsis.
(4) Nail Groove and Sinus Pledgets. For the more
confined areas of the nail groove or for a small sinus, gauze
is cut into small pieces measuring about one-half inch long
and one-eighth inch wide. Several thicknesses of the fabric
are cut together so that even from a small amount of gauze
many small pledgets or “wicks” are obtainable. These
small gauze pieces are very practical for packing a nail
groove, and, as the fibre is looser and the pledgets do not
harden, they make a much softer and more yielding pad for
the nail than does cotton.
In the drainage of a small sinus, these small pieces of
gauze offer a very practical material for use as a “wick.”
Three or four strands of the fabric may be inserted at the
mouth of the sinus to prevent surface granulation, while
the repair in the deeper tissue is still incomplete.
Cotton. Cotton is the white, fluffy, fibrous covering of
the seeds of the cotton plant which, when ginned and refined
to a uniform smoothness, furnishes a medium which
is used extensively in surgical dressings.
Aseptic absorbent cotton is manufactured by a number
of firms and, except in the cheaper grades, no irregularities
or foreign matter are found in the fabric.
Cotton is used in podiatry practice by winding it on
the end of a wooden or metal applicator. The fabric, thus
[Pg 65]fashioned about the applicator, is used either dry or dipped
in some medication for applying solutions to the foot. It
is also used to dry parts or to wipe instruments; as a dressing,
it is used principally in combination with collodion to
make the cocoon dressing. This name is derived from
its resemblance to the cocoon of the silkworm or the butterfly.
A cocoon dressing is a pledget of cotton, the fibre of
which is smoothed and is placed in one direction, while the
edges of the pledget are thinned out or “feathered.” The
cotton is applied over the part and collodion (preferably
flexible collodion) is painted over it by means of a brush or
a glass rod in such a manner as to bind the edges of the
cotton firmly to the skin. The collodion when applied is
semi-liquid, and as its constituents, ether and alcohol,
evaporate upon contact with the air, the pyroxylin remaining
becomes an integral part of the cotton, joining intimately
with its fibres and with the surface of the skin.
After the edges are bound down in place, the collodion may
be painted once along the length and once across the fibre
at the centre of the dressing, so as to bind the dressing into
one cohesive whole; it is not wise, generally, to saturate the
whole pledget with collodion, as when dried, the dressing
will be hard and unyielding. In the procedure first described
the dressing is semi-occlusive; in the latter, occlusive.
The cocoon dressing is used principally as a covering
for a part when an ointment has been applied and, as
in these cases the parts beneath are tender, it is wise to
have the dressing as soft and pliable as possible.
This form of dressing may be used alone or it may
be applied as a covering and protection over the aperture
of a shield after an ointment has been applied to the part.
It is found very practical when applied over a nail fold and
groove in which an ointment has been used. The dressing
will confine the unguent to the proper areas and prevent it
from running over that side of the digit. In dressing a
blister or other irritated area, due to ill-fitting shoes or
[Pg 66]mended hosiery, the cocoon is also very practical. The
cotton not alone serves to hold the medication in place, but
acts as a padding so that the part may not be subjected to
further irritation.
Cotton is also used in the form of a small pledget for
packing a nail groove. The pledget or roll should be small
and thin and is used to hold a medication in place; at the
same time it constitutes a soft pad upon which the edge of
the nail rests.
Lint. Lint is a flocculent material procured by ravelling
or scraping linen.
Surgeon’s absorbent lint as a dressing and shielding
material, is continuously coming more into vogue. Otto
Sjogren of New York is a great believer in its efficacy and
in his demonstrations at The First Institute of Podiatry
strongly advocates its use. The late W. A. Kennedy of Philadelphia
was also strong in his advocacy of lint as a dressing
and is on record as follows: “The essentially favorable
feature in utilizing lint for shielding purposes is that, when
properly adjusted, there is no pressure on the parts which
it serves to protect. Most, if not all, of the material of which
shields are ordinarily made, is of an unyielding character,
and, in consequence, the capillary circulation of the compressed
part is disturbed. If such a condition exists, absorption
is prevented and the treatment is in most instances
harmful rather than helpful. Because lint is a
loosely woven cotton fibre, it does not pack in a hard mass,
but always remains soft and yielding; nor is it necessary
to apply it excepting in thin layers.
“The method of use should be as follows:
“Select a perfect sheet of lint and cut off a square or
oblong piece slightly larger than the lesion and round off
the corners so that they will not bulge when plaster strips
or bandages are applied. Then cut a round opening in the
lint, slightly larger than the lesion. Spread such medicament
as is desired on the part requiring it, and then place
the fluffy side of the lint next the skin, in situ, with the
[Pg 67]edges of the opening surrounding the part under treatment.
Over this dressing, place a piece of lint so as to
cover the existing dressing in its entirety and apply ordinary
adhesive plaster to retain the whole in place. The
thickness of the dressing represented in layers of lint will
depend upon the necessities of each individual case, but
in the experience of the writer, the most
satisfactory results are obtainable where
the dressing is least bulky. At times,
when several layers of the lint are requisite
to the patient’s comfort, it will be
found advisable to cut out the sides of one
of the under layers
for the purpose of
making a half-moon
dressing; then apply
the top covering.
“In the accompanying
illustrations
most of the required
dressings shown are
of two thicknesses
only, the under layer
having the round
opening and the upper layer acting as
a protective as well as an absorbing
medium. This method will be found
useful, in that drainage may take place
properly where there is a suppurating
surface, and even though the patient
does not return for treatment at the
time suggested, there will be no danger
of septic infection because of a damming
in the flow of exudate, a menace
which is so common in some forms of dressing. Patients
will rarely complain that the plaster ‘draws’ offensively if
the above dressing is properly applied.
DORSAL LINT
DRESSING
PLANTAR LINT
DRESSING
[Pg 68]
“The plantar aspect of the foot exhibits four full dressings
and half of another.
“The dressing covering the great toe may be utilized
for any lesion from a callous to a perforating ulcer; the
one on the distal end of the middle toe, for heloma or for
any other condition usually met with in this region.
“The dressing covering the fifth metatarsophalangeal
articulation can be applied for perforating ulcer, for callous
or for vascular heloma and can be placed anywhere
after treating this lesion. The dressing covering the os
calcis region is of a single thickness and can be used in
varying sizes for any lesion found on the plantar surface.
“The partial dressing, covering the first metatarsophalangeal
articulation is used from one to any required
number of layers for covering bunions, enlarged joints, etc.;
the other section of this dressing is shown on the dorsal
aspect of the foot in the other illustration.
“The dressing covering the dorsal aspect of the great
toe is used after any ingrown nail treatment and the dressings
on the third and fifth toes are applied after the removal
of helomata.
“The dressing covering the fifth tarsometatarsal articulation
is very useful in combating the calloused and oft-times
inflamed area produced by the side seam of shoes,
especially of the low-cut type.
“Lastly, the dressing covering the tarsal aspect is a
comfortable arrangement to apply after removing the minute
helomata produced by the eyelets of a shoe or for any
other lesion found on the dorsal surface.
“In case of extensive ulceration or of profuse discharge
from a lesion, it is advisable to use several layers of
sterile or medicated gauze before applying the absorbent
lint to the surface.”
Collodion. Plain flexible collodion is used extensively
in podiatry as an agent to bind cotton into place upon a
part or as a vehicle of application for a number of drugs,
or whenever an occlusive dressing is applied. Flexible collodion
[Pg 69]is ordinary collodion to which is added castor oil and
turpentine. These drugs serve to reduce the contraction of
the film during evaporation. Plain collodion, as evaporation
takes place, contracts in area and when applied is liable
to draw or “pucker” the skin about the part. Flexible
collodion has practically no contractile tendencies during
evaporation.
Flexible collodion, unmedicated, is used as an application
over chilblains or in other conditions where occlusion
is desired.
Medicated Collodions. Flexible collodion, medicated
with various drugs, is also used extensively in podiatry.
The four named and described below are the most important,
and are most generally used.
Iodized Collodion (C. Iodatum, N. F.). Iodized collodion
is a five per cent. solution of iodine in flexible collodion.
It is used in podiatry as a covering for the exposed
tender tissues after removal of a callositas or an heloma.
The film formed by the collodion serves as a protection
against friction to the part and the iodine contained in
the mixture acts as an antiseptic and counter-irritant.
This combination may also be used where any counter-irritant
action is desired and wherever the tincture may be
used.
Ichthyolated Collodion, 5 to 15% of ichthyol in collodion,
is used for the same purposes as the iodized collodion
in the protection of a previously pared callous, and as an
antiphlogistic and stimulant in erythematous chilblain, this
form of medication is used extensively and with good results.
It forms an occlusive film over the chilled parts,
and by the action of its constituent, ichthyol, serves to
stimulate the deranged functions and to promote absorption
in the congested parts.
Benzoated Collodion, 5 to 10% of tinctura benzoini composita
in flexible collodion, may be applied in post-operative
procedures in heloma, etc., as described in preceding
paragraphs, and is also efficient as a stimulant in the treatment
[Pg 70]of pernio and as a covering for blisters and other
superficial lesions where no discharge is present.
Salicylated Collodion is a medicated collodion with the
following formula:
It is extensively used in the medical treatment of heloma
or callositas. This combination is disintegrative in its
action and should not be applied on sound or normal integument.
Collodion, either plain or medicated, is contra-indicated
in the presence of a discharging surface. By sealing the
lesion, no drainage is possible, and the waste materials
thrown off are kept confined to the detriment of the healing
process.
Paraffin Preparations. Barth de Sandfort, a French
naval surgeon, in experimenting for drugs to treat the cases
of burns developing from the liquid fire and burning oil
attacks of the Great War, discovered and perfected a substance
known as “ambrine.” The exact composition of
this paraffin is a secret, and for this reason it has been received
coldly in this country, but a number of similar paraffin
preparations have been developed and are in general
use today. The four most popular of these are known commercially
as paraffin No. 7, paraffin No. 7-11, parresine and
redintol.
Paraffin No. 7 (Dr. Hull) consists of paraffin (hard),
67%; paraffin (soft), 25%; olive oil, 5%; oil of eucalyptol,
2%, and resorcin, 1%. To prepare paraffin 7, first melt the
hard paraffin, then add in the order named the soft paraffin,
olive oil, oil of eucalyptol and resorcin.
Paraffin No. 7-11 (Dr. Adams) consists of paraffin
(hard), 69%; paraffin (soft), 25%; olive oil, 3%, and thymol
iodide, 3%. The preparation of paraffin 7-11 is similar to
that described for the preceding combination.
[Pg 71]
Parresine (officially adopted by the United States
Army and Navy) is a wax-like substance, containing about
95% of paraffin; this is treated by the addition of a vegetable
wax and mineral and vegetable resins so as to modify its
physical character, especially as regards plasticity, ductility,
pliability and adhesiveness. It also contains eucalyptol, a
valuable antiseptic, which is added to cover the characteristically
disagreeable odor developing from burned surfaces
and other large abrasions during the process of healing.
Redintol is a mixture of paraffin and resins, having
similar melting points. The firm manufacturing it have
prepared a special form of sheet cotton for use in connection
with the application of this product.
Technic. The technic of the application of these
paraffin preparations is similar and is described in detail
in the chapter on “Burns.” The advantages of the wax
treatment are numerous.
(1) It is an inexpensive dressing (a pound of wax and
a pint of liquid petrolatum, together costing about sixty
cents, will dress many burns).
(2) It is a comfortable dressing because it is smooth,
and the granulating surface does not grow through it as with
the gauze. The paraffin is hard enough to make the dressing
somewhat rigid and to act as a splint.
(3) It is a cleaner dressing, because the wound discharge
is not permitted to soak through the impermeable
wax covering, soiling all the linens that come in contact
with the patient.
(4) Superficial burns heal more readily under this
treatment than with any other previously used method.
(5) It is a most comfortable dressing, for the reason
that the granulations do not grow through it, and the dressing
is lifted off painlessly.
(6) The resulting scars are not as pronounced.
(7) It is a stimulant of granulations.
Disadvantages. The disadvantages of the wax treatment
are:
[Pg 72]
(1) Some patients refuse to be treated with the wax
(it is applied hot directly to the injured area) because of
the pain.
(2) So many extravagant claims have been made for
it, that the one who uses it for the first time will probably
be disappointed.
(3) An infected wound is covered with a sealed dressing.
(4) We have no way of controlling the temperature of
the wax. Taken from the boiling water at 212 degrees Fahr.,
it is too hot. Cooling at 114 degrees Fahr., it is too cold.
The degree of pain caused the patient is the only means
one has of knowing if it is too hot, unless one tries it first
on the back of the hand.
(5) Around the skin edges it is painful.
IMPERVIOUS COVERINGS.
In connection with moist dressings, several varieties of
impervious covering may be used.
Oiled Silk is a rubberized material of great strength,
usually yellow in color and soft and smooth to the touch.
The use of this material is quite general in podiatry for all
moist, non-evaporating dressings. The technic of application
consists in cutting a square of the fabric of sufficient
size to cover the whole of the gauze dressing, also all
sides of the toe (if this be the location of use) and a considerable
amount of the surrounding healthy tissue. It is
held in place either by a roller bandage, or by means of
adhesive strips fastening down its edges to the adjacent
surfaces. Dressings covered by oiled silk are apt to be
bulky and for this reason, when the shoe is to be worn, it
is not generally used.
Gutta Percha Tissue is a thin perishable material placed
on the market by several firms. It is not to be compared
with oiled silk for durability, but the dressing covered by
gutta percha is not nearly so bulky, and for this reason it
[Pg 73]is popular and practical for use in podiatry. It is generally
applied over the gauze by vulcanizing its edges to
the surrounding integument. This is accomplished by
means of heat, and, when completed, presents a neat dressing
which is absolutely occlusive, and from which none of
the solution used on the gauze underneath can escape. A
square of the rubber tissue of sufficient size to more than
cover the dressing is cut and held in place with the hand.
A match is then applied to the edges of the square and
while they are still melted they are lightly adhered to the
surrounding skin. The tissue will adhere to the skin and
will remain intact for a considerable period of time. The
gutta percha is then covered by several turns of a roller
bandage to protect the thin tissue from the rubbing of the
shoe. Gutta percha tissue may also be held in place by
means of adhesive strips as with oiled silk, but the vulcanizing
process is by far the most popular and, insofar
as confining the solution is concerned, it is also far more
practical.
Fish Skin is a manufactured material of tissue paper
thinness and has proven very popular for use as an impervious
covering. The technic of application is similar to
that described for oiled silk and it is held in place by the
same means. It does not make a bulky dressing and for
this reason its popularity has probably exceeded that of
oiled silk.
BANDAGING.
A bandage is a strip of gauze, muslin, flannel or other
material of varying widths and lengths, used in the various
branches of medicine for retaining dressings, applications
and splints and to produce compression. Occasionally they
are applied to retain heat. Bandages also help keep a
wound clean by preventing the ingress of foreign matter.
Bandages are made of different materials, chief among
which is gauze. This is made of lint, woven into a soft
material, which is easily applied to all parts of the body.
[Pg 74]Muslin is a heavier cotton material and is made of cotton
or silk or of a mixture of both (lisle) with rubber. Flannel
is wool woven into a soft, firm, semi-elastic material. Rubber
bandages are used to induce excretion and for compression.
Bandages vary in width and length, depending on the
size of the parts for which they are intended. For convenience,
bandages are usually manufactured in widths
varying from one-half inch to six inches, and in length from
one to ten yards or more. Those which are used in podiatry
vary in width from one-half inch to three inches. The
standard length of bandages is five yards and ten yards.
These may be cut and the unused piece preserved. A table
of the widths of the various materials used in podiatry
practice, showing the parts for which they are best adapted,
follows:
LESSER
TOES
GREAT TOE
FINGERS
ANKLE
WRIST
ANKLE WRIST
LEG FOREARM
LEG
FOREARM
LEG
Gauze
¹⁄₂″
1″
1¹⁄₂″
2″
2¹⁄₂″
3″
Muslin
1″
1¹⁄₂″
2″
2¹⁄₂″
3″
Flannel
2″
2¹⁄₂″
3″
Elastic
2″
2¹⁄₂″
3″
Rubber
2″
2¹⁄₂″
3″
A roller bandage consists of one piece of material
rolled in the shape of a cylinder, having a core and a free
end, and is the kind used in podiatry.
A double roller bandage consists of one piece of material,
rolled from both ends, so that when it is completed
there are two cylinders and no free end.
A plaster of Paris bandage is composed of a piece of
gauze or crinoline into which is rubbed powdered plaster of
Paris. This bandage is placed in water and then applied
to a part; after a few moments the entire bandage becomes
hard and solid. This form of bandage prevents mobility
and is used for fractures and dislocations. In podiatry it
is used for taking impressions of the foot for fitting mechanical
[Pg 75]appliances. Bandages are classified as follows:
Circular—being circular turns around a part.
Figure of eight—the turns crossing each other like the
strokes of the figure 8.
Oblique—covering the part by oblique turns.
Recurrent—the turns returning to the point from
which they originated.
Spica—the turns crossing and recrossing, resembling in
arrangement the husks of an ear of corn.
Spiral—the turns ascending or descending, each turn
covering about two-thirds to three-fourths of the preceding
turn.
Spiral reverse—when the bandage is turned in reverse
position so that the inner side becomes the outer and the
outer side rests against the skin, in order to better adapt
itself to the part.
Bandages are designated by various names, according
to the shape they assume when completed, and they are
sometimes named after the men who first used them; for
example, “Barton’s bandage” of the head.
The bandages used in podiatry are designated by the
shape they assume. The names of the various bandages of
the foot follow in the order of their importance:
Spiral bandage of the toes.
Spica bandage of the foot.
Figure of eight bandage of the ankle.
Spiral reverse bandage of the leg.
The Spiral Bandage of the Toes. This bandage is
applied to the great toe more often than to the lesser toes.
Gauze, one inch wide for the great toe and one-half inch
wide for the lesser toes, is used.
This bandage may be started by a few circular turns
around the ankle, then diagonally across the dorsum of the
foot to the base of the great toe; but this may be simplified
by making a simple circular turn around the proximal end
of the toe, with the free end towards the heel, which will
[Pg 76]firmly lock the bandage. If the distal end of the toes is to
be covered, the bandage is now applied from the proximal
end of the toe on its plantar surface, over the distal end to
the proximal end on the dorsal surface. This is repeated
back and forth as often as necessary to cover the parts by
what are known as recurrent turns. The spiral turns are
now started and as the bandage moves toward the distal end
of the toe, each turn must cover about two-thirds or three-fourths
of the preceding one. When the toe is covered, the
spirals are continued back to its base, where the bandage is
tied off. Many toes are not cylindrical but taper to a point;
so that when the spirals reach the distal end of the toe, the
bandage bulges on the inner side. This bulging may be
avoided by making a reverse turn over the part instead of
a simple spiral.
The Spica Bandage of the Foot. Bandage 1¹⁄₂ to 2
inches wide is used, depending on the size of the foot. The
free end of the bandage is placed on the dorsum of the foot
at the ankle joint, and is locked by several circular turns
around the ankle. The bandage is passed diagonally forward
across the dorsum of the foot to a point opposite the
head of the metatarsal bone, then across the plantar surface
of the foot to the opposite metatarsal bone, and diagonally
backward across the dorsum of the foot, crossing the first
half of the turn, producing an X. The turn is finished by
passing the roller back over the tendo Achillis. This is
repeated, the second turn covering about two-thirds of the
first and so on backward until the desired area is covered.
The bandage is finished by a few circular turns around the
ankle and is tied off in the usual manner.
Figure of Eight Bandage of the Ankle. This bandage
resembles the spica bandage of the foot in every way except
that the first turn extends to the base of the metatarsal bone
instead of to the head and, instead of tying it off at the
ankle, a few spiral reverse turns are made up the leg. It is
tied off as are the other bandages.
The Spiral Reverse Bandage of the Leg. This bandage
[Pg 77]is considered by many to be the most difficult of all the
bandages of the extremities to apply. A few figure of eight
turns are made around the ankle and then the spiral turn
is made; the bandage is reversed so that the inner side becomes
the outer and the outer side rests against the skin.
Each turn should cover about three-quarters of the preceding
one, and care should be taken that at the point of
reversing the bandage, no wrinkles or uneven folds are
produced. The reverse turns should not be made over a
wound or a part that may be irritated by additional pressure.
[Pg 78]
CHAPTER VII
INSTRUMENTS
TYPES, VARIETIES, USES,
THEIR SELECTION AND CARE
No comprehensive monograph has yet been written discussing
at any length the instruments of the podiatrist, and
in compiling the following data there must necessarily be
omissions. Up to the present moment no great amount of
standardization has been accomplished along this line, either
in the general use of a given instrument or in its name. It is
the object of the author of this chapter to at least build a
foundation upon which a complete and standardized line of
instruments may be developed.
Many special instruments developed by practitioners
who have refrained, for reasons best known to themselves,
from giving their ideas and discoveries to the profession at
large, must necessarily be omitted, and it is to be greatly desired
that the next few years will be rich in the development
and standardization of our instruments and appliances.
The instruments in general use today and manufactured
by several companies, are all made practically of the
same material and in the same manner, the differences
between them, being due principally, to the finish. All such
instruments as chisels, scalpels, spatulas, curettes, etc., are
made from Sheffield steel, and are hand forged. The handles
of these instruments are made of a silver or aluminum composite.
Scissors, nail clips, thumb forceps, etc., are made
also of Sheffield steel, but are drop forged.
Most instrument makers today have discarded the older
method of finishing, known generally as the “crocus” polish.
[Pg 79]This has come about principally for the reason that the application
of the crocus polish or finish demands that the
instrument be subjected to extreme heat. In accomplishing
this, many instruments are rendered useless owing to the
fact that the temper of the blade is ruined by the added heat.
What is commonly known as a “satin” finish, accomplished
by buffing, is now generally employed and does not
tend in any way to injure the already highly tempered steel.
HISTORY OF INSTRUMENTS
With the exception of possibly two or three, it is doubtful,
if chiropody has developed any really individual instruments.
Our scalpels are similar to or are modifications of
those of the surgeon; the nail chisels and excavators in general
use have been borrowed from the realms of the dentist,
as has the rotary drill; the nail clips, of course, are instruments
which are purely for the purposes coming within the
jurisdiction of the podiatrist; so, also are the various forms
of the nail file.
The chisel used by a great number of practitioners for
the surgical removal of helomata, is one of the oldest of
chiropody instruments and is one which was unquestionably
developed by the chiropodist for his own needs. There is
no instrument in use by the surgeon which bears any resemblance
to the chisel, and for this reason we can safely
say that it is a true chiropody instrument and may therefore
safely be called the helotomon—the podiatry surgical instrument.
This also, in a measure, can be said of the soft
corn spoon. This is, to be sure, nothing but a very shallow
curette, but nevertheless no instrument in use in general
surgery can be rated as being similar to it; it is therefore
properly styled the podiatrist’s curette.
Prior to 1909, the chiropodist found it necessary to
select his own manufacturer and have his instruments made
according to his own ideas, or to select them from the catalog
of the surgical supply house. This condition of affairs resulted
[Pg 80]in a wide diversity of styles. No two practitioners
had similar instruments, and it seemed to furnish keen
delight to one chiropodist to outdo his neighbor as to the
size, finish and appearance of his instruments. Pearl handled
scalpels were much in evidence and, when so, served to
prove, without question, that the owner did no sterilization
by boiling. Gold-plated
blades and
inlaid handles
were frequently
to be seen, proving
nothing, unhappily,
but the
eccentricities of
their owners.
In the year
1909, however,
the manufacture
of instruments as
individual appliances
for the chiropodist
was
started at the instigation of the late George Erff, by an instrument
maker in Jersey City, N. J. His wares found such
instant approval and the sales of his product so increased
that it was not long before several other firms embarked in
the business of manufacturing instruments solely for chiropodical
work.
This has done much to standardize instruments and
today men and women in all parts of the world are beginning
to use similar instruments made from standard
patterns.
Fig. 1. SCALPELS
The Scalpel. Several varieties of scalpel are used in
podiatry today. Some of them have been developed from
an absolute need and some from the personal desire of the
practitioner. The scalpel should be about five-and-one-half
inches long, having a blade length of from one-and-one-half
[Pg 81]inches to one-and-three-quarters inches. Made from these
dimensions, the instrument is practical as to size and has a
working surface sufficient for any purpose.
Fig. 1 shows several varieties of scalpel. No. 2 in this
group is a practically shaped blade to be used for work on
callositas or heloma. This instrument will maintain a good
shape with honing and is used by a great number of practitioners.
This No. 2 is used for the removal of heavy callous and
general work. Nos. 3 and 5 may be successfully used for the
dissection and removal of helomata. These pointed scalpels
are indicated whenever delicate work on small surfaces is
demanded.
Fig. 2. CHISELS
The Chisel. The heloma and callosity chisels, Nos. 1, 2
of Fig. 2, are about five-and-one-half inches long with
a blade length of one-and-one-quarter inches. Nos. 5 and
6 are nail chisels and will be discussed under that
heading.
A series of chisels which are advocated by Harry P.
Kenison, of Boston, differ from those shown in Fig. 2 only
in that the handles are one-quarter of an inch in
diameter and are round, being corrugated to prevent
[Pg 82]slipping. These instruments are five-and-one-quarter inches
long.
Fig. 3. HELOMA AND CALLOSITY
CHISELS
Fig. 3 shows heloma and callous chisels (helotoma)
recommended by E. C. Rice,
M.D., of Washington, D. C.
This variety of instrument is
used principally for dissection
work, but is also useful
for shaving or paring
methods. No. 1 of this group
is used principally for large
calloused areas on the plantar
surfaces of the foot. The
handles of these instruments
are hexagonal and are five-and-one-quarter
inches long.
The Nail Chisel. Varieties
of straight chisels for the removal
of ingrown portions of
nail are shown in Fig. 2,
Nos. 5 and 6.
Curved nail chisels are
shown by Nos. 1 and 2 in
Fig. 4. Their use is described
in the chapter on Ingrown
Nails. Nos. 3, 5, 6, in
this group, are nail packers
used for packing gauze or
cotton in the nail groove. No.
4 in this figure is a curette
excavator used for the removal
of nail splinters or
callous from the nail groove.
There is a newer type of
nail chisel with a guard
along one edge. This is to
prevent the instrument from
[Pg 83]penetrating the soft tissues of the nail bed while removing
an imbedded portion of nail. This flange also aids in lifting
the nail from its bed and in breaking up adhesions which
may have formed in advanced cases.
No. 2, Fig. 5, is a nail groove gouge used for
the removal of callous in that location.
Soft Corn Spoon. (Podiatrist Curette.) The
soft corn spoon, Fig. 6, is in reality a shallow
curette used for the purpose of dissecting an epithelial
growth between
the toes. The working
edge of the instrument
is sharp.
A modification of this
spoon is shown in Fig. 5,
No. 1. This instrument
is commonly known as a
“golf stick.” It is used
for the same purpose as
the soft corn spoon.
These instruments are
of the same length, in
[Pg 84]fact, are uniform in every way to the scalpel and nail chisel.
The Spatula. This is an instrument used almost entirely
for the mixing of ointments and their application to
a part. It is not sharp. (Fig. 7, No. 1.)
The Nail Scraper. The scraper is used for cleaning
around the nail, and for the removal of any callous which
may be adherent to the nail body in or about the grooves.
Two varieties are shown in Fig. 7, Nos. 2 and 3.
Fig. 7. MISCELLANEOUS INSTRUMENTS
Fig. 8. EXCAVATORS WITH DETACHABLE HANDLE
The Excavator. Excavators for use in the nail grooves
are of great service to the podiatrist. Probably the most
practical variety of this instrument is that borrowed from
[Pg 85]the dentist. This form of excavator is composed of two
parts, a handle, called commercially a cone socket handle,
and an excavator point which screws into the hand piece.
These points may be obtained in a great
number of styles but the two shown in
Fig. 8 are practical in all cases. No. 2
has a small semi-sharp point, while No. 1
has a larger point and is dull. These instruments
can also be used as packers for
placing gauze or cotton under the nail
and in the grooves.
Other forms of excavators are
shown in Fig. 9. No. 1 is a combination
excavator and packer; No. 2, a packer;
No. 3 an excavator; No. 4 a combination
spatula and packer.
Fig. 9. EXCAVATORS
Fig. 10. INGROWING NAIL INSTRUMENTS
Special Ingrown Nail Instruments.
A set of special instruments for use in
surgical procedures in ingrown nail
cases is shown in Fig. 10. Nos. 1, 2, and
3 are used for the removal of ragged
edges of nail. No. 4 is a nail elevator,
used for pre-operative examination, and
No. 5 is a special oil stone used for
sharpening Nos. 1, 2, and 3.
Ingrown Nail Forceps. Two types
of forceps for the removal of the imbedded
[Pg 86]portion of the nail after it has been loosened from
the nail body, are in general use. One is of a curved variety
and is particularly practical; the other has a straight point
and a locking device and is in reality a small artery forceps.
Fig. 11 shows the
straight point
forceps.
Fig. 11.
STRAIGHT NAIL
FORCEPS
Fig. 12.
NAIL SPLITTER
Ingrown Nail
Clippers. The
clipper shown in
Fig. 12 is used
almost entirely in
ingrown nail
operations. It is
extremely light
and if used in the
general cutting of
nails will surely
be sprung. The
clipper illustrated
is more correctly
a nail “splitter.”
These clippers
may be obtained in two sizes, four and
one-half and five inches.
Nail Clippers. The nail clipper
should be of heavy stock so that all nails
may be easily cut without injury to the
instrument or pain to the patient. A
heavy nail clip, even though it be dull,
will do much more efficient work in general,
than will a sharp light clipper.
Two styles of nail clippers are shown here. Fig. 13 is
a clip for general work while Fig. 14 finds its particular
efficacy in club nail cases. Notice the angle of the blade in
this type of instrument.
Fig. 13. NAIL CLIPPERS
Fig. 14. CLUB NAIL CLIPPERS
Thumb Forceps. Thumb forceps are used extensively
[Pg 87]in podiatry practice. All sterile dressings are handled with
these instruments to insure immunity from the contamination
of the hands.
Three varieties of thumb forceps are shown in Fig. 15.
No. 1 has needle point corrugated jaws; No. 2 has curved,
[Pg 88]corrugated needle jaws; and No. 3 is a heavy pointed corrugated
jawed instrument. These three styles are all four
inches in length.
Iris Tooth Forceps. This instrument is used where the
dissection method of treatment is employed. The sharp
teeth at the end of the jaws, grasp the thickened mass
as it is loosened from its bed. (Fig. 3-A.) The ordinary
thumb forceps may also be used in this connection but they
are much more liable to slip than are those of the iris tooth
variety.
Fig. 15.
THUMB FORCEPS
Fig. 16. HEAVY
STRAIGHT
SCISSORS
Fig. 17. HEAVY
CURVED SCISSORS
Scissors. The podiatrist needs at least four styles of
scissors in his general practice.
For buckskin, felt and adhesive plaster a heavy scissors
with straight blades is necessary. This scissors should be
six or six and one-half inches in length and should preferably
have round ends (Fig. 16).
[Pg 89]
A pair of heavy, curved scissors is also useful for
shaping shields, cutting apertures and for other similar
work. It is suggested that these be not too large for they
are apt to be unwieldy. Four and one-half or five inches is
ample size, and one point should be rounded, and one
pointed (Fig. 17).
Fig. 18. CUTICLE
SCISSORS
(Curved Blades)
Fig. 19.
CUTICLE
SCISSORS
(Straight Blades)
Fig. 20. BANDAGE
SCISSORS
Cuticle scissors are useful in many chiropodical procedures.
Fig. 18 shows a four-inch, lance point curved
scissors. Fig. 19 shows a four and three-quarters inches
straight pointed cuticle scissors.
A small bandage scissors, (Fig. 20) should be included
among the podiatrists’ instruments. It is not necessary to
have a large pair, but one about four and one-half or five
inches in size is very useful.
[Pg 90]
The Hypodermic Syringe. The choice of the hypodermic
syringe is purely a matter of preference, but certainly
an all-glass syringe (both barrel and piston) appears to be
more practical from the standpoint of use and of sterilization.
The metal barrel syringe is fast going out of use excepting
of the type in which no washers are employed. A
syringe having a capacity of 2 c.c. is ample for the use of
the podiatrist (Fig. 21).
The Rotary Drill. One of the greatest boons to modern
podiatry is the development of the rotary file or drill for
their use. This instrument has become so all important in
the treatment of many nail diseases, and, in fact, in the
prophylactic treatment of the normal nail, that we may well
wonder how any results were obtained before its advent.
It is not the purpose of this chapter to go into the
mechanism of the drill, but the selection of burrs is a subject
which is of such importance as to merit mention.
[Pg 91]
Fig. 22 shows several varieties of rough or “cutting”
burs for use in grinding down club nails. In this group
“B,” “D” and “E” are particularly practical.
Finishing burs are those used to smooth off the nail
after the use of a cutting bur, for filing the edges of a
normal nail, or for thinning the nail
in prophylactic treatments (Fig. 23).
The Nail File. The hand file, for
smoothing the edge of a nail after clipping
(Fig. 24), should have a smooth
and a rough side. The rough side is
used in cases where the use of a drill
is impossible.
Toe Separators. These are appliances
used for the purpose of holding the toes apart while
operating between them. The implement shown in Fig. 25,
depends upon the tension of the heavy wire for its efficacy.
There is also an appliance used for similar purposes which
is dependent upon a screw adjustment.
Fig. 23.
FINISHING BURS
Fig. 25. TOE SPREADER
Fig. 24. HAND FILE (SHOWING ROUGH SURFACE)
Applicators. Applicators, used for solutions, may be
obtained in metal and in wood. Those of metal have a short
hexagonal handle and are corrugated at the distal end so
that cotton may be wound about
them.
The wooden applicator is a
small round stick about six inches
long. Such applicators are more
practical than those of metal, for
they may be thrown away after use.
The metal applicators corrode after
several applications of a corrosive
drug and soon become useless.
[Pg 92]
The Skiving Knife. The choice of a knife for the manufacture
of shields of felt or buckskin depends principally
upon the fancy of the user. Some prefer an all-metal, flat-handled
knife similar to those used by leather workers (Fig.
26); others find it more practical to employ a blade set in a
larger wooden handle, claiming that more purchase can be
brought to bear upon the material to be cut,
and consequently more accuracy is obtained.
An instrument, known commercially as the
“Murphy” knife, is a practical example of
this latter variety. It has a wooden handle
about four inches long, and a blade of similar
length. The cutting edge is narrow toward
the point and gives the operator a bias edge
with which to do his cutting. The all-metal
knife blade is similarly slanted. Skiving
knives need not be made of the finest, highly
tempered steel, and the edge placed upon
them, when honed, need by no means be a
“razor” edge.
Fig. 26.
SKIVING
KNIVES
CARE OF INSTRUMENTS
Instruments need care just as do any fine
machine. Knives and other pieces of fine
metal will rapidly lose their usefulness unless
proper and unceasing care is taken of them.
Honing. Nearly every chiropodist at
the present time hones his own knives or
chisels. This is an art which comes naturally
to some but usually is only developed through
constant practice. The first important point that needs to
be considered in this connection is the selection of a hone.
A hone is a plane true block of fine compact stone for
sharpening edged tools, and there are a number of these
which may be used for podiatry instruments.
The Belgian Hone is in all probability the most popular
of the sharpening stones and when genuine and of fine
quality, they are superior to all other forms of stone. One
[Pg 93]of the principal drawbacks in the purchase of a hone of this
variety is the fact that many are manufactured of a composite
substance which is extremely hard and upon whose
surface no impression can be made with the instrument. All
hones should be fairly soft, so that the knife blade, as it is
drawn across the surface, will take hold, and not “rough”
or “gritty.” Any stone which has a tendency to roughness
or coarseness will never put a real fine “razor” edge on a
delicate instrument.
The Swatty Hone has been popular for years among
barbers and others who are called upon to use razor-like
blades. The one disadvantage in the use of this variety of
stone is that they are hard, and considerable honing is
needed to place a proper edge upon the instrument.
The Oil Stone is used more particularly for heavy instruments
not demanding a fine surface for finishing. Skiving
knives and the like may be successfully sharpened on
stones of this kind. Some practitioners prefer to “rub
down” an instrument on an oil stone or a “carborundum”
stone and then smooth the edge or “finish” it on a genuine
old rock Belgian hone. Carborundum hones cannot be obtained,
as a rule, fine or smooth enough for real delicate
work on podiatry instruments, but they are efficient for
heavier instruments.
Technic of Honing. Having selected a stone the block is
placed before you on a table. The knife is grasped firmly by
the handle with the thumb and the third, fourth and fifth
fingers. The second or index finger is placed at the junction
of the blade with the handle on the upper surface. The
blade of the knife is now laid upon the hone in such a manner
that it is flat upon the stone’s surface, and, using the whole
forearm, the fingers and wrist remaining stationary so that
the angle of the blade remains unchanged, the blade is
drawn in an oblique (right to left) direction toward the
operator’s body. It must be remembered that the blade be
drawn obliquely for if it be drawn straight no edge will be
placed upon the instrument.
[Pg 94]
Having completed this oblique stroke, the whole instrument
is turned in the hand and laid upon the stone so that
the other side of the blade is now upon its surface. An
oblique (left to right) stroke is then made toward the
operator using, as before, the whole forearm. This stroke
having been completed the whole procedure is recommenced.
The marks appearing on the blade of the knife caused
by contact with the hone, plainly tell the operator whether or
not he has the proper angle or whether he is holding the
blade at the proper level through its long axis. Testing the
sharpness of the blade on the finger-nail or skin, or judging
from the appearance of the contact marks, tells the operator
whether or not the instrument be sufficiently sharp.
Do not overhone! This is a bad fault and will develop
a “wire” edge on the instrument which may take hours to
remove. An edge may be “wired” also by continued heavy
pressure during the honing process. This should also be
avoided. Usually several heavy strokes on either side of
the blade, followed by a series of lighter ones, is sufficient
to place an instrument in serviceable condition for a considerable
period of time.
Polishing. Instruments which are subjected to boiling
sterilization are bound to become discolored (not rusted)
no matter what chemical may be put in the water to prevent
this condition. For this reason it is found necessary, if the
brightness of an instrument is to be retained, to clean or
polish it from time to time.
Scrubbing with sapolio or some similar substance, not
too gritty, will serve to remove most of the stains but the
labor occasioned by a procedure of this kind is considerable
and is greatly lessened by the use of a motor buffer or
polisher. In cases where rust stains are present, this
machine is indispensable, for no amount of manual rubbing
will remove these marks. The buffer wheel should be of
some soft material, usually chamois, bound firmly. Machine
buffing can never be used on delicate, sharp blades, as it will
ruin whatever edge may be present. Handles may be
[Pg 95]cleaned efficiently as can scissors, thumb forceps, and similar
instruments by this method.
Wiping. After an instrument is removed from boiling
water it must be thoroughly dried if it is to be kept in good
condition. The ideal sterilizer is one combining a superheated
steam chamber, or a water boiling receptacle, and a
dry hot air chamber for drying the instruments after sterilization.
If such an apparatus is not included in the podiatrist’s
equipment, the instruments must be thoroughly
wiped until dry. This must be done with a sterile wipe to
maintain surgical cleanliness and the process must be
thorough.
Care must be exercised in using superheated steam as a
sterilizing agent that the instrument does not remain for
too great a length of time in the vapor. Boiling water can
only reach 212° F., and an instrument will stand subjection
to this degree of heat for a considerable time, but steam is
often heated to twice this degree and this terrific temperature
is bound to untemper an instrument which is allowed
to remain in the vapor over 30 or 40 seconds.
[Pg 96]
CHAPTER VIII
SHIELDS AND SHIELDING
Shielding is one of the most important branches of
practical podiatry. A great amount of study must be
given to this work, and to afford his patient relief and comfort
through the application of shields and strappings, the
operator is continuously called upon to exercise his mechanical
ingenuity or to develop this trait if it be not already
existent.
The surgical treatment of a condition may be faultless,
and yet upon the application of an ill-fashioned or poorly-fitted
shield, the patient will experience even a greater
amount of discomfort or pain than before the treatment was
commenced, and the operator’s previous good work is thus
undone.
Definition. A shield is an appliance fashioned from
some skin or fabric and used for the purpose of relieving
pressure or friction, or to protect a tender part upon the
foot. The nomenclature which is adhered to under this
heading is comparatively a simple one. The various forms
and varieties of shields mentioned and discussed are named
either for their shape or for the particular parts of the foot
to which they are applied. In some instances the two are
combined. Thus a “lateral plantar half-moon or crescent
shield” has a crescent shaped body and is used for the
protection of an area on the lateral part of the plantar
surface.
MATERIALS
Various materials are in general use today in the practice
of podiatry for padding or shielding. The object is to
[Pg 97]give here a brief yet comprehensive description of each in
its turn, together with a general survey of when, where and
how they may be used.
Chamois. This skin presents a material which may be
used in shielding parts where a pad of great thickness is not
required. Chamois skin is quite thin and has not a great
deal of stability or “body” in its make-up, and skins of a
uniform thickness throughout are seldom obtainable. The
hide thins out considerably toward the belly of the animal
and for this reason there is a great amount of waste. However,
in many cases chamois may be used with success in
connection with helomata on the dorsal or outer lateral surfaces
of the fifth toe, the dorsal surfaces of the intermediate,
and the ends of all the toes. For heloma molle, shields of
chamois may also be used to good advantage, as they are
soft and pliable and when placed between the digits they
readily take the shape of the toes without causing the irritation
following the use of shields of a coarser or stiffer
“body” in like positions.
Buckskin. Buckskin is probably the most generally
used material for shielding in practice today. This hide
has good “body” and even when skived to paper thinness
retains a great amount of its stability. Buckskin can be
obtained in thicknesses ranging from one-sixteenth to one-quarter
or even three-eighths of an inch, but care should be
exercised in its selection that no pieces of coarse-grained
skin be chosen. This is noted because the coarse or
“pebbled” skin does not skive readily, and when bevelled
off, the edges remain ragged and uneven. There are several
firms manufacturing excellent grades of buckskin.
Shields of buckskin may be generally used in all conditions
and locations, the thinner skins on the toes and dorsal surfaces
and the thicker on the plantar surfaces and on the
metatarsophalangeal joints of the great and fifth toes.
Adhesive Moleskin. A so-called moleskin having a prepared
medicated adhesive substance on one side is becoming
very popular with the profession. It may be obtained
[Pg 98]in rolls of from one to ten yards long, and from seven to
twelve inches wide. It is very thin but has good “body,”
and under the pressure to which it would be ordinarily subjected
as a shielding material, does not stretch nor pull out
of shape. Because of this thinness and its pliability and
softness, no skiving of its edges is necessary, and it makes
a neat, clean, practical material from which thin shields may
be fashioned. Adhesive moleskin may be employed wherever
chamois or the thinner grades of felt or buckskin are
used.
Sheep Skin. Sheep skin is one of the lesser used but,
nevertheless, practical shielding agents. Its one disadvantage
is that the finished surface is smooth and shiny and
an adhesive substance does not remain intact unless applied
at the time the shield is to be used. This, however, does not
present any serious objection to the use of the skin, as it is
easily skived, has good “body” and presents a neat, clean
appearance on the foot. It is employed wherever chamois
may be used.
Felt. Plain white piano felting, of the softer and more
pliable grades, is largely used at the present time. This
felt can be obtained in thicknesses of from one-sixth to
three-eighths or even one-half inch. The last mentioned
thickness is very seldom used, and then only in cases where
a slight support is needed for the longitudinal arch or as a
pad in cases of painful heel. In both these instances the
felt is pasted in the shoe rather than adhered to the foot.
The one-sixteenth inch grade is used (1) between the toes
(applied usually without adhesive); (2) as a substitute for
chamois, kid or buckskin in all places where these latter may
be used. The thicknesses ranging from one-eighth to three-eighth
inch are used generally on the lateral surfaces of
the first and fifth metatarsophalangeal articulations, on the
plantar surface under the prominences of the same joints,
and for protecting painful areas on the dorsum of the foot
(its lateral borders), or in the region of the heel and the
tendo Achillis. Felt shields may be applied with or without
[Pg 99]adhesive, and strapping should be done dependent upon the
length of time the shields are required to remain.
For badly inflamed or tender helomata, felt presents
an ideal material for shielding. Shields of this material are
softer and more yielding, and while they cannot be expected
to stand the same amount of usage as those of buckskin
they are, nevertheless, strongly recommended in the above
named condition. After the aperture is cut to fit the part
to be protected, its (the aperture’s) edges are nicked with
scissors so that when applied they will expand and readily
take the shape of the indurated areas. While they naturally
pack down and become of denser consistency than at the
time of application, felt shields never become as hard as
those made of buckskin.
Adhesive Felt. This is the ordinary prepared felt
manufactured by several firms, one side of which is covered
with a preparation of dry gum arabic. Upon moistening
this adhesive, the shield may be adhered to any part. Shields
of adhesive felt are very handy to use when protection is
desired for a short time and are very seldom strapped unless
they are to be applied to the plantar surfaces. They have
no specific use and may be applied wherever shields of other
materials are used.
Lamb’s Wool. This material is used principally for
insoles in shoes in cases of painful heel or severe callosities
on the plantar surfaces, and in conditions where the integument
of the foot is thin and the patient experiences pain or
burning sensations when walking. The wool is left on the
hide, so that there is ample body for the application of adhesive
substances. This material, in the uses mentioned
above, is seldom adhered to the foot itself, but is, rather,
placed in the shoe.
PREPARATION OR MANUFACTURE OF SHIELDS.
The definite points to be considered in the making of
a proper fitting are not many; these are important:
[Pg 100]
1. Location of the part to be protected so that the size
and shape of the shield may be determined.
2. Thickness of the shield.
3. Skiving.
4. Aperture.
Location of the Parts to Be Protected. Extreme care
should be exercised in deciding upon the size and shape of
the shield. The location and size of the area to be protected
should be taken into consideration and the shield should be
so fashioned that no part of it extends on the tissue upon
which its presence might cause irritation. For instance,
a shield is to be applied on the dorsal surface of one of the
intermediate toes; it should be wide enough to cover the
surface of that toe, but should not be allowed to curl downward
upon the digit’s lateral surfaces or to lap over or
extend upon the adjoining toes. Again, a shield applied on
the plantar surface should never be allowed to extend forward
to a point where it might crowd under the toes and
come in contact with their webs.
No shield applied for the protection of one area should
be allowed to extend over and press upon another area
which is not normal integument. The reason for this is
obvious, for in covering an heloma, for instance, a greater
amount of pressure is brought to bear upon that excrescence,
with the result that it is subjected to a greater amount
of irritation and pressure than would be caused by the shoe
itself.
Thickness of the Shield. Just as great harm is brought
about by using a shield that is too thick or too thin as follows
the absence of the protection which a shield provides.
If it be too thick, the great amount of pressure put upon
the surrounding area will depress those tissues to such an
extent that severe congestion, with its accompanying pain
and discomfort, is liable to ensue. In making a shield too
thin, no protection is afforded to the area where it is desired
and at the same time the toe is bundled up with a lot of
[Pg 101]padding and plaster which is entirely unnecessary, in that
it does no good. The use of a shield should be avoided in all
cases, when possible, but there are many situations in which
a shield is indicated and which, when applied, proves highly
effective. Shields naturally pack down more quickly when
the weight of the whole body is constantly being applied,
and so, naturally, the thicker varieties of shielding are used
on the plantar surfaces. This applies to all shielding materials
and in particular to felt.
Skiving. Skiving is a process by which the edges of a
shield are thinned or bevelled to a “feather” edge. This
is done for three principal reasons:
(1) When a shield’s outer edges are skived to a
“feather” edge, it no doubt adheres to the integument in
a much more satisfactory and lasting manner than if those
edges were allowed to retain a uniform thickness with the
main body of the shield.
(2) By thinning the shield down at the edges any danger
of unneeded and detrimental pressure upon the underlying
and surrounding areas is removed. The object is
merely to protect a certain part, and, therefore, if a pad
is used which is of sufficient thickness around the painful
area to protect the diseased tissue, the aim is accomplished,
and to have any considerable thickness to the shield, except
as it is immediately adjacent to the area to be treated, is
entirely unnecessary.
(3) Skiving a shield at its outer extremities does away
with, or at least minimizes, the danger of the shield being
loosened or shifted, and consequently it will remain longer
in place and with better results.
The inner edges of the aperture made in the shield for
the protection of the diseased part should also be skived.
This is done with the idea of conforming the shield, as
nearly as possible, to the shape of the indurated integument
and does away with any irritation to the part which might
be caused were these edges left perpendicular.
Fig. 1.
A. Oval; B. Half-moon or Crescent; C. Interdigital; D. Dorsal
(Intermediate Toes); E. Fifth Toe (Right and Left); F. Boot Shield;
G. Dorso-digital Half-moon (Built Up); H. Modified Half-moon I.
Medio-plantar Crescent (With Cut-out for 1st or 5th Joint)
Aperture. For the purpose of protecting a diseased
[Pg 102]part from the pressure of footgear, an aperture or opening
is made in the body of the shield. The size of this aperture
is so fashioned as to be slightly larger than the part to be
protected. Many mistakes are made in shielding, due to the
aperture not being cut in the proper place, and care should
be taken in this connection. This opening is not always
made in the centre of the shield; in many instances it must
be placed either to one or to the other side of the median
line, running anterio-posteriorly, and in other cases it
should be nearer the front rather than the back of the shield,
and vice versa.
[Pg 103]
For example: we are to shield an heloma on the fifth
toe. Upon examination of the part we find that the growth
occurs on the dorsal ridge of the digit and that while there
is a considerable area of the normal integument on the
toe’s outer lateral side, the space between the inner edge
of the growth and the fourth toe is very narrow. The aperture
must then be so made in the shield that a very narrow
portion of the skin or fabric rests upon the strip of normal
tissue toward the fourth toe and that the wider edge extends
down the side of the fifth digit. Again: in some instances
we find that the spot to be protected is much nearer
the distal end of the toe and the nail than the proximal part.
The opening should then be made much nearer the anterior
part of the shield than the posterior, so that when
applied, the anterior part of the shield will not cover the
nail or overlap the distal end of the toe. Too much stress
cannot be laid upon this particular feature of shield-making
and their application, and the student and practitioner alike
will do well to give these points great consideration.
Method of Skiving. The most generally used and in
all probability the most efficient method of skiving a shield
is as follows: the material used, after being cut to the shape
and size desired, is placed with the left hand. The skiving
knife is then taken firmly in the right hand and with an
oblique stroke away from the operator, the edges of the
shield are cut away and thinned to a “feather” edge. This
is continued around the whole outer circumference of the
shield until a uniform thickness is obtained. After this
procedure, should the centre of the shield present any inequalities
or uneven ridges, these are pared away in a like
manner until the whole surface is uniformly smooth.
One side of all pieces of buckskin will be found to be
firmer and have a better body than the other. This is the
surface to be allowed to remain intact, the bevelling being
done on the reverse side. This insures a firm surface for
the application of an adhesive substance.
The Skiving Knife. The knife which seems to be most
[Pg 104]practical for our purpose in this procedure should have a
blade from three and one-half to five inches long, about
three-quarters of an inch wide at its base and tapering
gradually until, at the end, the width of the blade is about
three-eighths of an inch. This insures a large cutting surface
and the blade, being tapered instead of an even width
from point to base, allows the operator to employ an oblique
movement in skiving the shield.
The handle of this instrument should be fairly large
and round, so that it will admit of a firm hold. A so-called
“Murphy knife” is found to be a very practical and inexpensive
instrument for skiving.
APPLICATION AND STRAPPING OF SHIELDS
In applying a shield, care should always be taken that
the aperture is of sufficient size to protect all of the affected
area. If this is not done, great inconvenience and perhaps
severe pain is caused to the patient, in that the shield rests
upon tender tissue which should be protected. It is also
good policy to allow for any shifting which may take place.
As for example, in the instance of an heloma: the shield
should be applied so as to leave some space between the
anterior edge of the indurated integument and the anterior
edge of the shield’s aperture. The foot in the process of
walking (and particularly if the patient wears high-heeled
shoes) is being constantly pushed towards the forward part
of the shoe, and, therefore, a shield protecting an heloma on
the dorsum of any of the toes will be pushed back rather
than forward. By taking this into consideration the shield,
if it does shift, will still have a sufficient amount of sound
integument to rest upon before it pushes back on the growth
itself.
Adhesive Substances. Adhesive substances for adhering
the shield to the integument should have no irritating
properties whatsoever. The late George Erff perfected a
small, neat alcohol lamp with a “sauce pan” attachment in
which these adhesive substances, usually sold in stick form,
[Pg 105]are easily and quickly melted to a fluid consistency when
they may be easily applied to a shield by means of a fine
camel’s hair brush. This enables the operator to spread the
adhesive substance in a thin and even coat over the whole
surface and is a much superior method to the older way of
applying it directly from the heated stick.
Strapping. In adhesive plasters, by means of which
shields may be securely held in place, we have a great assortment
from which to choose. Plain rubber adhesive
plasters are manufactured by many firms, as is the zinc
oxide (medicated) adhesive plaster. Special plasters, medicated
in various ways, are also on the market in abundance
and no doubt find their use in special cases. It is found,
however, that the zinc oxide plaster is perhaps the most
practical in all instances, although by no means the cheapest.
This plaster retains its adhesive properties much longer
than the numerous other plasters which have been experimented
with from time to time, and, being at the same time
medicated with zinc oxide, an antiseptic, it makes a practical,
cleanly and non-irritating adhesive plaster.
There are several important points to take into consideration
in applying adhesive plasters for fastening
shields more firmly on the surfaces of the foot.
(1) No Strapping Should be Applied Too Tightly. Too
much cannot be said or written relative to allowance being
made in strapping a shield for the natural movements of the
foot. It must always be remembered, in the first place, that a
patient’s foot, elevated on the support of the operating
chair, is at rest. There is no weight upon it, and consequently
the tissues of the foot are not expanded to their
fullest extent. For this reason circular strapping placed
around a toe to hold a shield in place may seem sufficiently
loose to allow perfect comfort; but when the patient steps
down and walks for a few minutes, this same toe is expanded
to a considerable extent, with the consequence that the
plaster either cuts into the tender integument between or
under the digit, or if not that, at least causes a severe enough
[Pg 106]irritation to occasion great annoyance every time a step is
taken. Therefore, one of the first important points to be
taken into consideration in applying a shield is the tightness
with which the adhesive strips may be drawn.
This is equally important in applying shields to the
plantar surfaces, because, here also, allowance must be
made for a great amount of expansion. In applying shields
to these surfaces the toes should be extended as far as possible
(drawn back toward the dorsum of the foot), the strapping
to be applied while the toes are held in this position.
Were the adhesive strapping applied whilst the toes are
in a flexed position, the integument on the plantar surfaces
would be found in a series of folds or wrinkles. This integument
is not always in that condition, however, and, consequently,
when the patient allows the weight of his body
to come upon the foot, in taking a step, and the toes are
extended to their fullest, the tissues covering the plantar
surfaces would be drawn and the strapping will pull on
the skin, making the patient decidedly uncomfortable, or it
will tear away altogether and so become useless.
(2) Allowance Made for a Swollen Toe. In this connection
particular attention must be paid to the strappings
of a shield. In many cases of helomata, or more particularly
in acute conditions of interphalangeal bursitis, the
integument immediately adjacent to the induration is not
alone inflamed, but the whole toe is ordinarily swollen. In
cases of this nature it will be found advantageous not to
carry the strappings completely around the digit, but rather
to place them so that, while they will hold the shield in place,
they do not cover or come in contact with more of the
swollen areas than is absolutely necessary to secure adhesion.
This applies, of course, more particularly to the dorsal
and lateral surfaces of the four lesser digits. To accomplish
this two strips of half-inch plaster, each about one
inch in length, are placed parallel to each other, one over
the anterior and one over the posterior end, and adhered
to the integument on each side of the shield. In many instances
[Pg 107]it will be found advisable to do away with adhesive
straps entirely and merely allow the shield to remain on
for a day or two, when, the inflammation and swelling having
subsided, a shield may be applied and strapped if
necessary.
(3) Edges of the Shield to Be Covered as Much as Possible.
It should always be the endeavor of the operator to
cover the anterior and posterior edges of the shield and as
much of the lateral surfaces as is possible. This minimizes
the danger of those edges being raised from the integument
during the normal movements of the foot. With this
in view, it is perhaps wise to use as wide plaster as possible
on the plantar, and, in many instances, on the dorsal surfaces
as well.
There are five widths of plaster generally used in chiropody
for the purpose of adhering shields. The narrow
strip, manufactured by Johnson & Johnson expressly for
chiropodists, the one-half-inch strip, the one inch strip, the
inch-and-a-half strip and the two-inch strip. The two-inch
width is seldom used, and then never in connection with
shielding, but rather for strapping weak ankles and arches.
(4) End of the Plaster to Be Rounded. This is for the
purpose of preventing the tendency of the plaster to loosen
up at the ends. By doing away with as many “corners”
as possible and instead making rounded ends, the plaster
is found to adhere much more firmly and the tendency to
curl is reduced to a minimum.
SPECIFIC SHIELDING
Great Toe. The shields necessary in connection with
affections of the hallux are four in number:
1. Those used in connection with bunions or metatarsophalangeal
joint affections.
2. Those used in connection with corneous developments
over the extensor tendon on the dorsum.
3. Those used in connection with corneous developments
along the inner border or on the plantar surface.
[Pg 108]
4. Those used in connection with corneous developments
on the adjacent sides of the great and second toes.
Location 1. Affections of the first metatarsophalangeal
articulation or of the superadjacent tissues, usually
require shields of considerable size, thickness and “body.”
Buckskin or felt are the materials to be used in this situation,
as they can be skived to considerable thinness at the
edge where pressure is unnecessary and often detrimental.
There are two forms of shields which may be used in
this connection, viz.: the metatarsophalangeal oval or the
metatarsophalangeal half-moon. In a majority of cases the
half-moon shield is the most practical, but the full oval may
be used at times with equal or even better results.
The metatarsophalangeal oval (Fig. 1-A), is an oval
shield about three inches long and two inches wide, which
is used principally where the pressure causing the painful
affection comes from the under lateral side of the joint.
The aperture is so placed that it is much nearer the edge of
the shield which goes under the joint, for it must be remembered
that this shield should not extend down and to the
plantar surface of the foot, where it might cause an inequality
and undue pressure. The greatest amount of protection
should come from the position of the shield, and
for this purpose that portion of the skin or fabric is left
thick, so that its elevation will equal at least, if not exceed,
that of the affected part.
In strapping a shield in this location the half-inch, one inch,
or inch-and-a-half strips may be used. The inch plaster
is probably the most practical, as it is of sufficient
width to bind down the anterior and posterior edges of the
shield and still will not extend over on the affected part in
the aperture. These strips should each be about four inches
in length and should be so arranged as to cross each other
on the dorsum, one binding down the other. Thus the anterior
and posterior edges of the shield, as well as the lateral
surface on the dorsum of the foot, are covered. Some practitioners
even advocate the use of strips of sufficient length
[Pg 109]to “criss-cross” both on the dorsum and on the plantar surfaces.
It will sometimes be found that the anterior strips
of adhesive plaster will extend too far up on the dorsal
surface of the great toe and thus may interfere with its
proper movement. In these instances it is advisable to cut
out a curved portion of the strip so as to allow normal extension
of the toe, without irritation from the plaster. The
same holds good if the plaster should for any reason extend
over the affected part in the aperture. The plaster should
be cut away with curved scissors so that it remains only
on the body of the shield. The half-inch plaster is sometimes
used in strapping the metatarsophalangeal oval shield
and is most generally adhered in the form of a triangle, the
strips to be of sufficient length to cover each other on the
sound integument, and so applied as to bind down all edges
of the shield. The inch-and-a-half plaster is generally used
in this manner in cases where it is desirable to cover the
affected part of the joint as well as the shield, making the
whole dressing practically waterproof. Then two strips of
the inch-and-a-half plaster are used; each strip is split on
both ends and lapped over so that it may be drawn down
tightly on all sides of the shield. Three strips of the inch
width would answer the same purpose but would make a
larger and more bulky dressing.
The metatarsophalangeal half-moon (Fig. 1-B) is used
in all cases where the pressure or friction comes upon the
dorsum or the dorso-lateral part of the affected joint. The
reason for its use in these instances is obvious. If the
pressure comes only upon one or both of these locations,
there is surely no need of protecting the joint from plantar-lateral
pressure, and the use of the full oval shield is contra-indicated
in that its one lateral surface, resting on tissue
upon which there is already much pressure, might become
uncomfortable and detrimental to the general condition of
the joint.
The shield is adhered to the dorsal surface in such a
manner that its two points are anterior and posterior to
[Pg 110]the affected part, with the broad lateral portion resting
alongside on the dorsal surface. It will generally be found
advisable and necessary to fashion the “anterior point”
of the shield somewhat narrower and thinner than the posterior,
as the former usually extends over upon the dorsum
of the great toe and interferes with its movement if allowed
to remain thick
and bulky. In any event
the greatest amount of
protection is derived
from the “posterior
point” and the broad
lateral surface of the
shield, and this anterior
point may be safely
thinned or entirely eliminated
(see Modified
Half-moon Shield). In
strapping the metatarsophalangeal
“half-moon”
shield, three
strips of the inch width
plaster, each four inches
long, are adhered, one
over the anterior tip of
the crescent and extending
well upon the dorsal
and plantar surfaces,
and the remaining two
strips across the posterior
part of the shield,
overlapping each other
and the two ends of the first applied strip (Fig. 2).
Fig. 2.
STRAPPING FOR METATARSOPHALANGEAL
HALF-MOON SHIELD
Location 2. Shields are often required on the dorsum
over the tendon of the extensor muscle for the protection
of corneous formations or denuded spots due to rubbing of
a new shoe on this prominence. Felt shields of considerable
[Pg 111]thickness are most generally used in these instances, as they
are more pliable than those of buckskin and, in consequence,
are not so harsh. They are usually cut in oval shape
(though not so large as those described under Location 1),
and are strapped in triangular arrangement with half-inch
strips. In some instances, where pressure upon those portions
of the tendon anterior and posterior to the affected
area is undesirable, two straight pieces of felt of considerable
thickness (so as to be of higher elevation than the
prominence of the tendon) may be substituted with good
results. They are placed on each side of the tendon and
parallel with it. The strapping in this case consists of two
half-inch strips placed across the felt shield at right angles
to the long axis of the toe. A very practical protection of
tender areas in this location is a half-moon shield whose
opening is only of sufficient width to protect the affected
spot. This shield is made from adhesive felt, and after it
is fashioned and skived, a strip of the glazed adhesive,
slightly wider than the tender prominence, is removed without
disturbing the balance of the felt constituting the body
of the shield. The shield is then applied and the adhesive
substance thus comes only in contact with integument on
each side of the tendon, allowing that cord to move at will
without interference; at the same time ample protection is
given the affected part.
This shield is usually strapped by using two strips of
one inch width plaster, each about three inches long. They
are adhered, each overlapping the other, on the body of the
shield, thus binding down its posterior and two lateral edges
to the sound integument. Where a strapping of this nature
would interfere with the normal movements of the tissues
of the toes or of the great toe, one strip, three inches long
and an inch-and-a-half wide, may be substituted and placed
across the body of the shield (at right angles to the toes),
thus binding down its posterior and a portion of its lateral
edges.
Location 3. In cases of tyloma or heloma on the plantar
[Pg 112]or inner lateral border of the great toe, oval shields
of buckskin are almost entirely used (same as Fig. 1-B, only
smaller, to accommodate the smaller surfaces). There are
two impractical points to be considered and avoided in this
connection: (a) on shielding a part on the inner border of
the great toe, the shield should never be allowed to extend
up on the dorsum of the toe and lap over or cover the
lateral and posterior nail folds. The tissues about the nail
are sensitive to a degree, and any untoward pressure will
in most instances start new troubles in this region. The
adhesive strappings will, of course, cover a greater portion
of the nail; but as the plaster is unusually thin, a great
amount of trouble from the strips is seldom experienced.
(b) In shielding the plantar surface of the hallux, the pad
should never be fashioned to such length as to interfere
with the natural bending of the toe at the web. If this be
allowed the patient will experience a feeling of “fullness”
at that point which may seriously interfere with his natural
gait and comfort, besides which, irritation may be caused
in these parts.
The strapping of shields applied to the plantar or to
the inner border of the great toe is of necessity similar, as
the pad is merely in a different position and the strips must
practically cover the same territory. One-half-inch plaster
answers most purposes and two strips are cut of sufficient
length to encircle the toe and overlap each other on the
side of the digit opposite the shield. Too many thicknesses
of plaster between the toes should always be avoided, and
to make this effective many practitioners prefer the narrow
chiropodist strip, using one strip to encircle the toe
twice, once on the posterior and once on the anterior edge
of the shield. This is a matter of preference, but the
writer favors the half-inch strip, as it has more adhesive
surface and will consequently fasten the shield more firmly
to the integument.
Location 4. Corneous excrescences, whether hard or
soft, are not commonly found between the great and second
[Pg 113]toe but, when so located, a shield is generally needed as an
aid to treatment. A shield for this condition may be of
buckskin or chamois, if intended to last for any time, and
should be strapped in place. Felt shields are often used,
minus adhesive and strapping, where temporary protection
is needed. Using a shield without adhesive in any interdigital
disturbance enables the patient to remove it and
set it back at will, in this way avoiding the hardening or
shifting when the shield is allowed to remain in place during
and after a bath.
In fashioning any shield to be used in an interdigital
location, the lower edge (that applied next to the web of
the toe) should be cut on a slant (Fig. 1-C), to conform with
the angle of the toe web. This procedure not alone makes
the wearing of the shield more comfortable, but also gives
it a steady base to rest upon, whether adhesive be used or
not. In shielding an heloma between the great and the second
toes, and particularly if the heloma be of any size
or on either toe, it will usually be found advantageous to
adhere the shield to the great toe. The second toe is uncommonly
long and slender, and in most instances presents a
very small surface around the heloma, to which a shield may
be made to adhere.
The strapping of a shield in this location is similar to
that applied on the opposite side (inner border) of the great
toe; in most cases the half-inch plaster is employed and the
ends are fashioned to overlap each other on the plantar or
inner lateral surfaces of the digit.
Intermediate Toes (2d, 3d, 4th): Dorsal Surfaces. In
shielding the dorsal surfaces of the intermediate digits, pads
of buckskin, adhesive moleskin or chamois are exclusively
used. On most feet the dorsal surfaces of these toes are
quite narrow and care should be taken that the shield is not
so wide as to interfere or rub against the toes adjoining or
to lap around the toes on their interdigital surfaces. The
shield should be wide in the centre (in which location the
aperture is cut) and should taper slightly toward each end.
[Pg 114]“Tapering slightly” does not in any sense mean to a point,
but merely sufficient to conform to the general shape of the
toe. Proper skiving is essential to a well fitting shield in
this location, as it must adhere firmly on all sides and must
not act as an irritant to the underlying and surrounding
areas nor to the adjacent toes. For a sample of this shield
see Fig. 1-D.
In strapping a shield
to the dorsal surfaces of
the three intermediate
toes, the narrow chiropodist
strip is generally
found to be the most
practical and probably
the most generally used.
It is best made to adhere
in the following manner:
strip to be six inches in
length; with one end of
the strip start on the
side of the toe carrying
the plaster downward on
a tangent to a point opposite
the rear portion of
the shield, then crossing
this posterior part of the
shield, so bringing it (the
strip) completely around
the toe to the place of
beginning. Cover the beginning
“end” with the
strip and carry it over
the anterior portion of the shield; complete the dressing
by adhering the remaining end of the plaster to the side
of the toe opposite the beginning. We thus have two strips
of plaster over the anterior of the shield lying next to each
other and making approximately a quarter-of-an-inch of
[Pg 115]adhesive surface and only one strip over the posterior
portion. In this way the anterior portion, which is most
liable to loosen up from the constant rubbing of the stocking
and shoe in walking, is doubly bound to the toe (Fig. 3).
In many instances where a shield is to remain for a day
or so only, glazed felt will admirably answer all purposes.
It is cut similar in size
and design to the buckskin
or chamois shield,
but is most generally
applied without strapping.
Fig. 3.
SHIELD APPLIED TO DORSUM OF
FOURTH TOE
The Dorso-Digital
Oval Shield. One more
practical method of
shielding an heloma on
the dorsum of any of
the intermediate toes
may be described. In
many instances, whether
distinct hammer toe be
present or not, the first
interphalangeal articulation
will be found decidedly
prominent, and
enlarged to such an extent
as to make the application
of an individual
shield impractical.
A large oval shield of
buckskin or eighth-inch
felt (Fig. 4) should then
be used. The aperture is fashioned to fit the part to be protected
and the long axis of the shield is allowed to rest
across and upon the adjacent toes. A shield of this nature
is seldom if ever strapped, and is removable by the patient
while at rest or during the bath, to be replaced when the shoe
[Pg 116]is worn. The writer has observed many cases where the
proximal phalanges of the intermediate toes were in a state
of constant extension due to the contraction of the extensor
tendons, and leaving a decided hollow in the dorsum of the
foot directly over their metatarsophalangeal joints. In a
condition of this nature a thick shield of this pattern is particularly
practical and may be used not alone to protect a
tender part, but also to fill up this hollow and allow the
shoe to fit more firmly.
Where helomata are present on the dorsum of all of
the phalangeal joints, this variety of shield is, of course,
contra-indicated, as undue pressure would be brought to
bear upon the already troublesome excrescences and a great
amount of trouble would in this way be invited. In some
instances a full oval shield is not used, but a dorso-digital
half-moon, as shown in Fig. 1-G, is substituted. No definite
ruling can be made as to which form of shield should be
used, as each case presents a different aspect and the mechanical
work must be applied accordingly.
Fig. 4.
DORSO-DIGITAL OVAL SHIELD APPLIED
TO THIRD TOE
End of the Intermediate Toes. Shielding is often necessary
on the ends of the toes, and in such instances the padding
should, as a rule, be made very thin and the subsequent
dressing not bulky. This is advisable for several reasons:
first, helomata in this locality are usually under or immediately
adjacent to the nails and too great an amount of
pressure cannot be put upon these structures; second, that
there is trouble on the end of the digit is proof positive of
the shoe being too short and, therefore, if too thick a shield
be used, the pressure on the surrounding tissues will be
too great to be comfortable; third, helomata in these locations
are seldom found to be elevated to any extent above
the normal surface of the integument and when removed,
the tissues are usually at their normal elevation, so that
shields of material as heavy as those used in connection with
helomata in other localities are unnecessary.
A shield of thin buckskin, adhesive moleskin or chamois
is best in these cases. It is applied, generally, so that the
[Pg 117]long axis is across the end of the toe and seldom so that
the ends of the padding overlap the free edge of the nail
or compress the plantar surface of the digit. Where the
heloma to be protected is situated close to the nail, and it is
advisable that the padding extend over that structure, by
clipping the nail closely and filing it down and at the same
time using an exceedingly thin shield, successful protection
can be secured without unfavorable results. Such shortening
of the nail is, however, not advisable in all cases. This
article deals entirely with shielding, but attention must be
here drawn to the fact that there are many instances of an
heloma occurring on the end of one of the lesser toes, when a
shield is contra-indicated. There are many cases where the
toe nail, if allowed to grow long, will protect the tender part
far more successfully than will a shield. Therefore, it is always
well to consider if protection can be obtained from the
nail itself before applying a shield in this location.
Strappings. The application of adhesive strips to a
shield in this locality demands considerable ingenuity on
the part of the operator, but there is no stereotyped method
to be employed. One general method may, however, be
explained: cut two pieces of chiropodist strip, each about
two-and-one-half or three inches long. Apply the centre of
one strip over one end of the shield, lateral to the aperture,
and carry one end of the strip on a line running toward the
proximal end of the toe and in a manner so as to cover as
much of the edges of the shield on that side as possible.
Overlap these plaster ends on the interdigital surface of
the toe opposite to the place of beginning. Adhere the second
in like manner to the other surface of the shield on the
side of the aperture, and carry the plaster ends in such a
way as to cause them to overlap each other on the interdigital
surface of the toe opposite the place of beginning.
In this way both lateral and nearly all of the plantar edges
of the shield will be covered and bound down with adhesive
plaster. It will be found generally that the edge of the
shield coming under the free edge of the nail needs no reenforcement
[Pg 118]by adhesive strips, as the length of the nail
will prevent any tendency to loosen up the plaster in that
location. Cut a third strip about two inches long and with
it circle the toe, binding down all four ends of the two
strips already applied. Trim off the ends of the plaster,
which extend from under this last applied strip, and the
whole makes a neat
practical shielding for
trouble in this situation.
(Fig. 5).
Fig. 5.
SHOWING SHIELD APPLIED TO END
OF FOURTH TOE
There are many ways
in which a shield in
this location may be
strapped, but as always,
and particularly
in this instance, there
are so many circumstances
which go to
alter the mode of strapping
that it would be
well-nigh impossible to
explain them all or to
outline a set method of
procedure.
Interdigital Surfaces.
Helomata, both hard
and soft, often occur
between the toes and,
in these cases, to insure
complete relief to the
patient, a shield is
usually an absolute
necessity.
Buckskin, sheepskin, adhesive moleskin, and chamois
are the materials most generally used for interdigital shields
although the thinner varieties of white felting, with or
without adhesive, may be substituted in some instances.
[Pg 119]The shield should be fashioned of equal length to the surface
of the toe, from the web to the distal end, and should
be only wide enough to correspond to the thickness of the
toe. If the shield be allowed to lap over on the dorsum of
the toe or under on its plantar surface, new pressure is
brought to bear on these parts, to the discomfort of the
patient. It must always be remembered that the toes bend
during the various movements in walking, and that if a
shield be allowed to curl under the toe, the thickness of the
material used will interfere, to a great extent, with the
normal flexing and extending of the toe, even to such a
degree in some instances as to cause lesions of more or
less severe character on the skin.
To allow any shield to cover or to press upon the tissues
directly adjacent to the nail is always to the discomfort
of those parts, and in this, as in all other instances, should
be avoided.
The bottom of the shield (Fig. 1-C) should be cut on
a tangent, so as to conform to the corresponding slant of the
toe web. This insures not only the minimum danger of irritation
on those tender parts, but also allows the shield a firm
base upon which to rest, and prevents any possible tilting
or shifting.
Shields for application to the interdigital surfaces seldom
need to be of great thickness, and the thinner the shield
used the more flexible it is, and the less pressure is brought
to bear on the outer surfaces of the toes. It must be remembered
that everything placed between the toes, of necessity,
spreads those members further apart, and naturally
this causes a greater amount of pressure from the boot on
the outer surfaces. Skiving is an essential requirement in
interdigital shields, although in some instances where they
are to be used between the great and second toes, this (skiving)
may be omitted.
Thin felt shields, minus adhesive, are often employed
between the toes for transient protection, a fresh one being
usually placed in position daily.
[Pg 120]
Strapping. The most practical method of strapping an
interdigital shield is by means of the narrow chiropodist
strip. The method used is similar in every particular
to that employed in the use of the same width
strip in applying a shield to the dorsum of the intermediate
toes.
Another less used method is as follows: take a six-inch
chiropodist strip; at its centre adhere it to the upper
end of the shield (that nearer the distal extremity of the
toe), and carry both ends around the toe, crossing them on
the side opposite to the starting point. Then bring the
loose ends around the toe again to the side upon which the
shield is adhered and overlap them over the bottom of the
shield, allowing the ends to run for attachment on the
sound integument.
Fifth Toe: Dorsal Surface. There are more corneous
developments on this digit than on any of the others, and
as this toe presents a free surface on its outer side, which
is not the case with any of the other lesser digits, many
varieties of shielding and of strapping are used.
As with the dorsal surfaces of the intermediate toes,
buckskin and adhesive moleskin are the most generally used
shielding materials, and pads of the thinner varieties are in
most cases sufficient for the needs. But, as this toe is
probably the most abused of any and is often found distorted
into positions of extreme flexion or extension and is
sometimes lapped over the fourth toe, shields of a greater
thickness, or “built up” pads, are very often indicated. The
ordinary buckskin or adhesive moleskin shield is fashioned
oval in shape, but the anterior end is cut either straight
across or slanted toward the outer lateral edge, so that we
have a shield, round at its posterior extremity and tapering
toward the anterior end, having a straight edge (Fig. 1-E).
Shields for the fifth toe must be carefully skived, especially
at the anterior end which goes toward the nail. The writer
has often seen cases in which new helomata, sometimes as
many as three or four, have developed on the dorsum of
[Pg 121]this toe anterior to the original callosity, exclusively caused
by the habitual wearing of thick shields.
The size of the shield depends wholly upon the size
of the toe and the area to be protected, but the length of
the shield should never be allowed to interfere with the
bending of the toe at its metatarsophalangeal articulation.
If this precaution is not observed, in walking the shield
rubs against the dorsum of the foot and is not alone loosened
at its posterior edge, but causes irritation to the skin
in that region. As with those used on the dorsum of the
intermediate toes, the aperture of a shield for the fifth toe
should be cut of sufficient size to allow a space between its
(the aperture) anterior edge, and that of the calloused area;
this is to allow for backward shifting.
Another form of shield used in cases where the small
toe is flexed to a degree and an heloma has developed on
its apex, is what may be called the fifth digital half-moon
(Fig. 1-B). It is usually necessary to build up a shield of
this variety. By “built up” is meant that two thicknesses
of material are used, one pasted upon the other, to give the
shield greater thickness and stability. The upper thickness
is formed so as to protect the rear and lateral sides of the
corneous area, but not the front. The second, or under
thickness, is fashioned round at its posterior edge and
straight at its anterior surface. This, being placed under
the upper layer, gives the shield sufficient thickness to be
of equal height to the elevation of the heloma or even higher,
thereby avoiding all undesirable pressure upon the painful
area, and at the same time filling out whatever hollow there
may be in the foot at this point.
Strapping. There are five general methods of strapping
to adhere a shield to the dorsal surface of the fifth toe.
Some conditions demand the use of one of these and none
other, but in most instances any method may be used with
good effect. These five methods are as follows:
[Pg 122]
1. Narrow chiropodist strip.
2. Combination narrow and half-inch strip.
3. Half-inch strip (using one strip).
4. Half-inch strip (using two strips).
5. Inch strip.
Number 1. In using the narrow chiropodist plaster,
the strip is applied in a
similar manner to that
already described for
toes, arranging the plaster
so as to cover the
anterior of the shield
with two widths of the
strip and the posterior
surface with but one
(Fig. 6). As an alternative
for this, the method
described in the second
instance in connection
with interdigital shields
may be utilized.
Fig. 6.
STRAPPING OF 5TH TOE SHIELD
WITH CHIROPODIST STRIP
Fig. 7.
Number 2. The narrow
strip and the half-inch
combination consists of
a narrow strip, about
four inches in length,
adhered to the inner surface
of the toe and carried
twice around the toe
across the surface of the
shield, anterior to the
aperture. This, as will
be seen, binds down the distal end of the shield. The half-inch
strip, about three inches in length, is then cut as shown
in Fig. 7-B.
Taking this strip in both hands, insert it between the
toes in such a manner as to allow the narrow portion of the
[Pg 123]plaster to fit into the narrowest part of the toe web. Then
carry the outer broad end of the strip around on the dorsum
of the toe and adhere it across that part of the shield
posterior to the aperture, taking care, however, that the
adhesive plaster is half on the shield and half on the integument
adjoining it. Adhere the remaining broad end of the
plaster (that coming
from between the toes)
over the first applied
posterior strips, taking
the same care that shield
and skin are both covered
by the plaster (Fig. 8).
Fig. 8.
SHOWING SHIELD STRAPPED WITH
NARROW AND HALF-INCH STRIP
Fig. 8a.
SHOWING DRESSING COMPLETE
WITH COCOON OVER APERTURE
This alternate style
of strapping is particularly
useful in cases
where the narrow strips
of method No. 1 are
found to irritate the skin
of the toe web, or if there
be a corneous excrescence
developed there
which cannot be covered
by the plaster; instead of
using the half-inch strip,
as just described, a half-inch
or inch strip, about
two inches in length, is
cut and placed across the
posterior of the shield and
is adhered to the integument
on the dorsum and
plantar of the foot. Should
any portion of this posterior
[Pg 124]strip lap over the aperture, it should, of course, be cut
away.
Fig. 9.
Number 3. In this manner of strapping (using one
one-half-inch strip) we have one of the most practical methods
in vogue today. A strip about six inches in length is
fashioned in the manner of Fig. 9. The wide portion in the
strip’s centre is then adhered
to the anterior
surface of the shield and
the ends are carried
around, one on each side
of the toe, in such a manner
as to allow the narrowest
portions to criss-cross
in the narrow part
of the toe web on the
plantar surface. The
wide ends are then carried
around the dorsum
of the toe and are overlapped
on the posterior
portion of the shield.
This method of applying
the plaster supplies a
greater amount of adhesive
surface than by the
use of the narrow strip
and is just as practical,
or more so, in many
ways.
Number 4. In using
two one-half-inch strips
to adhere a shield to the dorsum of the fifth toe, the plaster
is fashioned as shown in A and B (Fig. 7). The strip
marked “A” is cut
about two inches in
length and split on
[Pg 125]the square end. That marked “B” is about three or three
and one-half inches in length. The strip “A” is laid over
the anterior surface of the shield with the split end toward
the inner side of the toe. The anterior one of the two split
ends is then drawn tightly over the anterior edge of the
shield and adhered to the inner surface of the toe; the remaining
split end is adhered
over the first and
should also be drawn
tightly, so that the anterior
portion of the
shield is closely bound to
the dorsum of the toe.
The rounded end of the
plaster strip is then carried
around the outer
side of the toe in such a
manner as to allow the
narrow portion of the
plaster to rest over the
corresponding narrow
part of the toe on its
plantar surface. The
wide extremity is
brought around to the
inner side of the toe and
is placed over the split
ends already adhered.
This binds them securely
to the interdigital surface
of the toe. Any
loose ends showing after
the foregoing is completed
should be
clipped off. One
wide end of the strip
“B” is then adhered
[Pg 126]across the posterior surface of the shield and the plaster
carried around the toe (the narrow portion of the plaster
fitting in the narrow part of the toe web) and the remaining
wide end is overlapped on the posterior portion
of the shield, thus securing the other wide end already
adhered to the shield.
Another method,
differing merely in the
position of the last wide
end of the strip “B,” is
as follows: instead of adhering
this end criss-cross
over the posterior
portion of the shield,
bring it further toward
the anterior of the toe
and adhere it directly
across and over the aperture,
fastening the end
upon the inner side of
the toe. This makes a
waterproof dressing with
none of the shield showing
when the dressing is
complete; it is contra-indicated
when a soft
dressing is desired over
the inflamed parts.
Fig. 10.
Number 5. The other
method which may be used
is to cut off about six inches of one inch plaster (although the
length used depends upon the size of the toe), and fashion
it as shown in Fig. 10. The split ends are then adhered on
the inner side of the toe, so that the wide portion next to
them is drawn tightly over the anterior surface of the
shield. The narrow portion is then carried around the
outer side of the toe and is placed, as previously described,
[Pg 127]on the corresponding narrow surface of the toe web, and
the remaining wide end is brought between the toes and
over the posterior surface of the shield, entirely covering
the pad and adhering it to the integument on the outer surface
of the shield, over the metatarsophalangeal joint. This
also makes a practically waterproof dressing (Fig. 11).
Fig. 11.
SHOWING ANTERIOR PORTION OF
ADHESIVE STRIP APPLIED
Fig. 11a.
SHOWING DRESSING COMPLETED
Fifth Digital, Built Up, Half-Moon Shield. In strapping
a “built up” half-moon shield in this connection there
are one or two methods which will answer in all cases. The
first method is the use of but one strip of plaster, either
of one inch or of one-and-a-half inch width. This is placed
transversely across the body of the shield so that no plaster
extends over into the aperture, and it is adhered to the
integument on the dorsal and plantar surfaces of the foot.
As this shield is so much wider than the toe, it is not practical
to encircle the toe with adhesive strips in fastening it.
The other method at times employed, and the one that is
advocated, in that it binds down the “points of the crescent,”
situated laterally to the corn when the shield is in
place, consists in the use of two strips of the one inch
plaster. These are each cut about two inches in length,
one being placed diagonally across the body of the shield
in such a manner as to cover the outer lateral point of the
shield, and the other in a like manner, so as to cover the
inner lateral point of the shield and overlapping the first
applied strip on the body of the shield. In many instances,
however, this variety of shield is not strapped and is removed
and reapplied by the wearer at will.
It may sometimes be found advisable, when a small
shield cannot be used and where the spot to be protected is
nearer the distal part of the toe, and in consequence would
not receive sufficient protection from a half-moon shield
placed at its proximal end, to apply to the part a full oval
shield, slightly modified as to its anterior edge. This shield
is of the same shape as that shown in Fig. 1-E, except that
it is larger. It is made from the thicker grades of buckskin
and is fashioned so as to rest on the fourth toe and over
[Pg 128]the fifth nail, and for this reason these two contact surfaces
of the shield must be well skived. This shield is seldom
strapped and then only at its posterior surface, and in
like manner to the strappings described for the fifth digital
half-moon. A large shield of this kind evens up the whole
surface of that part of the foot and so equalizes the pressure
that it is distributed generally.
Lateral Surfaces. Helomata on the outer lateral surface
of the fifth toe are generally shielded in a manner similar
to those occurring on the dorsum; the shield in the lateral
location, however, should never be of great thickness. In
most instances corneous developments of the small digit on
these surfaces are situated adjacent to the nail and the
shield, and to be comfortable, should not be allowed to overlap
the nail structures. If, however, to obtain proper protection,
overlapping must be allowed in order to cover these
areas, the shield should be of paper thinness, especially at
its anterior end.
In this situation a shield is often used which gives protection
from the anterior, posterior and outer lateral but
not from the inner lateral surface, which would of necessity
have to be adhered over the dorsum of the toe and the nail.
This form of shield is practically of the same shape as
the ordinary fifth toe protector but with the inner lateral
surface next to the cut away aperture. It is particularly practical
in cases where the spot to be protected is directly next
to or in the corner of the nail. By a shield so fashioned,
the protection of the part is derived from all but the nail.
Strapping. The narrow chiropodist strip affords the
most practical method of strapping a shield in this location,
and the method is similar to that employed on the dorsum
of the fifth or intermediate toes.
In strapping the last mentioned form of shield, the
strips are applied in a similar manner. Care is taken to
adhere the plaster over both points of the shield, anterior
and posterior to the affected part.
Interdigital Surfaces. The shielding of helomata occurring
[Pg 129]on the inner surface of the fifth toe is similar in
method to that employed in shielding like parts on the intermediate
toes. This applies to the strapping as well.
Thick shields are contra-indicated, as they force the fifth
toe out against the shoe; if used on that part they will
undoubtedly create trouble to the toe in question. Both
hard and soft helomata often occur in this connection; they
are located, not on the sides, but rather well down in the
web of the toe. In such cases a specially fashioned shield is
required which, from its shape, is known as a “boot shield”
(Fig. 1-F). This shield is of material such as is used in
making the ordinary interdigital pad, being the thinner
grades of adhesive moleskin, buckskin, or chamois. It is
applied usually on the adjacent side of the fourth toe, the
narrow portion uppermost and the wider part with its concave
surface directly above the uppermost ridge of the
corneous area. This not alone prevents lateral pressure, but,
by means of the tongue-like shape at one side of its base, it
also prevents pressure on the part from the plantar surface.
It is often found that helomata, developing in the interdigital
web of these toes, are caused by pressure on the
part, due to the dropping of the fourth metatarsal bone.
To bring the head of this bone up into position, and in that
way relieve the pressure, it is often found necessary to apply
a felt or buckskin shield on the plantar surface of the foot
under this articulation. This may be done in addition to
applying a shield between the toes or each may be used
separately, as experience dictates. Alfred Ahrens, of New
York, one of the teaching staff of The First Institute of
Podiatry, has devised a shield, known by its shape as the
“duck shield,” which is so fashioned as to present a shielding
surface between the fourth and fifth toes, as well as an
expanded end which extends down upon the plantar surface
and throws the head of the fourth metatarsal up into
normal position.
Strapping. The narrow strip is the most practical
means of strapping a “boot shield” to the fourth toe. Two
[Pg 130]turns of the plaster are carried around the digit, the first
covering the shield about at its centre and the second crossing
near its uppermost end. One half-inch strip may also
be used, its two ends crossing each other on the side of the
fourth toe, opposite the shield; or in some instances, if
the shape of the toe permits, the ends may be adhered to
the dorsal and plantar surfaces of the foot.
Metatarsophalangeal Articulation. In protecting a
part in this location three styles of shield may be employed:
1. Oval.
2. Half-moon.
3. Modified half-moon.
Number 1. The thicker grades of buckskin or felt are
generally used for this protection, as the part, if affected,
is usually considerably elevated above the surrounding integument.
As in connection with the first metatarsophalangeal
articulation, the oval shield is so fashioned that
the principal protection will be derived from the upper
lateral and posterior surfaces. The anterior and under
lateral surfaces are made correspondingly thin and narrow,
so that no undesirable pressure is brought to bear on the
integument beneath these surfaces. In this instance, two
reasons may be given for such a course: first, all unnecessary
pressure is naturally contra-indicated; second, the protection
from these sides is, in nearly every instance, useless
and unproductive of results. Usually, if the point to be
protected be near the band of the fifth toe, the shield must
be scalloped so as to allow for the backward movement of
this digit when in an extended position. Great care must
be taken in applying all shields to allow for the natural
movements of the parts in walking. In this position, more
particularly, a cumbersome, ill-fashioned shield may become
a source of irritation during the movements of the foot in
exercise. Ninety per cent. of shield troubles are due to their
being improperly fitted or to their imperfect fashioning.
If a shield used in protecting the fifth metatarsophalangeal
[Pg 131]articulation is not scalloped, as previously mentioned,
to allow for the backward movement of the proximal phalanges
of this digit, irritation is not only bound to occur, but
the movement of the toe will loosen up the anterior rim of
the shield (despite strapping), and consequently shifting of
the shield is sure to occur.
In strapping an oval shield to this part, two strips about
four or five inches long are cut from the one inch width
plaster. They are adhered so as to cover the anterior and
posterior portions of the shield and the upper loose ends,
made to overlap on the dorsum of the foot, are carried
firmly over the side to the plantar surface, overlapping also
on the sole of the foot.
From experience, the writer much prefers the substitution
of the so-called half-moon, or the modified half-moon
shields (Fig. 1-H) in place of the oval just described.
Number 2. The metatarsophalangeal half-moon shield
supplies all the necessary protection from its upper lateral
and posterior surfaces without extending down around and
under the plantar surface of the joint. It must always be
remembered that the insole of the shoe joins its shank at
this point and, in many instances, particularly if the shoe
has been worn to any extent, the insole is inclined to curl
up and to thicken, and in nearly every case where the shield
is allowed to run over the edge of the foot, undue pressure,
with its train of bad effects, is made on the parts.
The half-moon shield is placed on the dorsum of the
foot, the “points of the crescent” extending anteriorly and
posteriorly to the part to be protected. The anterior is
made narrower and thinner than the posterior point for,
as is the case with the oval shield, the greatest amount of
protection must come from the wide lateral surface (the
main body of the shield) and from that portion lying posterior
to the protected part.
As is the case in any shield, the anterior part of the
crescent or half-moon variety must be placed far enough
forward so that if it does shift, there will still be sufficient
[Pg 132]normal integument for it to rest upon before it comes in
direct contact with the anterior edge of the calloused area.
However, care must also be taken and allowance made so
that backward movement of the fifth toe does not tend to
loosen up this anterior edge.
In strapping the half-moon shield, two strips, four
inches long and one inch wide, are used in like manner as
that described in the strapping of the oval shield. In some
instances the anterior point of the crescent is found to be
narrow enough so that a strip of the half-inch plaster, cut
the same length, may be substituted with equally good results.
The inch width, or in some cases the inch-and-a-half
width, is used across the posterior portion of the shield.
Number 3. The modified metatarsophalangeal half-moon
shield is practically the regular half-moon minus its
anterior point. Many practitioners have suggested a shield
of this nature for protection of the first and fifth metatarsophalangeal
joints for the reason that the anterior point is of
little or of no use and may become a decidedly detrimental
feature should the shield shift in any way. Its application
and strapping is similar in every particular to that of the
half-moon. The writer, however, has often used two strips
of one inch width plaster, each about three inches long, and
has adhered them in criss-cross fashion over the posterior
of the shield so as to cover the entire posterior portion and
some part of the lateral edge, and has also found this method
entirely satisfactory.
Plantar Surfaces. The plantar surfaces of the foot, being
subject to continued pressure and at times to considerable
friction, are prone to develop many calloused and corneous
areas. In many of these cases shielding is absolutely
imperative to successful treatment.
It must always be remembered that these excrescences
are, in a measure at least, a protection to the underlying
parts, and their removal often makes the patient conscious
of their loss. Ofttimes the tissues so exposed become congested
and decidedly tender. This, of course, is to be considered
[Pg 133]at all times, but particularly so on the plantar surfaces
of the foot. Another point which must be taken into
consideration in this connection is that the normal tissue
padding (fat and muscles) of some people’s feet is very
thin; in consequence, the heads of the metatarsal bones are
unprotected. In most cases of this kind shields must be
applied to take the place of nature in order to insure any
degree of comfort to the patient.
Shields to be placed on the plantar surfaces, and particularly
those to be applied to the metatarsophalangeal regions
on the “ball” of the foot, must of necessity be of decidedly
heavier quality and contain more “body” than
those applied to the dorsal or lateral regions. The reason
is that the constant weight of the body quickly flattens the
shields out to such an extent as to render them useless as
far as protection is concerned.
The full oval shield (Fig. 1-A) is the agent best calculated
to protect sensitive areas on the plantar surfaces, and
it can be safely said that it may be and is used in almost
every case of this kind. Naturally the most general locality
for the formation of helomata is under the metatarsophalangeal
articulations. These areas, particularly in persons
whose feet are thin and lack the proper natural padding, become
the seats of severe callosities and helomata. The shield
to be used should always be of sufficient size to allow surface
enough so that the patient will rest upon the shield rather
than on the integument; but they should never be allowed to
extend up under the toes or be placed in any way so as to
irritate the tender tissues surrounding the diseased area. For
this reason many practitioners have advocated the use of the
medio-plantar crescent shield (Fig. 1-I), so placed that the
greater body of the shield is posterior to the heloma and the
“points of the crescent” extend forward laterally to the
heloma and point toward the toes. This variety of shielding
is particularly efficient when the part to be protected is
located rather anterior to the metatarsophalangeal articulations,
as is often found in cases of blisters and verrucæ.
[Pg 134]However, in most instances where the trouble is situated
directly over these joints, an oval shield may be used with
perfect impunity and good results will usually follow.
The long axis of the oval shield is placed, as a rule, crosswise
on the foot, as the greater amount of protection is derived
from the surfaces immediately adjoining the affected
area, laterally rather than anteriorly and posteriorly. In
cases of excessively arched feet (not necessarily pes cavus)
and when the integument is quite thin, a great deal of protection
may be afforded by “building up” the shield on
its surfaces, which are to be posterior to the areas to be
protected. This fills up, to some extent, the hollow caused
by the high longitudinal arch and gives the patient a larger
surface upon which to stand or walk. This same theory of
shielding may be successfully applied in cases where the
calloused area covers the whole “ball” of the foot, making
it impractical to shield any one spot without jeopardizing
the comfort of the rest of the integument by placing a
shield over it. A large piece of felt may then be applied directly
posterior to the callosity, the felt to be of sufficient
thickness to allow the patient to rest upon the shield rather
than upon the painful calloused area.
Strapping. In strapping the plantar oval shield, the
one inch width plaster is most generally used. Three strips
are cut, one about two inches and the remaining ones approximately
three or four inches in length. The short strip
is then placed over the anterior edge of the shield and is
adhered to the integument, adjacent laterally to the shield.
One of the longer strips, placed diagonally over the shield’s
lateral edge, starting from and covering the plaster strip
already adhered transversely across the anterior end and
running backwards and covering the whole lateral surface
of the shield, is adhered to the integument immediately posterior.
The remaining long plaster strip is then placed in
like manner over the other lateral surface of the shield and
is adhered so as to cover the posterior end of the first placed
lateral strip. This lapping of the plaster ends lends reenforcement
[Pg 135]to the strapping and undoubtedly minimizes the
danger of the plaster loosening and at the same time all the
edges of the shield are bound down to the integument
(Fig. 12).
Fig. 12.
SHOWING COMPLETE STRAPPING
FOR MEDIO-PLANTAR OVAL
SHIELD
It should be remembered that when applying adhesive
strips in the strapping of a plantar shield, the toes should
always be drawn backward
towards the dorsum
of the foot to their
fullest extent, the
straps to be applied
whilst the toes are held
in this position. This is
to allow for the extension
of the toes in the
last position of walking
and prevents the plaster
from pulling on the
sound integument.
In several instances
it has been advocated
that but two one inch
width strips be used on
a shield of this nature,
and the same method
may well be applied to
the strapping of the
medio-plantar crescent
shield previously described.
These strips
are cut of equal length,
each about four-and-a-half
or five inches.
About one inch from one end, each strip is narrowed
from the sides so as to allow the admission of the
plaster between the toes. This one end is then adhered to
the integument on the dorsum of the foot, the narrow portion
[Pg 136]being carried between the third and fourth or the
fourth and fifth toes (as the size of the shield may indicate)
and the remaining portion of plaster is adhered diagonally
across the outer lateral surface of the shield. The other
strip, adhered in like manner on the dorsal surface, is carried
between the toes (usually the great and second) over
the inner lateral surface of the shield, lapping over the end
of the first strip applied. This method of strapping covers,
to a considerable extent, the anterior portion of the shield
and does away with the transverse strip which in many
cases becomes an irritating agent to the tender integument
under the toes.
The argument against this method of strapping may be
the danger of irritation between the toes. From the experience
had in using this method, the writer has had no bad
results, and if the strips are properly adhered, the normal
movements of the foot being taken into consideration and
the plaster lying between the toes cut sufficiently narrow,
no bad results can take place and there is no doubt of the
greater efficiency and lasting power of the strapping.
The Lateral Plantar Half-moon. When the area to be
protected is situated on the extreme lateral edges of the
plantar surface, as often found in these locations, and the
callosity extends to or sometimes over the lateral border of
the foot, the full oval shield is contra-indicated. In its place
the lateral plantar half-moon is substituted with better
results in all cases.
This variety is identical with the dorsal half-moon
shield and is applied so that the main body of the shield lies
laterally on the plantar surface, while the “points” are
allowed to extend somewhat over the lateral border of the
foot so that some protection is afforded from this source.
The major protection, however, is, of course, obtained from
the main body of the shield on the plantar surface.
The anterior “point of the crescent” is generally fashioned
so as to be narrower and thinner than the posterior,
for in nearly every instance this must extend near the under
[Pg 137]surface of the great toe and of the small digit, and must in
no way be allowed to interfere with their movements. Two
strips of one inch width plaster are generally used in
strapping the lateral plantar half-moon, although in some
instances it will be found necessary (due to the close proximity
of the digital webs) to substitute a strip one-half inch
in width for the anterior strapping.
The straps are so placed as to overlap both on the
dorsal and plantar surfaces and to bind down the anterior
and posterior edges of the pad. In all strapping the result
to be obtained is the binding down of the edges of the shield
rather than merely binding down the main body.
Lateral Borders. Practically the only spot on the lateral
borders of the foot where callous formations may be
met is over the expanded base of the fifth metatarsal bone,
although blister formations or other tender areas may
develop anywhere along the edges.
The full oval shield is almost entirely used in connection
with protection in these locations and is usually
strapped with three strips of the inch width plaster or, if
the shield be small, three strips of one-half inch width
plaster will answer.
These are placed as follows: one strip slightly shorter
than the other two is adhered transversely across one end of
the shield and the other two are applied diagonally from the
ends of the first, so as to completely cover the lateral edges
of the shield and overlap each other on the sound integument
beyond its end.
Os Calcis Region. Many cases coming to the notice of
the podiatrist require the application of a shield in the
region of the os calcis, either on the plantar, lateral and
posterior surfaces of the heel itself, or further upward on
the prominence of the tendo Achillis. The oval shield is
most generally used in these instances, and felt will usually
be found to be the most practical shielding material. Felt,
in particular, is advocated because it is softer and more
yielding than most other materials, and in shielding a tender
[Pg 138]area on the tendo Achillis, nothing harsh can be used
without danger of causing irritation to the surrounding and
underlying soft parts.
Strapping is similar to that used in adhering the oval
shield to the lateral border, but naturally the operator must
exercise his own ingenuity in the method of strapping to
meet the conditions present.
The art of applying a shield is not one to which any set
rules can be applied. Each case is individual and the operator
who goes about this branch of his work in a stereotyped
manner will find his efforts devoid of results.
Often a half-moon shield is used where the part to be
protected is so located that a full oval shield may not be
applied. Sometimes the “points” are applied upward and
sometimes the main body of the shield lies above the protected
area and the “points” are downward. The strapping
is similar to a strapping for any such shield and the strips
are applied in such a way as not to interfere with normal
movements of the heel or of the tendon.
There are many instances in which incipient bursal inflammations
are developed adjacent to the tendo Achillis, due
to the wearing of a new or stiff pump or boot. Many cases
of this nature were found among the militiamen preparing to
go to the “border” last Spring. The constant marching in
new and stiff shoes, which was part of their training, caused
a great amount of trouble just above and at the insertion of
this tendon. In these cases two pieces of felt, shaped to the
tendon and thick enough to fill up the hollows at its sides,
were applied and then strapped securely in place by strips of
adhesive plaster, one inch in width, which covered felt,
tendon and all. This strapping served not alone to secure
the felt shielding in place, but also to immobilize the part so
that these deeper inflammations had a chance to subside.
Dorsal Surfaces. On the dorsal surfaces of the foot,
over the articulations of the metatarsal bone with the internal
cuneiform and the cuneiform with the navicular, small
and seemingly insignificant, helomata miliare (seed corns)
[Pg 139]are found to develop. In many instances the removal
of these growths will not bring relief unless a shield is applied
with the final dressing. This is due to the lack of
muscular padding over these bones and the skin becomes
irritated by tight lacing of the shoes.
A small oval shield, not too thick and usually of thin
buckskin, kid or adhesive moleskin, is usually applied, although
the thinner varieties of felt may be used with good
results. The shield is generally strapped in a manner similar
to those applied to the lateral borders or to the os calcis
region, that is, with three strips of one-half inch width plaster
applied to cover all edges of the shield in triangular
form.
MORTON’S TOE AND METATARSALGIA
The treatment of anterior arch trouble is usually and
wisely recommended to the orthopedic specialist, but there
are numerous incipient and advanced cases for which the
podiatrist must necessarily give at least temporary relief.
Shields, as well as strapping, play an important part in the
rectification of these annoying conditions, and under this
heading the shielding in particular will be discussed.
The heads of the metatarsal bones forming the anterior
metatarsal arch, having dropped from their normal positions,
cause pressure upon the digital nerves and bring on
the varieties of pain which are found in these conditions. It
seems a logical theory that in order to alleviate these painful
manifestations, support so designed as to return these bones
to their normal position and hold them there would constitute
a practical and efficient treatment.
From the podiatrist’s standpoint, this may be accomplished
by means of shields of felt or buckskin, adhered to
the plantar surface of the foot in this region or by placing
such supports in the shoe. These methods may at least
afford temporary relief and in some instances, if their use
be persisted in, permanent cures have been effected. The
cure, however, is usually attempted by means of metal appliances
[Pg 140]which are worn in the shoe and which have a raised
portion or “button” just posterior to the metatarsal heads.
There are several forms of shields (or rather in this
instance pads or supports) which are in general use for the
correction of anterior arch trouble. These vary in size,
shape, and thickness according to the number of bones involved
in the displacement. Varying success is met with in
the use of these supports and each individual case is usually
found to demand changes or modifications in the support, so
that the following description should be taken for the general
points alone:
Morton’s Toe. This affection, being limited to a displacement
of the head of the fourth metatarsal bone with the
lateral pressure from it upon the digital nerve, naturally
does not need so large a shield as would be demanded were
the bones of the whole anterior arch out of alignment.
A pad of felt, about two-and-one-half inches long, an
inch-and-a-half wide at the anterior point, made to taper
slightly towards the posterior end, and three-eighths-of-an-inch
thick, will be found to give relief in most cases. The
felt is skived at the posterior end so that its thickness lessens
gradually as it extends posteriorly along the metatarsal
bone. The pad is applied directly to the rear of the head of
the fourth metatarsal bone, and the thickness of the pad
serves to force the depressed bone upwards and thus into
proper alignment. It may be found necessary at times to use
even thicker material in the manufacture of the pad or to
place a small piece of felt upon its upper surface, so that as
it is adhered to the part, this elevated area will come directly
posterior to the depressed metatarsal head and thus elevate
it.
In strapping the piece of felt, two or three strips of one
inch plaster are used. These are long enough to cover the
width of the plantar surface and to extend upon the dorsal
surface on each side. One end of the plaster is firmly
adhered to the dorsum of the foot, the plaster being carried
around under the foot over the pad, to be then adhered to the
[Pg 141]inner dorsum of the foot. Sufficient tension should be put
on the adhesive strips to pull both borders of the foot down,
thus aiding the pad in pushing the heads of the affected
metatarsal bones up in place. In fact, in some cases a strapping
of this nature with adhesive plaster will serve to give
at least temporary relief to the patient without the use of a
pad. Some practitioners advocate a pad of sufficient length
to cover a greater portion of the metatarsal bone.
If the pad is entirely covered by the three lengths of
adhesive plaster, it will not alone last longer but the danger
of its slipping out of place is minimized.
Metatarsalgia. When the whole anterior arch is involved
in a displacement, a pad of sufficient size and thickness
to support the heads of all the metatarsals is necessary.
There are two principal forms of support in general use. A
strip of buckskin or felt of sufficient length (which will, of
course, vary in different feet) to cover the four lesser metatarsal
heads and about one-and-one-half to two inches in
width, is adhered to the foot just posterior to the depressed
parts. This is covered with adhesive plaster and serves as
a support to the whole anterior arch region.
In the writer’s experience, however, the fifth metatarsal
bone is rarely involved in this general depression, and this
seems natural when it is considered that the first and the
fifth metatarsal bones act as pillars for this arch in the
normal foot.
Should complaint be made of a pain coming from the
anterior arch trouble and occurring between the fourth and
fifth toes, it usually will be found to emanate from the depression
of the fourth metatarsal head. Keeping this in
mind, a pad or support, which has found great favor, is
fashioned from thick felt or buckskin (one-quarter to three-eighths)
in such a way as to allow its anterior edge to come
just behind the metatarsal heads. This pad should be about
four or five inches long and the portion that extends back
under the longitudinal arch should be skived so that it easily
conforms to the contours of the foot in that region. In order
[Pg 142]to obtain support to the three middle metatarsal heads, the
corners of this pad, which would extend over those of the
first and fifth, are to be cut away; otherwise the pad would
cause undue pressure upon parts requiring no support and
thus prove detrimental.
The pad is held in place with adhesive strips extending
from the outer to the inner dorsum, applied in the same
manner as described for the Morton’s toe pad.
This pad practically gives the patient a new sole to walk
on, and at the same time holds the depressed bones up in
place. It will often be found advantageous to apply a pad
of this kind, about one-eighth or one-quarter of an inch
thick, in conditions where the patient complains of a burning
sensation in the soles of the feet, even though there be no
apparent lesion or displacement of the metatarsal bones.
A number of devices are on the market for the relief of
all forms of affections common to the arches of the foot.
The relative merits of such contrivances will be fully discussed
in the forthcoming volume on Podiatry Orthopedics
(Schuster and Stafford), to be published under the auspices
of The First Institute of Podiatry.
[Pg 143]
CHAPTER IX
LOCAL ANESTHESIA
Local anesthesia is a condition of insensibility brought
about in a part of the body by the use of agents called local
anesthetics. The person in whom the local anesthesia is
produced does not lose consciousness as in general anesthesia,
the part alone being made insensible.
There are many agents which, when applied to a part,
by one means or another, cause that part to become insensible
to pain, but for the podiatrist the following agents are
best calculated to serve his purposes: cocaine, novocaine,
alypin and urea hydrochloride, ethyl chloride, ethyl bromide,
carbon dioxide snow, apothesine and ice. (See footnote
page 148.)
Cocaine is an alkaloid extracted from coca leaves. These
latter are not to be confused with cocoa, the seed of the
chocolate tree. When cocaine is treated with hydrochloric
acid, hydrochloride of cocaine is produced which occurs in
a white crystalline powder, soluble in water and alcohol.
When injected into the skin, or applied to an open wound,
it acts as a paralyzant to the vasodilators and as a stimulant
to the vasoconstrictors. When applying this drug, a
tourniquet should be used wherever possible, so as to prevent
absorption. This precaution is essential, as cocaine[2]
is very toxic, and even small quantities may produce bad
effects in some persons. There are cases on record in which
¹⁄₁₀₀ of a grain of this drug has produced all the symptoms
of toxemia, whereas there are persons who can stand doses
up to one grain. It is therefore essential to use judgment
and care in administering a drug which on account of the
idiosyncrasies of some people, is likely, even in minute doses,
to produce serious, if not fatal symptoms.
[Pg 144]
In podiatry, a ¹⁄₂% solution is strong enough for general
use, provided that time enough is allowed for the drug to be
diffused. For an ordinary ingrown toe nail, two cubic centimeters
of the above solution is usually sufficient to produce
anesthesia of the part.
Novocaine is a synthetic preparation and occurs in
colorless needles. It can be heated to 120 degrees Centigrade,
without undergoing decomposition, which is not the
case with cocaine hydrochloride. Although not quite as
efficient as an anesthetic, novocaine is only ¹⁄₇ as toxic as
cocaine and therefore can be used with greater safety and
podiatrists generally have abandoned cocaine for novocaine.
It has a slightly irritating action while being injected, but
on the whole it is preferable to cocaine for podiatry practice.
Physiologically, it has the same action as cocaine, and
is indicated wherever the latter drug is used. It is usually
injected in one per cent. solutions.
Alypin occurs as a crystalline powder. It is a most
efficient anesthetic and because of its non-toxic action, it is
to be preferred in cases in which there is a fear of toxemia.
Maximilian Stern, M.D., Professor of Surgery at the First
Institute of Podiatry, has used this drug extensively for
producing local anesthesia, and his results have been very
satisfactory. For use in podiatry, a ¹⁄₄ to ¹⁄₈ per cent.
solution is often sufficient. It may be used freely in ¹⁄₄ per
cent. strength without danger of toxemia. When injected,
it produces no anemia, and consequently there is no danger
of subsequent hemorrhage, such as might accompany the
use of either cocaine or novocaine.
Quinine and urea hydrochloride is one of the quinine
salts, consisting of one molecule of quinine hydrochloride
and one molecule of urea. It has no toxic action when
injected into the tissues, but it retards healing, and scar
tissue forms over operated areas where it has been used.
Many operators prefer this drug on account of its non-toxic
action when used in large quantities, despite the likelihood
of a scar and slow union. In parts of the body where contraction
[Pg 145]of the tissues is a desirable after-effect (such as
would be the case in hemorrhoids), quinine and urea hydrochloride
is to be preferred over other local anesthetics.
David H. Levy, M.D., a well known surgeon of New York
City, prefers it to all other local anesthetics.
Ethyl chloride and ethyl bromide are clear volatile
liquids, and upon their rapid evaporation depend their anesthetic
qualities. When a substance evaporates rapidly, it
extracts the heat from surrounding bodies in doing so, and,
consequently, when such a substance is applied to the skin, it
soon extracts the heat from the part and with the local
anemia thus produced, sensation is lost. Ethyl chloride and
ethyl bromide are manufactured in tubes so arranged as to
eject a fine stream of the liquid. When this stream comes
in contact with the skin, evaporation is rapid and gradually
the part becomes numb; continued, it becomes frozen. This
method is not as efficient as the hypodermic injection
because the anesthesia is not so lasting, moreover, the reaction
is severe and painful. Otto Sjogren and Fred Schmitt,
practitioners of known repute, have entirely discarded both
of these drugs from their list of local anesthetics, for
reasons above mentioned.
Carbon dioxide snow is prepared by allowing liquified
carbon dioxide gas to slowly escape from its container
into a glove finger, where it solidifies into a mass, assuming
the shape and form of the receptacle; it is called the carbon
dioxide pencil. When this mass or pencil is applied to a
part, it extracts the heat and anesthetizes by freezing. The
dangers attending the use of the carbon dioxide pencil are
the same as with ethyl chloride or ethyl bromide and, due
to its extremely low temperature, there is danger of causing
death of the tissues and of producing conditions giving rise
to subsequent ulcerations that are slow to heal. As an anesthetic,
it is not advised for podiatry.
Technic of Producing Local Anesthesia. There are
three methods of producing local anesthesia: (1) the hypodermatic
method: (2) the pressure method: (3) freezing.
[Pg 146]
The freezing method is of no great value to the podiatrist,
and having been already briefly described, further
comment is deemed unnecessary.
The pressure method of producing local anesthesia is
new, and although extensively employed in the practice of
dentistry, podiatry offers but little opportunity for its free
use. It is necessary to have an exposed nerve, such as is
found in the cavities of painful teeth, or an open wound
into which the drug can be absorbed, before this method can
be used. In cases of ingrown toe nail, in which the groove
is lacerated, either by the patient or by the nail itself, pressure
anesthesia is often efficacious. Small pellets containing
cocaine or novocaine, with adrenalin, are put on the market
for this purpose. One of these pellets is placed in the
nail groove, and a drop of alcohol is made to fall on it. The
contents of the pellet are promptly dissolved by the alcohol,
whereupon the operator places his thumb over the nail
groove between the nail and the nail flap and exerts downward
pressure. This forces the dissolved fluid into the tissues,
where it acts the same as if it were injected. This procedure
is painful for just a moment while the pressure is
being applied, but the pain soon ceases and nerve sensibility
is lost.
The most generally used method of applying local anesthetics
is by means of the hypodermic syringe and is called
the [3]hypodermatic method. This is preferable to all other
forms of inducing local insensibility, and if the technic is
mastered, operations will be painless with the exception of
the initial prick of the needle.
The Hypodermic Syringe should be so constructed that
it may be sterilized by boiling. There are many types of
such instruments sold, and in making a selection, only those
which will permit such boiling should be considered. The
all-glass syringe or the glass and metal syringe with the
metal piston are best, because the fluid contained therein is
[Pg 147]visible, thus preventing the injection of air. Needles should
be of the rust-proof variety and for use in podiatry, they
should be one-half or one inch long and have a twenty or
twenty-two gauge lumen.
After the syringe has been sterilized, it should be
adjusted and the fluid drawn into it after the needle is
attached to the barrel. The entire instrument is then
turned, needle up, and the air that may be in the barrel is
expelled by pressure on the piston. When this is done, the
syringe is ready for use.
If the needle is sterile, the only preparation necessary
for the skin is to paint it with tincture of iodine, and then
the injection of the anesthetic may be commenced. The area
to be anesthetized is determined, and then at the most proximal
portion, the skin is grasped between the thumb and
forefinger of the left hand. The syringe should be held in
the right hand with the barrel between the first and middle
fingers, and the thumb on the piston. When the skin has
been blanched by the pressure of the fingers of the left hand,
the point of the needle, lumen downward, is thrust into the
skin with a quick movement and immediately after, pressure
is brought to bear upon the piston. As the fluid enters the
tissues, it produces a blanched area which is called a wheal.
As the wheal is formed, the needle is gradually moved forward
in the derma until it is inserted as far as the base.
It is then withdrawn, and a second injection is commenced,
a little back of the distal end of the wheal. This second
injection, being started in a part already anesthetized, will
cause no pain. So the needle is gradually moved forward
in the derma until the desired area has been covered.
When the deeper tissues are to be anesthetized, the
needle may be directed at an angle to the surface, pressure
being borne on the piston of the syringe as the needle gradually
moves deeper into the flesh. It must be remembered that
if the needle is re-inserted into an area that is already
deadened, there will be no pain. The fluid should be ejected
from the syringe slowly, which insures an even distribution
[Pg 148]of the drug, as well as comfort to the patient, while the anesthetic
is being administered. Most drugs cause a burning
sensation if injected too rapidly.
The most common lesion for which local anesthetics are
used in podiatry is the ingrown toe nail, and to get good
results in these cases, the technic must be followed in detail.
After the derma has been anesthetized over the region of
the nail root and groove, one deep injection should be made
at the root, and vertically to the skin. This will insure loss
of sensation when the root is cut and when the matrix at
this point is curetted.
To prevent the absorption of toxic drugs into the system,
some means should be devised to cut off the circulation
during the operation. This is accomplished by the tourniquet,
which is usually made of flexible, solid rubber, about
one-sixteenth or one-eighth inch in diameter and about a
foot long. When this band is tied around the base of the
toe, and pulled tight, it cuts off the circulation. Tourniquets
cannot be used when operating upon the foot proper, and in
these cases it is necessary to be guarded in the use of toxic
drugs.
After the use of cocaine[4] or novocaine there is a reaction,
and occasionally the pains produced by this reaction are
severe. These pains may be alleviated to some extent by
the use of wet dressings, but they last only for a short time
so that it is often unnecessary to treat them. The patient
should be warned of the reaction. The local anemia produced
by the injection of these drugs is subsequently followed
by hyperemia, and it is therefore necessary to guard
against hemorrhage in cases in which free incisions have
been made. Wounds should be packed, and proper bandages
should be applied to prevent any such possibilities.
[Pg 149]
CHAPTER X
HELOMA
Derivation. The word has its origin in the Greek
“helos,” meaning corn; (plural: helomata).
BUILDING NAILS (HELOS) USED IN PRE-HISTORIC TIMES
In the accompanying cut will be found a photograph of
two building nails bearing the name and time of the reign
of King Gudea in Ur, Chaldea, about 2500 B.C. Plaster casts
of the above were presented to The First Institute of
Podiatry by Fridtjov Anderson, Colonel in the Norwegian
Artillery. These nails were called helos and because of
[Pg 150]their semblance to the foot excrescences, commonly called
corns, the latter were therefore named helomata.
Synonyms. Corn, clavus, horn.
Definition. An heloma is a circumscribed, conical, deep-seated
overgrowth of the epidermis, the apex of which
presses down upon the derma. Corns usually occur about
the toes, but may appear upon any part of the body subject
to friction or pressure. They range in size from a
pinhead to a ten cent piece.
According to their appearance, texture or composition,
helomata are classified as follows:
Heloma durum, or hard corn.
Heloma molle, or soft corn.
Heloma vasculare, or vascular corn.
Heloma miliare, or seed corn.
HELOMA DURUM
Heloma durum is a hard circumscribed overgrowth of
the epidermis and may occur as above stated, but is usually
found on the outer side of the fifth toe, the dorsum of the
second, third and fourth toes, and on the plantar surface
of the interphalangeal joint of the great toe.
Symptoms. The symptoms of an heloma durum may
be classified as subjective and objective. The chief subjective
symptom is pain in varying degrees. The formation
of the growth produces a pressure upon the nerves
which, in turn, gives rise to pain varying from a dull and
mild sensation to a sharp and intense excitation. These
pains are increased when the part affected is further irritated
by ill-fitting shoes, by friction or by other pressure.
It is a well known fact that the pain in a corn is increased
when the weather is about to change. Helomata,
which at other times cause no inconvenience, will prove a
source of annoyance at this time. This is due to certain
physiologic changes that take place in the body as follows:
the atmosphere preceding a storm becomes more and more
charged with moisture. As this increases, the function of
[Pg 151]the skin, namely the elimination of liquid waste, is gradually
diminished. This function is taken up and performed
by the kidneys, and as the air becomes fully charged with
moisture, the entire work of elimination is carried on by
these latter organs. This physiologic change requires a readjustment
of the blood supply and the nerves which control
it, so as to bring about a proper equilibrium. In this latter
procedure the little nerve fibres are unfavorably influenced,
and pain results. The gradually increased uncomfortableness
that is experienced is due to gradual increase in the
humidity and when precipitation takes place and the air
is freed from this atmospheric pressure, relief is afforded.
The patient will complain of pain while shoes and
stockings are worn, but will feel relieved when they are
removed, except in cases where inflammatory processes have
commenced. The pains at these times are of the throbbing,
pulsating variety, such as accompany all inflammations.
A clinical examination of an heloma durum shows a
horny mass of epidermic cells crowded together with no
regular formation within the growth. There is a sharp line
of demarcation between it and the surrounding tissues
and it is also distinguished by its darker, yellowish color
in contradistinction to the healthy pink of the normal skin.
Within the growth, and usually at its centre, may be seen
a darker, more compact mass, which penetrates deeper into
the tissues. This is the radix or nucleus, incorrectly termed
the root, or the eye, of the corn. The skin immediately
surrounding the heloma usually presents a red line, due
to the somewhat lessened irritation that originally produced
the corn. The color is due to congestion in the derma.
Etiology. Helomata dura are commonly caused by
direct intermittent friction or pressure of ill-fitting shoes.
The shoes may be too tight, thereby causing pressure, or
they may be too loose, thereby causing friction. Helomata
that appear on the plantar surface of the foot may be
caused either by some roughness in the finish of the shoe
or by soles which are too thin, or by downward displacement
[Pg 152]of the heads of the metatarsal bones beneath, caused
by wearing shoes that are not anatomically correct.
Imperfections in the stockings, such as knots in the
worsted or poor workmanship in darning, are also factors
in producing helomata. Any concentrated or undue local
pressure is capable of causing this overgrowth, provided,
however, that the pressure is not primarily of sufficient intensity
to set up such an amount of congestion and consequent
inflammation as to lead at once to an ulceration of
the part.
The same principle of intermittent friction and pressure,
with counter-pressure, as a cause for helomata holds
good on any part of the body surface.
Pathology. The pathologic changes accompanying the
development of an heloma are mostly morphologic. The
intermittent friction and pressure produce first an irritation
or excitation of the cutaneous nerves; this causes an increased
blood supply to the part and congestion takes place
in the derma immediately beneath.
Were this pressure or friction to cease at this time,
nature would restore the tissues to their normal condition
in a very short time; but, as this pressure or friction is
continued from day to day, the habitual congestion produces
a chronic enlargement or hypertrophy of the papillæ
of the derma.
The epidermic cells originate from the material supplied
by the blood plasma, which is conveyed through the
walls of the capillaries to the surface of the basement membrane
by endosomis, where it forms into granules which
contain nuclei of unusual size. These granules, the first
organic shape of the future cells, gradually develop into
nucleated cells.
Bearing in mind the development of the cells in the
normal skin, with an increased blood supply, there will
naturally be a more rapid proliferation or development of
cells taking place over the enlarged papillæ than over the
surrounding normal ones. This excessive development of
[Pg 153]cells causes an abnormal upward crowding of the preceding
cells, with the result that the horny layer gradually becomes
thickened. With this thickened layer acting as a
counter-pressure from above, cornification of the tender cells
takes place more rapidly with each succeeding new layer
that is added to the under portion of that already formed.
The growth at this time takes place at the interior and
lateral portions of the heloma, principally the former.
This process in due time causes the epidermis to become
transformed into a dense homogeneous mass of cells
which is called a callosity. The size of the callosity is determined
by the area of the papillæ affected.
The etiologic factors which cause the enlargement of
the papillæ and the overgrowth of the epidermic cells continue,
and that part of the growth which was first formed
and is most usually central, becomes more dense than the
surrounding callosity. This is due to the greater irritation
to which it is subjected, and eventually this extends downward
and penetrates the derma. The pressure of this new
development, known as a “radix,” against the papillæ,
causes these organisms to undergo progressive atrophy with
the result that they are at times completely absorbed.
Thus, we have the common heloma durum. The heloma now
receives its nourishment from the lateral portions, which
still continue to maintain their increased vascularity.
It often happens that an heloma is subjected to unusual
pressure during its formation, which causes serous effusion
or even subcutaneous hemorrhage in minute quantities.
This effusion is absorbed by the soft cells which are in
the process of transition into horny tissue. These cells take
on a laminated appearance which present different tints,
from a light yellow to a dark red.
The nerve filaments of the skin are also affected during
the development of an heloma, and when this process is
marked, the condition known as neuro-fibrous heloma is the
result. These little neuromata very often become quite enlarged.
The favorite location for this condition is the inner
[Pg 154]plantar edge of the great toe, and sometimes the outer
plantar edge of the metatarsophalangeal joint of the fifth
toe.
These helomata consist of two or three little irregularly
shaped structures extending downward into the derma
and in juxtaposition to each other, the septum dividing these
structures being made up of one or more rows of enlarged
papillæ which have become highly vitalized through the
enlargement of the nerve fibres contained in them. The
condition is very painful and great care must be exercised
when operating upon them. The most logical reason for
their appearance upon the plantar edges seems to be the
fact that the long papillæ of the plantar surface leave off
abruptly and are joined by the shorter ones of the dorsum.
The line of junction is undoubtedly subjected to a greater
degree of irritation than where the size of the papillæ is
uniform.
Diagnosis. A typical heloma durum is a mass of epidermic
cells, round in shape and varying in size. The color
is usually yellow, but in cases where serous or bloody infiltration
has taken place, the color may increase to red or
even to dark purple.
Heloma durum may be mistaken for heloma vasculare
or verruca, on account of the dark blood stains which are
often in evidence, but when the top layers of the heloma are
removed, the dark spots which were mistaken for blood
vessels are not found in the growth proper, but are deep
in the structure resting against the derma. When these
spots, which are clots, are cut with the knife, no bleeding
occurs; whereas, if the condition were one of heloma vasculare
or verruca, hemorrhage would be produced.
Lesions of several skin diseases, such as eczema and
psoriasis, very often produce scales or crusts on the feet
which might be mistaken for helomata, for when the fingers
are passed over them they feel as if they were an overgrowth
of the skin. These scales or crusts, however, are
usually loosened at the edges and the color is quite different,
[Pg 155]being red or white. Other indications of the presence
of a skin affection will usually be found on other parts of
the foot.
The radix, or nucleus, of the heloma is a characteristic
which differentiates it from the ordinary callosity. The
radix is a dark solid mass of epidermic cells which has an
almost transparent appearance.
When cutting
an heloma, the
radix may be felt by the
tension produced as the
knife passes through it.
Helomata dura
found on the plantar
surface of the foot over
the heads of the metatarsal
bones are not
readily distinguished,
due to the fact that they
are covered by a layer
of callous, which, when
removed, exposes the
nuclei to view.
HELOMA DURUM ON PLANTAR
SURFACE
Prognosis. The
prognosis of heloma
durum is uncertain.
There are many cases
on record which have
disappeared after the
first treatment and, on
the other hand, some
cases regularly recur notwithstanding many years of regular
attention. This is due to two conditions: first, the cause
of the heloma, namely, the continued wearing of the shoe,
and, second, the papillæ beneath the growth remain enlarged
and continue their function of excessive cell proliferation.
The latter reason is more important than the first, for, even
[Pg 156]in cases where proper footgear is provided and no friction
or pressure is permitted, the heloma may continue to grow.
The only way to account for the total disappearance of some
helomata, after treatment, is, that when the growth is removed,
the size of the papillæ diminishes and normal function
is restored. The situation of heloma durum is very
important in considering the ultimate cure of the growth.
Those on the outer aspect of the little toe rarely get well, due
to the prominent position of that digit, while those on the
plantar surface over the heads of the metatarsals are often
completely cured after the proper treatment has been applied.
When the heads of the metatarsal bones have been
properly adjusted, the helomata produced by their downward
displacement gradually disappear.
Treatment. The treatment of heloma durum is divided
into three classes, viz.: preventive, palliative and operative.
Preventive treatment consists in securing freedom
from friction of or pressure on the parts affected. Footgear
of proper size and shape is essential. The shoes
should be neither too tight nor too loose; they should
fit snugly in the heel, and the toe box and front of the
shoe should be broad enough to allow of freedom for the
toes. The quality and kind of leather used for the shoe
should also be considered. This should be soft and well
seasoned, vici kid and calf skin being preferred. Patent
leather and colt skin are undesirable, in that they are hard
and almost air tight. Shoes made to measure on a last
constructed from a plaster of Paris cast of the foot, are the
best. In making a shoe, consideration should be given to
other deformities, such as flat foot, metatarsalgia, etc., and
means for correcting these ailments should be taken.
The stocking should be large enough to prevent pressure
on either lateral side of the foot. There are stockings
on the market which are cut for each foot and are known
as right and left stockings. These are very desirable, as
they prevent distortion of the toes, which is often produced
[Pg 157]by the regular stocking cut to a point at the third toe. The
material is of little consequence, except that wool or cotton
absorbs moisture excreted by the glands better than silk.
Palliative treatment includes the application of palliative
agents, among which silver nitrate and salicylic acid
are most serviceable. These remedies cause desiccation and
shrinkage of the horny growth, which is thus made to shell
out from the bed in which it lies. This method of treating
an heloma durum is long and tedious, as many applications
of the drugs are required to obtain a result. Great care
must be exercised to prevent the applications from touching
the surrounding normal skin. The virtue of so-called
corn cures, which are very plentiful and are given artistic
names, all depend upon some drug or chemical, chief among
which is salicylic acid. The danger to the layman is readily
seen, for when these agents are applied carelessly or in
large quantities, the action is too severe, and ulceration and
infection is the result.
When the practitioner finds it necessary to resort to
palliative measures in the treatment of an heloma durum
the following procedure is advised: the tissues surrounding
the horny growth are protected by painting with several
layers of collodion or glycerine jelly (Unna). A piece of
salicylic acid plaster is cut to the size of the heloma and
placed over it and a proper protection applied. Or, a shield
can be fitted around the part and in the aperture is placed
a 25% salicylic ointment, and the entire dressing is covered
with adhesive plaster. This dressing is allowed to remain
in contact with the part for two or three days, when the
dressing is removed and the white, macerated tissues are
scraped or cut away. The treatment is again applied and
repeated as often as necessary. (See chapter, Shields and
Shielding.)
Operative treatment may be divided into two classes,
the radical and the non-radical. The radical method is painful,
but with the use of local anesthetics, good results are
obtained without discomfort to the patient. Alypin, 1 : 2%,
[Pg 158]quinine and urea hydrochloride, 2%, or novocaine, 1% (the
latter being preferred by the writer) may be used to produce
local anesthesia[5]. The parts are thoroughly cleansed
and made aseptic by washing with the tincture of green
soap, followed by alcohol, 60%, and finally painting the
entire surface, including the surrounding parts with tincture
of iodine. The hypodermic needle and syringe and all the
instruments to be used in the operation are boiled in water
for at least ten minutes. A spot is selected for the injection
of the anesthetic, and ethyl chloride is sprayed on it,
to make the primary injection of the needle painless. The
needle is forced into the derma and pressure brought to bear
on the piston of the syringe, as it moves forward into the
tissues. By following the wheal thus produced, the entire
area surrounding the heloma can be anesthetized.
When the anesthesia is complete, two semi-elliptic incisions,
meeting at their extremities, are made through the
skin, care being taken that they penetrate the subcutaneous
tissue. These incisions should completely envelop the
growth. The tissues between the incisions are seized with
an artery forceps, and the entire wedge, including the derma
and subcutaneous tissue, is dissected out. This produces
free oozing, and it may be necessary to twist a small vessel.
Hemorrhage is never severe. The edges of the wound are
brought together (apposition should be perfect) by one or
two fine sutures and primary union takes place in a few
days, or, if the wound is not large, the part may be dressed
and allowed to heal by granulation. Subsequent dressings
should include shields for the prevention of friction or
pressure.
Dr. Robert T. Morris, of New York City, recommends
skin grafting with this operation, in order to prevent the
formation of scar tissue, a very desirable consideration.
After the tissue has been dissected out, some skin is taken
from the fleshy part of the leg and is attached over the
wound. This eliminates drawing the edges of the wound together,
which procedure often causes harmful after-effects.
[Pg 159]
The non-radical operative treatment of heloma durum
is the most popular and practical method employed by
chiropodists today. The growth is removed down to the
true skin, care being taken that this layer is not punctured
and bleeding thus produced.
There are two general methods of procedure for the
surgical treatment of callositas and helomata in vogue today.
These are known as the paring or shaving method
and the dissection or excision method. This nomenclature
is derived from the operations themselves.
As the term implies, the paring method consists of removing
the callouses with the chisel, knife or scalpel by
shaving away the growth with a series of knife strokes or
cuts, and the subsequent removal of the cone body or radix
with the point of the same or a similar instrument.
Technic of the Shaving Method. The part is thoroughly
cleansed with a standard antiseptic, such as phenol, 5%,
lysol, 1%, or cresol, 1%, and this is followed by alcohol,
60%, which is allowed to remain in contact with the heloma
for a few minutes. The instrument employed should be
sterilized by boiling in water for at least fifteen minutes or
by placing it in phenol, 95%, until the liquid clings to the
blade, followed by alcohol, 95%.
After thorough asepsis has been obtained, the tissues
adjoining the area to be removed are held firmly between
the thumb and index finger of the left hand and the knife
is grasped firmly with the fingers of the right hand.
By holding the tissues of the part firmly so that they
may not move, the pain to the patient and the danger of
invading the vascular tissues is minimized. A knife, no
matter how sharp, is bound to pull the tissues overlying a
tender and inflamed part unless these tissues are in some
way prevented from moving.
After the overlying callouses have been thoroughly
pared away, and the part is found to be soft and flexible,
the nuclei are removed. In removing these hard bodies the
operator who shaves or pares, practically becomes a dissector.
[Pg 160]With a sharp pointed knife the heloma is loosened
from the surrounding soft parts until entirely freed, when
it is lifted out. Should there be two or more helomata under
one callous, the same procedure is adopted for each individual
growth until all are removed and the whole area is
found flexible.
The stroke of the knife in the shaving method is usually
toward the operator, his fingers and thumbs being so
arranged as to limit the distance which the blade may travel
and so prevent cutting the patient or himself.
In shaving an heloma on the dorsum of the intermediate
toes, the index finger of the left hand is placed anterior
to the hardened area and the thumb, posterior. The knife
is then held as a penholder and the strokes are made toward
the operator, the toe being moved or rotated to bring all
the surfaces of the growth under the blade of the knife.
On the plantar surface the operator, at times, is forced
to work away from himself, but in most cases the blade is
directed toward himself.
For operating on helomata between the toes, the knife
is held as a penholder and the blade is directed toward the
toe or web. Many of the practitioners who “shave” use
a distinct dissection method for the removal of helomata
in this location. They employ what is known as a “spoon”—a
shallow flattened curette—and starting from the outer
edge of the calloused area, work under the hardened layers
until the entire growth is loosened, whereupon it is deftly
removed.
The stroke of the chisel in the shaving method is usually
away from the operator. This is in contradistinction
to the stroke of the knife or scalpel. When operating on the
dorsum of the toes, however, most operators using the chisel
direct the blade toward themselves, unless, as is common,
the operator moves around in front of the patient, when
the cutting is done away from the operator.
Technic of the Dissection Method. One of the oldest,
yet one of the most popular methods of operation is that
[Pg 161]known as dissection. As will be understood by the term,
this method is a procedure whereby the growth is excised
by the helotomon, as a whole, from the underlying tissues.
This is in contradistinction to the paring or shaving
method.
Two of the best known practitioners who use this
method of procedure are E. C. Rice, M.D., of Washington,
D. C., and Charles F. Stevens, of Elmira, N. Y. Dr. E. C.
Rice has this to say on the subject:
“The limited knowledge of the chiropodists of earlier
years did not apply to their handling of instruments, which
was professionally scientific to the highest degree. The dissecting
method was the method of operating in the early
days.
“In the late fifties a practitioner by the name of Josiah
Briggs taught many young men, among them Elliott W.
Johnson, and the writer’s father, W. E. Rice. A Scotchman
also instructed Nehemiah Kenison. They in turn
taught others the dissection method. There will always be
two professional methods of operating on helomata, the
shaving (exfoliating) and the dissecting (excision) methods,
and practitioners should understand both.
“Those who have a light touch, if determined to learn,
can become skillful in the art of dissecting, and, when acquired,
their life’s work will become a daily fascination.
The procedure calls for skill that compares with that employed
by the eye, nose and throat specialists and is appreciated
by the most eminent surgeons.
“The word ‘dissect’ implies a separation, and this
method permits the operator to separate the heloma from
the normal tissue in one piece so that classification is made
simple. In removing the growth in its entirety, it is possible
to observe the various forms the nuclei take, and
the classification the writer would make is as follows:
granular, grain-like in appearance, sometimes called ‘surface
corn’; crescent, forming a semi-circle about the joint;
wedge, having a wedge-shaped nucleus, commonly found on
[Pg 162]the plantar surface; cone, from its shape; thumb tack, also
named from its shape; multiple nuclei, resembling any of
the above named and having numerous central points; soft,
the gristly tissue between the toes; elevated, protruding,
horn shaped; circular, because of the form of the nucleus.
“The instruments used in this method of operating are
the chisel (helotomon—Dr. F. Oefele, editor,) and the iris
mouse-toothed forceps.
“The original chiropodist’s instrument in this country
was a cross between the surgeon’s scalpel and a chisel. The
blade was shaped much like the human foot and was on a
handle such as is used on the standard razor. From this
first instrument of chiropody was evolved the only distinctive
instrument of our profession, the chisel, which has been
successfully used for more than half a century.
“It is distinctly a chiropodist’s instrument, as much
as the plane is the tool of the carpenter. With this chisel
the dissecting method is made possible, for its cutting edge,
as its name suggests, is on the end of the instrument, and
permits of the most delicate work. The chisel should be five
and one-half inches long and should have a rough hexagon
handle. The round or oval handles do not permit perfect
finger control. The blade or cutting edge may be oblique,
straight or oval, as the operator desires.
“The technic of the dissecting method of operating is
as follows:
“The chisel is held in the right hand and the forceps
in the left. Hold each as you would a correctly held penholder;
to support and to steady the hands, let them rest
gently on the fourth and fifth fingers; when operating between
the toes, the supporting fingers rest upon and press
aside the toes so as to give plenty of room for operating.
“The tissues at the periphery of the heloma are separated;
with the forceps grasp the free edge and raise sufficiently
to see the line of demarcation and use enough traction
on the forceps to overcome the pressure of the chisel,
not enough, however, to produce the sensation of pulling.
[Pg 163]
“When properly performed, the gentle lifting of the
tissue prevents the nerve being pressed upon or pinched between
the blade of the instrument and the underlying bone.
The line of demarcation is made by the union of the light
and dark shades of tissue, the normal being the light and
the darker shade belonging to the heloma.
ILLUSTRATING METHOD OF SPREADING
TOES APART BY USING FOURTH
FINGER OF EACH HAND, MAKING
OPERATION EASY
“Those who use the
oval chisel find they can
do more work and have
fewer hemorrhages,
and only occasionally
do they find it necessary
to use the nucleus
dissector, which is required
to remove an
heloma of the thumb
tack variety, as its
shaft may extend to a
depth of a fourth or a
third of an inch. In dissecting
this type of
heloma, when the head
of the same has been
separated back to its
shaft, the traction on
the forceps is increased, the tissue being gently lifted and
turned back. This tends to present the shaft toward the
blade, and as cutting proceeds the shaft seems to be lifted
up and out of the soft tissue into which it is embedded.
“To beginners, the writer would suggest the oval-shaped
chisel and would advise practising first on the plantar
surface.”
C. F. Stevens contributes the following:
“Speaking generally and taking the average heloma as
an example, my method of procedure would be somewhat as
follows:
“These growths are hardly ever deep, and are removed
[Pg 164]by the following process more easily than to chisel or pare.
After the usual antiseptic precautions as to the operator’s
hands, instruments and the patient’s foot have been taken,
the operator grasps a sharp, pointed, slim instrument.
“Holding this knife with the right hand and with a
small forceps in the left, he grasps the free part of the
growth with the forceps,
carefully raising
this part to determine
if possible how much is
free and how much is
attached to the deeper
tissues.
PROPER USE OF FINGERS ELIMINATES
NECESSITY OF TOE SPREADERS
“With a sharp blade
he makes a series of
slight strokes, cutting
but little at a time, on
a line between the
growth and the skin
(the growth being darker
than the skin), thus
separating the excess
deposit of horny cuticle
from the skin, following every curve, deep part or point,
until all is separated in the one mass. In this manner he
is enabled to remove all in one piece. Dressings vary,
according to the prominence of the part and the shoe worn.
“Since the writer was taught this method of procedure
he has found it to be much easier to separate such a horny
growth from its bed, than to try to pare it off in bits or
shave it as the patient himself tries to do. Helomata being
hard, very naturally resist the cutting of a knife, and the
blade, therefore, when trying to pierce the hard mass, pulls
on the sensitive tissues beneath, thus causing pain. Following
the line between the normal and the abnormal tissues
in operating, much softer integument is encountered;
therefore, the cutting is easier and can be done with practically
no pain.
[Pg 165]
“The cautious, careful operator will seldom invade the
healthy tissues beneath sufficiently to cause capillary hemorrhage.
A paring or shaving process could, of course, first
be employed to remove the indurated callous, then proceed
to carefully separate the deep parts as described in the
case of heloma. Simply raising gently with the thumb forceps
and cutting a very little at each stroke with a sharp
pointed blade, following each wave or indentation indicated,
as the work progresses, until each piece or mass is
separated and removed, will be found a preferable procedure.
However, we have found it as simple and easy to
dissect the mass as a whole as to operate by paring and
then removing the deeper parts.
“In case of a deep-seated hard corn where the toe is
red, inflamed and very sensitive, the first described method
(as in heloma) is usually best. Often upon reaching the
lowermost layers, one finds a quantity of pus. When this
escapes, as it does, the pressure on the inflamed tissues is
lessened, and the patient will allow the operator to proceed
faster.
“With a deep-seated heloma on the sole of the foot,
the same method is followed, no matter how deep or serrated.
The operator (after one or two small cuts) gently
raises the edge with the forceps, while with the same style
of blade he cuts down and around the growth, until the
whole piece with its radix is lifted out.
“In connection with this the writer hears some one say,
‘even though you do remove the growth scientifically and
without pain, severe pain will follow in an attempt to walk.’
“Of course, comfort depends in many instances on the
dressing. The writer is not a great believer in heavy shielding
and the method of dressing he employs is as follows:
take a pledget of cotton which, when rolled, is about as large
as the heloma just removed; place thereon a small amount
of sedative in ointment form; place this in the cavity left
by the removal of the growth, then cover all with a goodly
sized piece of adhesive plaster. Instruct the patient to
[Pg 166]wear this for twenty-four hours, when he may remove the
plaster. By this dressing the tissues that had been held up
by the large heloma, are still held up by the rolled pledget of
cotton, at the same time the cotton gradually flattens down
with the patient’s weight. Thus the tissues are allowed to
resume their normal position slowly and easily.
“When the adhesive plaster is removed, the cotton
dressing comes with it. The tissues adjust themselves in
from twelve to twenty hours and thus an equilibrium is painlessly
established.
“Several years ago the writer chanced on to this
method of dressing and since then he has used it and found
it to be very efficacious in a large majority of cases; he
has termed it the ‘filling dressing.’
“In operations on heloma molle the same surgical procedure
is employed. It matters not whether the growth be
on the side of the toe, or deep down between the toes on the
web. The sharp, fine-pointed, narrow blade enables one to
operate in a closely contracted space, and when used with
short little cuts the blade reaches down, around and under
the growth, thus loosening it completely and leaving its
usually deep seat, clear and free from any parts which
might remain, if chiseling or gouging were employed.”
(The authors of this work all operate with the knife
or scalpel and have found that form of instrument very satisfactory.
The beginner is advised to study and learn both
methods so that he may be able to use both at any time. The
fact that there are two methods does not mean that one is
better than the other. There are many successful practitioners
of both classes.)
Some persons have a great amount of dorsi-flexion of
the toes, due to hammer toe or hallux flexus, and they usually
develop an heloma on the distal end of the toe, under
the nail. This is treated by cutting away the nail over the
growth, and when the heloma is exposed to view it is treated
in the same way as other helomata dura.
The subsequent dressings for helomata depend upon
[Pg 167]the state of the tissues beneath. Care should be exercised
in operating so as not to cut too close to the normal skin,
otherwise the parts become extremely sensitive.
The epidermis is a storehouse for bacteria, and when
an heloma is removed, there is always a possibility that
some of these bacteria may enter the body through some
slight and invisible abrasion which does not necessarily
bleed. It is, therefore, necessary to take precautions against
this danger, and this is best done by painting all surfaces
operated upon with a 4% solution of tincture of iodine (this
may be made by diluting the official tincture with an equal
amount of grain alcohol). This should be followed by
painting these same surfaces with icthyolated collodion or
nafalan collodion.
If the toe is inflamed it is treated with an agent that
has the power to reduce inflammation. In severe inflammations,
a wet dressing of Burow’s solution may be used
to good advantage. The principal ingredient of this solution
is aluminum acetate, which is astringent in its action,
and a wet dressing applied for twenty-four hours will usually
reduce the condition. In milder cases of inflammation,
ointments of ichthyol, 10 or 15%, may be applied. This
means of medication is very desirable whenever the application
of a shield is indicated, because the aperture of the
shield is a suitable place for ointment dressings.
When an heloma is found to be infected, the growth
should be removed and the pus present evacuated. This
should be followed by the application of hydrogen peroxide
and the parts should then be irrigated with bichloride of
mercury solution (¹⁄₄₀₀₀). The wound may now be treated
with a wet dressing of Burow’s solution or, in severe cases
in which there is an indication of the presence of cellulitis,
bichloride of mercury solution (¹⁄₅₀₀₀) for twenty-four to
forty-eight hours, should be similarly applied.
Subsequent dressings to stimulate granulation and promote
healing may be applied, balsam of Peru or silver nitrate
ointment or colloidal iodine being very efficacious.
[Pg 168]
The latest medication for infected areas, either great or
small, and one of the many discoveries in surgical treatment
since the beginning of the present war, is the Dakin
solution. The worth of the application of this solution is
based upon the helpful influence of free chlorine in small
quantities, to tissues that have been mutilated either by
injury or infection.
Chlorazene tablets,
purchasable in all
drug stores, contain
the elements desired
for this treatment.
Liquid chlorine ampules
(J & J) also
make an accurate Dakin
solution.
INFECTED HELOMA
If, upon examination,
an infection
shows that the deeper
tissues, such as the
periosteum or the
bone, are involved,
the patient should be
sent to the surgeon,
whose function it is
to treat such cases,
who will make incisions
into the soft
tissues so as to establish
free drainage.
The wound thus produced is packed with sterile gauze, and
often with the aid of wet dressings, and nothing more, the
wound is allowed to drain and heal.
The protection of the parts after an heloma has been
removed, so as to insure comfort to the patient, is an all important
part of the treatment of this ailment and a special
chapter has been devoted to this feature of chiropody practice.
[Pg 169](See Chapter Shields and Shielding.) There are certain
types of helomata dura that are never relieved of pain,
even after operation, unless a well-fitted shield has been
applied.
HELOMA MOLLE
Definition. Heloma molle is a soft, white, macerated
growth found between the toes, principally in the web of
the fourth interosseous space and on the lateral sides of the
interphalangeal joints of the toes.
Symptoms. The pain accompanying heloma molle
varies with the degree of pressure brought to bear upon
the toes. Where the heloma is situated in the web of the
fourth and fifth toes, there is a sensation as if there were
some foreign body, such as a pebble, between the toes, and
as the growth develops the pain becomes gradually worse.
The pain of an heloma molle, in other parts, is similar to
the pain of heloma durum, and usually ceases when the foot
is not encased in a shoe.
Upon examination, an heloma molle presents a white
soft mass, having the consistency of rubber. There is no
sharp line of demarcation between the lesion and the healthy
skin. This is due to the blanching of all the tissues that
come in contact with the excretions. In some instances there
is a yellow ridge surrounding the neoplasm. The growth
is superficial, due to its anatomic position. There is very
little soft tissue between the epidermis and the lateral sides
of the extremities of the phalanges, and therefore there is
no possibility of the growth becoming deep-seated, as in
heloma durum. The radix, or nucleus, when present, is of
a dirty white color.
Helomata mollia found in the web of the fourth and
fifth toes, have well defined nuclei which penetrate into
the interosseous space between the metatarsal bones.
These are easily distinguished since, as the surrounding
callous is removed, they appear as a dirty white spot in an
area of healthy pink skin.
[Pg 170]
Etiology. Helomata mollia are caused by shoes, the
same as other types of helomata, but in this case the footgear
acts as a secondary cause. Normally the phalanges
are placed so that the base of one bone is opposite the head
of another. When lateral pressure is brought to bear upon
the toes, these bones press upon each other and thus produce
an overgrowth of skin cells.
The sweat glands continue to functionate, but the parts
being pressed together, do not allow the perspiration to
evaporate; hence, there is an accumulation of moisture
which acts upon the skin, producing a soft, white, macerated
mass, with a rubber-like texture.
In the case of helomata mollia found in the web of the
fourth and fifth toes, there is an outward rotation of the
head of the fourth metatarsal bone, due to the lateral pressure
on this region, causing the bone to drop and rotate
outward; this in turn presses upon the base of the fifth
proximal phalanx.
Pathology. The pathology of heloma molle is identical
with that of heloma durum, except that the nucleus is rarely
deep-seated. The epidermis composing heloma molle has no
distinct cell formation, because of the macerated condition
of the mass, but occasionally the nucleus of such a lesion,
found in the web of the fourth and fifth toes, shows some
of the original cell formation. Inflammation, terminating
in suppuration, is very often encountered in this condition.
Because of uncleanliness of the parts, bacteria thrive in this
locality and the acidity of the moisture very often produces
a fissure or abrasion in the tissues which may lead to infection
and subsequent suppuration.
Diagnosis. The typical heloma molle is a mass of epidermic
cells rarely larger than half the size of a dime.
The color is white, with a dark grey centre, denoting the
radix.
Very often an ordinary exfoliation of the epidermis
between the toes may take on the appearance of an heloma
molle, but careful examination will show that there is no
[Pg 171]overgrowth of epidermis. This exfoliation is easily loosened
with a pair of forceps.
Fissured toe webs, accompanied by exudation and exfoliation
of skin, may be mistaken for heloma molle, and
treatment inaugurated for the latter condition will produce
bad results, particularly if chemicals are used.
There need be no
doubt about making a
positive diagnosis if
the color and texture of
the growth be borne in
mind. The finger passed
over the affected surface
will give the sensation
of increased tissue.
HELOMA MOLLE
Prognosis. The possibilities
of the ultimate
disappearance of helomata
mollia is good. If
the proper shoes are
worn and the proper
treatment be installed,
the growths will gradually
become smaller and
will finally disappear.
The helomata that appear
between the toes
on the interphalangeal
joints are most easily
cured, by simply keeping
the adjacent sides of the toes separated. Those that
appear on the outer lateral side of the great toe do not
respond to treatment as readily as the other types, for
there is more soft tissue over this joint and usually the great
toe is in a fixed position and does not easily straighten.
Helomata mollia that appear in the web of the fourth
and fifth toes can also be permanently cured, but it is necessary
[Pg 172]to raise the head of the offending metatarsal bone, as
well as to separate the toes.
Bearing in mind the etiology of heloma molle, and installing
treatment which will correct or remove these
causes, time and conscientious treatment will ordinarily insure
a favorable outcome.
Treatment. Treatment of helomata mollia is divided
into two classes: the non-radical surgical and the therapeutic.
The latter method is the most popular, as it is very often
impossible to use the knife. The texture of the skin, and the
anatomic position of the growth often make it impossible
to use an instrument with a cutting edge with a view to obtaining
good results.
The non-radical surgical method consists of removing
the corn in much the same way that an heloma durum is
removed. The long cutting edges of knives and chisels are
not well adapted for work between the toes, and for this
purpose the “golf stick” and the “soft corn spoon” have
been devised and are used extensively. The “golf stick”
is an instrument which, as its name indicates, resembles the
stick used by the golfer. Its cutting edge is almost at right
angles to the handle and is about three-eighths of an inch
long. This makes a very desirable instrument for removing
helomata mollia on the lateral sides of the interphalangeal
joints. The end of the instrument is rounded so as
to allow for the removal of nuclei, if present. The cutting
edge of the “soft corn spoon” extends almost around the
entire instrument, and admits of a circular movement such
as is employed in dissecting helomata dura. This instrument
is used for removing soft corns that appear in the
web of the toes, and is very efficient, inasmuch as by its use
the operator is enabled to remove the growth without cutting
into the tissues, as is often done with a knife or a chisel
having a long straight edge.
The therapeutic method of treating heloma molle depends
upon the caustic action of several drugs, among which
may be mentioned salicylic acid, trichloracetic acid and
[Pg 173]silver nitrate. The two latter are used only occasionally, as
they are powerful caustics, and unless applied with great
caution they may produce harmful results.
Salicylic acid finds great favor among practitioners of
podiatry, and the usual technic is as follows: after asepsis
has been practised and the growth cannot be removed by
the use of the knife, an ointment of salicylic acid, 15%, is
applied over the growth, care being taken that the medication
does not come in contact with the surrounding normal
tissues. This is covered with a protective cocoon dressing,
or the ointment may be applied into the aperture of the
shield, if one is used. The dressing is allowed to remain in
contact with the part for from four to seven days, depending
upon the thickness of the skin. When the dressing is
removed, the entire mass will be found, as a rule, to be
loosened from the tissues beneath. If all of the growth is
not thus loosed, the treatment is repeated and the patient is
instructed to return in the prescribed length of time.
Shielding plays an important part in the treatment of
heloma molle. For the type that forms on the lateral sides
of the interphalangeal joints, a shield of the oval type with
the aperture over the affected part, is most efficient, while
for those that appear in the web of the toes, an oval shield
with a semi-circular opening on the proximal end, which sets
between the toes and protects the growth, is most desirable.
In connection with a shield to protect the growth and separate
the toes, it is necessary to raise the head of the affected
metatarsal bone, which is the cause of this type of heloma
molle. For this purpose, Alfred Ahrens, of New York City,
has devised a dressing which he terms the “duck shield,”
because of its resemblance to that animal. This shield
has a dual function. It separates the toes and then passes
down to the plantar surface of the foot over the metatarsal
bone, and acts as a pad to raise the bone. The continuous
application of this device to helomata mollia of this variety
will produce good results.
[Pg 174]
HELOMA VASCULARE
Definition. Heloma vasculare, or vascular corn, is an
overgrowth of the epidermis in which enlarged and elongated
blood vessels are found.
Symptoms. The growths usually appear on the plantar
surface of the foot, but occasionally they may develop in
old callouses and helomata situated on the dorsal surface
of the fifth toe. Pain is more severe than in other forms of
helomata, the patient complaining of a burning sensation
when not in a standing position. This form of growth is
similar in appearance to heloma durum, having in addition
small dark red spots scattered throughout it, which
bleed upon being cut. These spots are not blood clots, such
as are found in helomata dura as the result of injury, but
are distinct blood vessels. The composition of the tissues
is very dense, particularly when the growth is situated over
the head of a bone, as is ordinarily the case when it appears
on the plantar surface. The color of the entire mass
is somewhat darker than in heloma durum, being grayish,
or sometimes brownish, in appearance.
Etiology. As previously stated, helomata of all types
are due to intermittent friction and pressure. The blood
vessels that are found in this particular form are forced
into the epidermis owing to lateral pressure of the shoes,
or to the pinching of tight stockings. Why the blood vessels
should be forced up into the epidermis is most peculiar, but
helomata vasculare appear where the normal papillæ are
longest, and this increased length of the vessels tends to
force them up into the dead skin. Athletes, particularly
runners and jumpers, are most commonly afflicted.
Pathology. Heloma vasculare consists of an overgrowth
of epidermic cells in which are found the elongated
vessels. There is an increase in epithelial tissue, but there
is no increase in the quantity of the connective tissue and
blood vessels, as in verruca. The blood vessels leave the
papillary layer of the derma and enter directly into the
epidermis, without any elevation of the surrounding connective
[Pg 175]tissue. On some occasions a nerve ending is found
embedded in the callous mass. This adds considerably to
the pain, but is not the true neuro-fibrous corn described
under heloma durum, which has no accompanying blood
vessels. The area surrounding an heloma vasculare is usually
inflamed, but the inflammation rarely terminates in suppuration.
Diagnosis. The true heloma vasculare may be easily
distinguished from verruca when the two conditions appear
on the dorsal surface or any surface not subjected to extreme
pressure, in that the latter is an overgrowth of all
the layers of the skin, including the derma, and has a characteristic
cauliflower appearance. However, when verrucæ
appear on the plantar surface, they lose their cauliflower
appearance and become flattened; they then resemble heloma
vasculare, except that they are somewhat darker.
The blood vessels in heloma vasculare are not so numerous
as in verruca, but this diagnostic point may not
always manifest itself to the naked eye. A differential diagnosis
between these two conditions is of no great importance,
as the treatment is practically identical.
Heloma vasculare may be readily distinguished from
heloma durum by the small red spots found therein which
bleed when cut. Very often an heloma durum has a dark
red spot at the base of the mass, due to the rupture of a
small vessel and consequent clotting of the blood. This
dark red spot does not bleed when the knife is passed
through it, denoting the absence of blood vessels.
Prognosis. Heloma vasculare will always respond
when the treatment is thorough. There may be a recurrence
of heloma durum over the spot where the original growth
was located, but the vascular condition, when once eradicated,
should not return.
Treatment. The treatment of heloma vasculare may be
divided into three classes, viz.: surgical, medicinal and mechanical.
The technic of the surgical method is as follows: the
[Pg 176]part is cleansed with tincture of green soap, followed by
the application of tincture of iodine, 4%. The instruments
having been sterilized, the part is anesthetized by the hypodermic
method and a semi-elliptic incision is made a little
to the outside of one-half the growth. The flap thus produced
is seized with an artery forceps. The forceps are
then raised and the rest of the growth is dissected out with
a sharp knife or with a heavy pointed scissors. When the
entire growth has thus been eradicated, a few layers of
gauze should be placed over the part to produce pressure.
A bandage should be applied over all to hold the dressing in
place. This may be removed in three or four days, provided
no inflammation is present, and the subsequent dressing
should contain balsam of Peru or some other stimulant.
The medicinal or chemical treatment of heloma vasculare
consists of the gradual destruction of the growth by
means of chemicals, chief among which are nitric acid, potassium
hydroxide and salicylic acid. If nitric acid is employed,
the callous is removed so as to produce a slight
oozing of blood, and a drop of the acid is allowed to fall
in the centre of the mass. This is allowed to remain in
contact with the part for two days, when the eschar produced
is removed, and the acid is again applied. This
treatment is continued as long as necessary to completely
destroy the growth; when a slight exudation of pus is
noticed, the application of the acid should cease. The subsequent
ulcer thus produced is treated in the same manner
as any other ulcer (see chapter Ulcers).
The salicylic acid method of treating heloma vasculare
varies greatly depending upon the strength of
the acid employed. If a weaker percentage is used,
the treatment is practically the same as that with
nitric acid. Several applications are necessary to
completely remove the entire excrescence. The weaker
solutions of this drug are the 10 to 15% ointments.
The stronger ointments contain from 50 to 60% of the acid.
The treatment with the 60% salicylic acid is preceded by
[Pg 177]cleansing the parts and removing the superfluous callous.
The acid is then applied and the part protected. The dressing
is allowed to remain in contact with the part for from
ten days to two weeks, and when removed, the entire mass
may be easily scooped out. When the stronger acid is used,
it is often necessary to warn the patient that if there should
be any throbbing pain experienced, he must return for
treatment at once. This pain is due to the rapid action of
the drug, and to a mechanical inflammation which ensues.
Examination will usually reveal a newly formed ulcer,
which must be cleansed and treated in the usual manner.
The salicylic ointment method is finding great favor, particularly
on account of the few treatments necessary. Those
inclined to nervousness and imaginary fears, regarding
chiropodical or any other operations, are also usually highly
pleased with this non-surgical method of treatment because
the use of the knife is avoided and cure is not long delayed.
In treating these cases medically, it is well to remember
that the chemicals employed have a destructive action on
the healthy tissue beneath the heloma as well as upon the
heloma itself, and caution should be exercised in applying
them. The case should be carefully watched and at no
time should the operator allow the patient to remain away
from the office for a greater length of time than above specified.
It is also well to remember to warn the patient of
the dull throbbing so characteristic of inflammation,
which gradually increases as the pains become worse. These
pains are due to a chemic inflammation produced by the
action of the drug upon the normal tissue beneath the
growth, and are always an indication to discontinue treatment,
remove what is left of the destroyed tissue, and direct
treatment to the healing of the parts.
The mechanical treatment of heloma vasculare consists
of the removal of the growth by means of electricity. The
fulguration spark and electrolysis are the two methods
employed.
The fulguration spark is a concentrated violet ray, or
[Pg 178]high frequency current. The current is concentrated by
passing it from the coil through a narrow glass electrode, at
the far end of which is inserted a small piece of platinum
or copper wire. As the current passes through the tube and
the charged wire is brought in apposition to the excrescence,
instead of the usual blue spark that is produced by the high
frequency current in an ordinary vacuum electrode, there
is a yellow spark produced which is quite painful to the
body tissues. This spark has a caustic action, and after
penetrating the superficial layers it enters into the deeper
structures and there causes a destruction of the tissues.
Two, or at the most three, applications of this current,
each of thirty seconds duration, will suffice for helomata
vasculare which are situated on the dorsum of the foot. On
the plantar surface, however, the tissues are more dense
and many more treatments are required. It is on account
of this density of the tissues that fulguration or any other
form of electricity for the treatment of plantar growths is
inadvisable.
Electrolysis consists of inserting a needle or other
sharply pointed instrument to which the negative
pole of a galvanic cell has been attached, beneath and
around the growth. The positive pole is attached to
a spot near where the condition is found, usually the
calf of the leg. As the current is passing through the
foot, the water in the tissues undergoes electrolysis, and
after a time, as the hydrogen goes to the negative pole,
bubbles of this gas are noticed around the free surface of
the needles. This is an evidence that the decomposition has
gone on sufficiently and the needle may be withdrawn. If
the growth is a large one, the needle should be re-inserted
at right angles to the original insertion, and the process repeated.
If this is done properly, after two or three days,
the entire mass will separate from the surrounding tissues.
The greatest care must be observed in practising asepsis,
as the electrolysis method is not an antiseptic one. The
needle must be thoroughly boiled, and the part cleansed in
[Pg 179]the same manner as if a surgical operation were to be performed.
This method, as well as the previous one, is not
practical for helomata vasculare that appear on the plantar
surface of the foot.
The carbon dioxide pencil may also be used in the
treatment of this condition. This method, however, is not
advised, as the parts become frozen from the contact and
the pain of reaction is severe.
As previously stated, the treatment of heloma vasculare
is almost identical with that of verruca and the reader
is advised to consult the chapter on verruca for further
knowledge along this line of treatment.
HELOMA MILIARE
Definition. Heloma miliare, or heloma disseminatum,
or seed corn, is a small excrescence usually found in large
numbers on the plantar surface of the foot, around the heel,
or over the dorsal and inner lateral surface of the great toe
joint. The growth is about the size of a millet seed.
Symptoms. This form of heloma does not produce the
extreme pains caused by the other types of this growth, and
only when they develop in great numbers do they become
annoying. The patient then complains of an uncomfortable
feeling, as if there were a foreign body in the shoe or
stocking. Upon examination, several small helomata are
seen, which appear to be all nuclei.
Etiology. Wrinkles produced by wearing loose stockings
are a factor in producing helomata miliare; nails
which protrude from the plantar surface of the shoe are
also a fruitful cause of this condition. The wrinkling of the
stockings produces an uneven surface over the length of
the wrinkle and the weave of the material, usually wool,
causes these helomata to develop. The nails found in shoes
are usually caused by imperfect repairing. They do not
extend out more than just the smallest fraction; in fact they
protrude just enough to allow the patient to go along for
[Pg 180]several days or weeks without noticing that something is
wrong.
Pathology. Hypertrophy of the epidermis takes place
at the nucleus only, but the area immediately surrounding
the heloma miliare feels hard and congested to the touch.
Hypertrophy of the papillæ occurs, but only a small number
are involved. There is no disturbance in the skin between
the individual growths, each of the neoplasms having a distinct
etiologic factor in its production.
Diagnosis. The heloma miliare is characteristic and
cannot be mistaken for any other condition. As stated, the
growth is rarely larger than a millet seed and appears to
be all nucleus. There is an area of normal skin between
these helomata, when they occur in numbers.
Prognosis. Careful operating and intelligent after-care
will produce a cure in from four to five treatments. There
are cases on record that have entirely disappeared after
one treatment, but these are rare. The footgear, both shoes
and stockings, should be examined and if found faulty
should be corrected. This aids in a rapid cure and will, as
well, prove a preventive.
Treatment. The removal of these helomata may be
accomplished with the knife, but the ordinary scalpel is useless.
It is necessary to have a very finely pointed small
knife, and the procedure is the same as that followed in the
treatment of the nucleus of heloma durum, except that more
care must be practised, because of the smallness of the
growth. The helomata miliare occur in groups containing
as many as twenty or even thirty distinct minute growths,
and it is necessary to take as much care with each one of
them as with the first one removed. This is trying both to
the patient and to the operator, but as it is essential to the
successful cure to have the growths removed individually
and carefully, patience is necessary. The after dressings
may consist of ichthyol ointment, 15%, applied on a piece of
lint, or balsam of Peru painted on after the helomata have
been removed, and covered by a lint or cocoon dressing.
[Pg 181]Some practitioners apply tincture of iodine to the part
without further dressing.
The therapeutic method of treatment consists of applying
salicylic acid plaster, cut so as to fit over the affected
area, and allowing this to remain in contact with the part
for several days. This softens the tissues, so that the small
growths may be easily removed, but care must be taken, as
the acid will destroy the healthy tissue between the helomata
unless each growth is isolated in treatment. The disintegrating
process must not be allowed to continue to the extent
that it does in the treatment of heloma molle or in the
other conditions in which salicylic acid is employed. It is
then often necessary to use the knife to remove the remaining
tissue.
Recurrence is the rule in helomata miliare, but after
persistent treatment the condition usually disappears. It
must be borne in mind, however, that the footgear of the
patient must be carefully examined and necessary corrections
made. This, in itself, without the thorough treatment
prescribed above, will often result in a cure of the most
annoying cases of heloma miliare.
[Pg 182]
CHAPTER XI
CALLOSITAS
Derivation. The word callositas is derived from the
Latin “callus,” meaning horn.
Definition. Callositas, or callouses, are a thickening of
the epidermis, usually found on the plantar surface of the
foot. They also occur on the dorsum of the toes, and are
found on the hands of mechanics who continuously use hand
tools involving pressure on the parts. Coachmen develop
callouses between their fingers on account of the manner in
which they hold the reins while driving. In rare instances,
women have been known to have callouses on their hips, due
to the pressure of the steel in their corsets, and cavalry men
who sit in the saddle for long periods develop callous on the
parts exposed to irritation.
Symptoms. Callosities are composed of variously sized
areas of yellowish or grayish, horny excrescences of epidermic
cells. They are hard, dry and horn-like, thicker in
the centre of the growth and gradually becoming thinner at
the periphery. There is no sharp line of demarcation between
a callous and the surrounding skin, such as is found
in helomata, but the thickened cuticle gradually blends with
the surrounding skin.
Etiology. A callosity is the result of an irritation of
some form and is nature’s way of protecting the delicate
structures beneath the skin from the direct pressure or friction
to the parts. The outer layers of the skin become thickened
and act as a buffer, which absorbs shock and prevents
inflammation and tissue destruction. When found on the
soles of the feet, callouses are due to standing or walking
[Pg 183]in improper footgear. The ball of the great toe is a very
common site for callosities; also the region over the heads
of the metatarsal bones, due to high heels which force one
to walk directly on these parts without equal weight distribution,
is subject to them.
Callosities may occur as the result of chronic skin lesions
such as eczema, psoriasis, lichen planus and ichthyosis
and after the prolonged use of arsenic.
Callosities occurring on the dorsum of the toes are
caused by the pressure of the skin against the top of the
shoe. The parts beneath the callous at this point usually
show the presence of bursitis, which causes a swelling and
subsequent pressure on the skin.
Pathology. The changes that take place in the formation
of callosities are the same as those which arise in
heloma, except that the deeper layers of the epidermis and
the true skin are not affected unless accidentally infected
or injured.
There is no inflammation present except in cases of
infection or injury. The upper layers of the epidermis are
the only ones involved, and the condition is really a physiologic
rather than a pathologic one. It is more of a protection
than a true hypertrophy. The overgrowth may continue
to a greater extent, and then even helomata may develop.
Diagnosis. The callosity is yellow to grey in color and
is composed of a horn-like mass of epidermic cells. It is
easily distinguished from an heloma in that there is no
nucleus present, and the part is not severely painful on
pressure. It may be mistaken for some of the chronic skin
lesions, previously mentioned, but the skin eruption presents
a scale or crust which readily peels off, en masse,
leaving the bare rete Malpighii exposed. The callosity
comes off in layers and, as the deeper structures are reached,
a healthy pink color is noticed.
Prognosis. A change in occupation or a change of
footgear often results in the disappearance of this condition.
[Pg 184]Unless the direct cause is removed there will be a recurrence,
which is an indication that the part again needs protection
and care. Persons who have been accustomed to standing
or walking for protracted periods of time, such as policemen,
floor walkers, etc., soon lose the callouses they
developed, after they change their occupation.
Treatment. If the growth becomes thick enough to
cause discomfort, it may be easily removed, by softening it
and then scraping or paring it. The foot may be soaked in
an alkaline foot bath composed of one-half ounce of
sodium bicarbonate to two quarts of hot water, or painting
the part with a dilute solution of potassium hydroxide
(caustic potash), 5%, several applications every few minutes,
the softened area being scraped away after each application.
Salicylic acid plaster, 25%, placed over the affected
area and allowed to remain in contact for forty-eight hours,
will usually loosen the redundant mass. If the callosity
appears over the head of the first or fourth metatarsal bone,
mechanical adjustment should be made, whereby the pressure
in walking is thrown upon the entire surface of the
anterior part of the foot. Pads of felt or buckskin, properly
skived and fitted, will accomplish this result.
Care must be taken that too much of the induration is
not removed when treating this condition. As previously
stated, the calloused mass acts as a protective for the parts
beneath and is nature’s way of preventing serious trouble,
and if too much is removed, pain will be experienced when
the foot is used in walking. If this should occur, the part
should be painted with tincture of iodine, 4%, and covered
with moleskin or adhesive plaster. If an abrasion has been
made, it is important to dress the part with an antiseptic,
followed by a stimulating agent, all of this to be covered
with a cocoon dressing or a lint shield.
Where callosities are caused by a displacement of the
anterior metatarsal arch, or by any of its bony constituents,
the bony lesion must be corrected before the callosities
will respond to treatment.
[Pg 185]
CHAPTER XII
VERRUCA
Verruca, sometimes called papilloma, is an innocent or
benign tumor, containing many blood vessels, and is an overgrowth
of all the layers of the skin including the derma. It
is usually found on the hands and feet, but other parts of
the body may become affected, particularly the face.
Verruca, like other innocent or benign tumors, does
not penetrate into the surrounding tissues, and is encapsulated.
Those found on the foot are divided into two classes,
(1) the verruca arida, or dry wart, and (2) the verruca humida,
or moist wart.
The common wart found on the hands and fingers, is a
form of verruca arida and is called verruca vulgaris. There
are many other names used to designate verruca, but these
are only indicative of the location, shape or consistency of
the growth, which, as stated, is either of the arida or humida
variety, and additional nomenclature tends to confuse the
student. Among these are the verruca plantaris, verruca
calcis, verruca metatarsalis, verruca lobosa, verruca fibrosa,
verruca digita, etc.
Synonyms. Papilloma, Wart. Fr. verrue.
Derivation. Verruca is derived from the Latin, meaning
wart.
Etiology. There is no general agreement among pathologists
as to the cause of verruca. The older theory held
that verruca was due to want of normal power within the
integument. Some claim it to be due to a microorganism,
while others assert that it is caused by irritation or injury.
The latter reason seems to be the most reasonable one, since
[Pg 186]the patients who have been questioned thoroughly, all seem
to give a history of trauma or of some chronic irritation.
Some verrucæ seem to occur spontaneously and it becomes
difficult to draw a line between those that grow in this
manner and those that develop from an injury or from a
chronic irritation. Predisposition seems to play an important
part in the etiology of verruca, but irritation is
surely a factor in most if not in all cases. This predisposition
may lie in the peculiar structure of the tissues, which
is of course, difficult to determine.
VERRUCA HUMIDA OR CALCIS
The fall and early winter, seem to be the time at which
most cases appear, and their history seems to indicate that
either there has been an injury or an irritation, such for
instance as is produced in walking barefooted on the
beaches, which occurred during the previous summer.
Those who walk distances over rough roads in the mountains,
[Pg 187]or who wear thin-soled shoes and sneakers or hob-nail
shoes, or who have stepped on a sharp stone, are most
likely to develop verrucæ.
Verruca is found on the hands of young persons, and
on the feet of adults, but only occasionally is this growth
seen on the feet of children. This is undoubtedly due to the
fact that young people use the hands in playing to a great
extent, and in that way are subjected to irritation, whereas
the shoes of adults, and the rigidity of the tissues in older
persons cause the development of verrucæ on the feet.
Observation has shown that those of athletic bent, such
as golfers, tennis players, base ball players, etc., are affected
to a greater extent than those who follow a sedentary occupation.
Pathology. Verrucæ of all types are overgrowths of
the derma covered with a somewhat hypertrophied epidermis,
which is more granular and rougher than the normal
skin. The wart may be only a simple, smooth, hemi-spherical
elevation, or it may have a rough cauliflower-like appearance,
sessile or pedunculated. These latter may be dry or
moist and may be elevated above the level of the skin or
flattened to the level of the normal surrounding tissue. The
size varies from minute points to growths as large as a nut.
They are somewhat pigmented and bleed easily.
Verruca may occur singly, as it usually does on the
foot, or it may occur in groups, and there may be several
such groups in widely scattered parts of the body. The
most common sites are the hands, feet, neck, back and face.
Warts also occur on the mucous membrane, particularly in
the bladder, larynx, nasal chamber and the gastro-intestinal
tract, in which locations they are commonly termed papilloma.
The structural essentials of verrucæ are the centre or
ground work containing blood vessels and an epithelial
covering. In the skin, the growth resembles the normal
papillæ, all of these latter however, being greatly enlarged.
There is hypertrophy of all the connective tissue cells, and
[Pg 188]in the growths that have a cauliflower appearance, a vertical
section shows a branching arrangement. Each of the
branches has a connective tissue frame work with an epithelial
covering. The epithelium is of the striated-squamous
type and shows a decided tendency to hornification. Distinct
concentric whorls of horny epithelium, such as are seen
in epithelioma of the skin, may be found in verruca. The
amount of connective tissue ground work varies, in some
cases being excessive, while in others the growth appears to
consist entirely of proliferated epithelium. In these latter
cases the resemblance to epithelioma is rather marked, but
a distinction can be made by observing that the tumor grows
outward while the malignant tumor grows into the deeper
structures and there is always some connective tissue stroma
present. This is important for the podiatrist to remember
as it may often be necessary to distinguish between the
benign and the malignant tumors of this type.
VARIETIES OF VERRUCA
Verrucæ of the hands and feet vary to a greater or
lesser extent depending upon the location of the lesion.
The shape of the growth differs with the amount of pressure
brought to bear upon it, those of the hands being better
defined than those of the feet.
The Verruca Vulgaris, or common wart of the hand, is
found on the palmar and dorsal surfaces, more usually in
children than in adults. They often appear in large numbers,
and very often the forearms and elbows are affected. The
lesion is an elevated, rounded, conical hypertrophy having
an uneven top and resembling a cauliflower. The growth
develops slowly, and in its beginning has the same color as
the surrounding skin. Later in its formation it becomes
darker and takes on a cracked, rough cauliflower-like shape.
There is no pain manifested, but the growth bleeds easily
upon being injured, due to its great vascularity.
The Verruca Arida, or dry wart of the foot, usually
[Pg 189]appears upon the plantar surface, over the metatarsals and
on the ends of the toes. It is in reality a modification of the
verruca vulgaris, which has been subjected to pressure.
There is a distinct callous formation covering and surrounding
the growth, and the entire mass has a flattened shape.
At the ends of the toes on the dorsal surfaces and along
the nail grooves, verrucæ which have a slight elevation
often appear and are of the arida type.
The Verruca Humida, or moist wart, is found on the
foot, usually on the heel and between the toes. It has a
spongy, soft appearance, with a sharp line of demarcation
separating it from the surrounding tissues; the centre of
the growth is white and has a crater-like shape. It is sometimes
covered by a layer of callous, which is spongy and
blanched, much the same as that of an heloma molle. The
sudoriferous excretions in those suffering with hyperidrosis
or bromidrosis are the cause of the color and texture of
these lesions.
Diagnosis. Verruca is an overgrowth of all the layers
of the skin, and when it appears on places where it is not
subjected to pressure of any great magnitude, its diagnosis
is a simple matter. When, however, it appears on the foot,
its true character is lost, and it may be confused with other
lesions, notably epithelioma, syphilitic lesions and heloma
vasculare.
The malignant epithelioma is occasionally seen as a
warty growth, but it generally has adherent scabs, ulcerates
superficially, and has a disagreeable odor. The surrounding
tissues are infiltrated and severe and persistent pain is
common. Innocent tumors of this type, after a long period,
may become malignant; increase in the size of the growth,
implication of neighboring glands, infiltration of adjacent
tissues, plus the other symptoms of epithelioma, should be
sufficient to arouse suspicion as they are indicative of the
more serious developments.
Some lesions of syphilis taking on a papillary character,
may be mistaken for verruca, but other indications of a
[Pg 190]specific condition are usually present so that when confusion
as to diagnosis arises, the lesion may be readily distinguished
if it be a luetic one. The smaller tertiary ulcers of
syphilis that appear on the plantar surface of the foot often
have cracked, uneven overgrowths around and on them,
which upon superficial examination may be mistaken for
verruca, but a negative
Wassermann test (see
Miscellaneous Foot Lesions—Syphilis)
will
make it possible for the
practitioner to eliminate
syphilis as a
factor.
Venereal warts occur
on the genitals only
and need not be considered
in this chapter.
Verruca and heloma
vasculare are often
confused, but inasmuch
as the treatment is identical
in both these
lesions, an error in diagnosis
is of no particular
consequence. In
heloma vasculare the
affected papillæ, which
are found in the hornified
skin, are few in
number and are confined to a limited area, whereas in verruca
all the papillæ are affected and the entire growth is
vascular.
EPITHELIOMA
Prognosis. Some verrucæ disappear spontaneously,
but those appearing upon the foot are persistent and painful,
and require regular treatment to effect a cure. The
growth will get well with proper attention and only when it
[Pg 191]changes its nature and becomes malignant, is the prognosis
unfavorable.
Treatment. The treatment of verruca is more varied
than the treatment of any other chiropodical lesion, and the
practitioners using these different methods all seem to favor
the one particular form with which they have had the most
experience and the
best results.
Treatment is generally
effective, the
percentage of failures
being very small,
notwithstanding the
statement of those
who expect immediate
results, and not receiving
them, claim
failure on the part of
the practitioner.
The various
treatments are as follows:
MULTIPLE VERRUCA
Potential Cautery—including
the
following chemicals:
Nitric Acid, Acetic
Acid, Monochloracetic
Acid, Trichloracetic
Acid, Salicylic Acid,
Silver Nitrate, Potassium
Hydroxide, Sodium Hydroxide and Pyrogallic
Acid.
Excision.
Fulguration.
Electrolysis.
Direct Cautery.
Carbon Dioxide Pencil.
[Pg 192]
Potential Cautery. The treatment of verruca by the use
of chemical agents which destroy the tissues to which they
are applied, is unquestionably the most popular method of
treating this lesion and is practised to a great extent by
modern podiatrists. The tissues are destroyed in one of two
ways, depending upon the chemical selected. The acid
caustics destroy the tissues by oxidizing them, and the alkali
caustics destroy the tissues by dehydrating them. Therefore
the kind of tumor with which one has to deal is a factor
in determining which caustic is best suited for rapid and
certain cure. A verruca which is hard and dry will be easily
destroyed by oxidation, whereas a verruca that is soft and
moist will be easiest of removal by dehydration.
The selection of a particular chemical for removing a
certain type of growth, is more or less a matter of individual
choice on the part of the operator, as any one of the recognized
remedies will suffice if the technic of its application
be properly followed. A podiatrist who uses nitric acid for
verruca arida, may just as well use trichloracetic acid and
obtain equally good results.
Inasmuch as there are so many agents which one can
use successfully, the authors have asked several well known
practitioners of podiatry to state their technic in the treatment
of verruca, and later on in this chapter their views
will be found quoted verbatim.
The method of procedure for the treatment of verruca
by the use of acid caustics generally is as follows:
The field of operation is rendered aseptic by means of
a solution of bichloride of mercury (¹⁄₂₀₀₀) or a solution of
alcohol, 60%. A sharp knife or chisel is employed to remove
the callous that usually covers the growth. As soon as
bleeding is observed, which is an indication that some of the
capillaries of the tumor have been cut, a styptic, such as
Monsel’s solution or powdered alum, is applied and readily
controls the hemorrhage. The part is then thoroughly dried
with sterile gauze or cotton, and the caustic selected is
applied to the part. If an acid is used, a single drop is
[Pg 193]usually employed at each treatment. The patient, as a
result, will complain of a burning sensation in the growth
which persists from a few minutes to an hour, depending
upon the amount of the acid absorbed. If the growth is
dense, the absorption is lessened and more frequent treatments
become necessary.
A properly fitted and skived shield of felt is then applied,
with a hole large enough to prevent pressure over
the affected area. No other medicament is required, nor
is it necessary to cover the verruca. The acid forms an
eschar which seals the lesion and prevents bacterial infection.
The second treatment should take place forty-eight
hours after the first, and the same procedure should be
practised, including the asepsis. The treatments are continued
every other day, daily, if possible, until the entire
growth has been destroyed.
Unless great care is exercised, as the destruction of the
growth continues and its size decreases, the acid coming in
contact with the underlying healthy tissues creates pain of a
throbbing character and later on pus is likely to form under
the eschar. Some practitioners believe that both the pain
and the pus are necessary precursors of the healing process,
but neither is essential. They are both the usual concomitants
of the later stages of this treatment merely because,
as stated, it has been impossible to exercise the strict care
desired.
When the growth has been destroyed, the eschar is
entirely removed and if pus is present it is drained. Hydrogen
peroxide is a most efficient agent for this purpose. The
lesion is now treated much the same as any other ulceration,
that is to say, by stimulants, balsam of Peru or ichthyol
being the mediums usually preferred. The balsam
of Peru used for this purpose should be diluted with an
equal quantity of castor oil; the best method of applying
ichthyol is in ointment form (25%) with vaseline as a base.
The treatment of verruca by means of the alkali
caustics is much the same as with the acid caustics, except
[Pg 194]that the cauterization by the latter method may continue so
as to destroy the entire growth at one treatment. This of
course would prove even more painful than if done intermittently,
therefore it is far better to treat the patient at
several different times than to attempt anything quite so
radical. The parts must be protected during the treatment
and the subsequent ulcer invariably produced by this
method, is treated the same as the ulcer frequently resulting
from acid applications and previously described.
Nitric acid is extensively used in this condition in the
pure state. The treatment of the eschar produced varies.
S. Rutherford Levy, of San Francisco, California,
uses the nitric acid pure, and reports very favorable results.
He removes the eschar after each treatment.
Alfred C. Moran, of Pawtucket, R. I., also favors
nitric acid, but advises that the eschar be allowed to remain
on the part until healing takes place or until signs of suppuration
manifest themselves. He punctures the surface of
the growth with a sharp instrument to assist the diffusion
of the acid.
Albert E. Smallwood, a well known and busy practitioner
of podiatry, of Pittsburgh, Pa., reports good results
with the use of trichloracetic acid (Merck) and his modus
operandi follows:
“Trichloracetic acid is a safe caustic and should be used
full strength. A tooth pick is wrapped with a small piece
of cotton and the latter is saturated with the acid. (The
crystals of the acid are permitted to stand exposed to the air
for a few minutes when they will deliquesce.) Apply the
cotton thus prepared directly over the verruca, allowing it
(the cotton) to remain in situ; then cover the growth and the
cotton with a thin felt shield and fasten it with adhesive
plaster. To prevent the acid from coming in contact with
the normal tissues, the latter should be protected with oil
or vaseline. Have the patient return in two days for a second
treatment, and if the pains were only of short duration, the
same procedure is repeated. The white eschar produced is
[Pg 195]removed, care being taken that bleeding is avoided. It is
better to remove only a little of the eschar, as this saves
suffering in the interim of treatments.
“Treatment is continued every other day until the entire
growth is eradicated, which is usually indicated by the
presence of pus. The subsequent treatment is that for
ulcerations in general.”
F. S. Sargent, of Providence, R. I., prefers silver
nitrate to any other of the potential caustics. He uses the
pulverized salt, applied directly to the verruca, protecting
the surrounding tissue with adhesive plaster and using felt
shields during the treatment. When the part has suppurated
he cleanses the wound, dusts with some antiseptic
powder such as aristol, and to stimulate granulations he
applies balsam of Peru, 50%, in castor oil.
One of the best known practitioners on the pacific coast,
Helen C. Sexton, has a very interesting technic for the
destruction of verrucæ, which is as follows:
“Place a small wad of cotton soaked with a 5% solution
of potassium hydroxide over the growth and apply the surface
electrode of the high frequency current for five minutes,
or until it is uncomfortable to the patient. Then dissect
out as much of the dead tissue as possible and if bleeding
should occur, do not attempt to check it for a few minutes.
The hemorrhage is then easily controlled by digital pressure.
A piece of moleskin, about the size of a fifty cent
piece, with a hole in its centre, the exact size of the verruca,
is next applied, and in the aperture a sixty per cent. salicylic
acid ointment is placed. The ointment is covered with
fish skin and the entire dressing protected with a well skived
and properly adjusted felt shield. The patient is instructed
to return in one week unless pains develop, in which case he
should return immediately. The treatment is continued
every week until the growth is destroyed, and after the
skin surface is again normal, the patient is instructed to
wear a protective, such as a piece of moleskin, for at
least one week. If a case does not respond to this treatment
[Pg 196]in a period of three weeks, electrolysis is resorted to.”
James Parker Buntin, of Boston, Mass., calls the
following his “antiquated” treatment, but says he has had
very good results with it and with very little, if any discomfort
to the patient:
“Take a small piece of caustic potash (potassium
hydroxide) and allow it to stand in the open air until it
slacks. Then thicken it to a paste with pulverized gum
arabic, which will prevent it spreading to the surrounding
tissues when applied. Carefully remove the superficial
layers of the verruca and apply the paste and let it remain
for ten minutes. Soak the part in sharp vinegar or sweet
oil, either of which will neutralize the action of the caustic
potash. This treatment is continued every other day until
the entire growth is removed.”
Oscar Klotzbach, of Cleveland, Ohio, is using
methylene blue for the treatment of verruca, applying the
drug (once a week), and protecting the part with sterile
dressings. This is a painless method.
Bertha DeWolfe, of Denver, Colo., is using ethylate
of soda for verruca and reports gratifying results. The
drug is dampened with a drop of absolute alcohol and placed
in the centre of a piece of adhesive plaster, the size of a
twenty-five cent piece, and then applied so that the sodium
ethylate comes in direct contact with the warty growth. The
treatment is repeated daily, at first, and then every other
day, until a cure is affected. The pain is slight, being
limited to one or two days of slight discomfort. If the
ethylate of soda is employed for verrucæ of the dorsum of
the foot or of the fingers, it should be diluted, varying from
15% to a saturated solution. The full strength of the drug
should be used on the plantar surface of the foot only.
Anna Moyde Savage, of Syracuse, N. Y., who has
had experience with many treatments for verruca, has been
using and recommends pyrogallol for this lesion. Her statement
follows:
“Pyrogallol is a white, lustrous, bitter crystalline substance
[Pg 197]soluble in water, alcohol and ether. It is used extensively
in diseases of the skin, and in all the cases of verruca
in which it was used, a 30% ointment in a vaseline base
proved sufficiently strong to remove the growth. Most of
the cases respond to one treatment, and no case has ever
required more than five treatments to effect a cure.
“The treatments are given at intervals of from five to
seven days, and at no time is it necessary for the patients to
remain in bed or refrain from their usual occupations. A
fairly thick pad of felt is applied with an opening large
enough to protect the verruca. In this opening the 30%
ointment of pyrogallic acid is applied, a cotton or gauze
dressing being placed over it, and then the entire dressing is
securely fastened with adhesive plaster. There is no pain
or discomfort during the treatment, and only when the
pyrogallol has destroyed the tumor and penetrates into the
healthy tissues, is a drawing pain noticed. This is mild and
lasts but one day, and when the final dressing is removed,
the verruca is eradicated. The subsequent ulceration may
be treated with any stimulant, after aseptic precautions have
been observed, some iodine preparation for example. The
pad should be worn until the entire lesion is healed. No
case so far treated with this method has shown any signs of
recurrence.”
Salicylic Acid is used to a great extent for the destruction
of verrucæ, and is admirably adapted for this purpose,
inasmuch as it is painless and does not require frequent
changes of dressings. A piece of adhesive plaster is fitted
to the part with a hole cut in it exposing the verruca. A
piece of felt of the required thickness is then applied to the
foot, which acts as a shield. In the holed-out portion of the
felt, a 60% salicylic acid ointment is applied directly over
the verruca. The adhesive plaster first applied prevents the
acid spreading to the surrounding normal structures. The
entire dressing is protected with adhesive plaster and the
patient is instructed to return in a week or ten days. By this
time the therapeutic action of the acid will have manifested
[Pg 198]itself, and a suppurative process will be noted at the base
of the growth. The patient complains of throbbing in the
part and when the dressing is removed, the part cleansed
and a sharp knife inserted into the growth, oozing of pus
will occur. The entire mass can be then removed, whereupon
the abscess cavity should be thoroughly cleaned. This
can be done by means of peroxide of hydrogen. The pyogenic
membrane can be destroyed by the use of pure phenol
followed by alcohol, after which a stimulant, such as balsam
of Peru or ichthyol, should be applied. These latter dressings
should be changed every other day until the wound is
healed. This method is particularly adaptable for verrucæ
around the nails.
Excision. The removal of verruca by surgical means
is a very simple procedure and, if properly done, should
result in an absolute cure in every case in which it is employed.
The part to be operated upon is rendered sterile by
thoroughly cleansing with soap and water, and subsequently
painting it with tincture of iodine. The instruments are
boiled for at least fifteen minutes in water containing a little
sodium carbonate and the hands of the operator are thoroughly
cleaned and dipped in alcohol.
Local anesthesia is induced by the hypodermatic injection
of any approved anesthetic, preferably novocaine, 1%,
and when the tissues around and beneath the verruca are
thoroughly anesthetized, the operator makes a semi-elliptical
incision a little outside of and beneath the growth. The
flap thus produced is grasped with an artery forceps and
raised. This affords room to dissect out the growth with a
scalpel or with a pair of heavy, pointed scissors.
The wound produced by the removal of the verruca
should now be packed with sterile gauze and a bandage applied
to prevent infection. If the gap is a large one it may
be closed by taking one or two sutures (interrupted) and
drawing the edges of the wound together in this manner.
To afford relief from the reaction of the anesthetic,
[Pg 199]and as a precautionary measure against infection, a wet
dressing of bichloride of mercury (¹⁄₅₀₀₀) should be applied
for from twenty-four to forty-eight hours immediately
following the operation. This, however, is unnecessary if
asepsis has been practised throughout the operation. If no
complications arise, the dressing should be left undisturbed
for four or five days, when the bandage can be softened and
removed. (Tearing a dry bandage from a granulating
wound will destroy some of the newly formed granulations).
If sutures have been used, they should now be removed,
and a mild stimulant such as balsam of Peru, 50%, or
ichthyol, 10%, should be applied to stimulate further granulation.
Dressings should be changed every other day until
the area is completely healed, a process requiring from one
to two weeks. With proper shielding, the patient should be
able to walk comfortably after the first dressing has been
removed.
Fulguration. The use of electricity in the treatment of
disease has greatly increased in recent years. This is particularly
true of the high frequency current, examples of
which are the so-called violet ray and the X-ray. This form
of electricity is quite different from the usual form encountered
when using the faradic or galvanic currents, and although
its voltage is expressed in the thousands, it is quite
harmless when one knows just how to use it.
For the purposes of the podiatrist, a small coil generator
with one or two electrodes, will usually suffice. The
fulguration electrode is a glass rod through the centre of
which passes a piece of fine copper or platinum wire, terminating
a little beyond the end of the tube. This free
end of the wire is protected by a small glass cup which fits
over the end of the tube. The tube itself is a vacuum. The
rear of the electrode is set in a brass cup, which fits into the
handle of the apparatus and makes direct contact with the
wire conducting the current from the generator.
For the destruction of verruca the part is cleansed with
alcohol, and the electrode is placed directly over and in close
[Pg 200]contact with the growth. A small amount of current is then
passed through the apparatus, and a yellow spark will be
noticed leaving the free end of the wire and entering the verruca.
If this is painful to the patient, the current must be
reduced. When the entire area has turned white, the current
is turned off. This takes from 20 to 40 seconds, depending
upon the size of the tumor.
The part should be dressed with a well skived shield, to
afford protection, and should then be covered with dry,
sterile gauze. This dressing is left unmolested for a few
days. The growth during this time dries up completely
and when the dressing is removed the growth can easily be
separated. If all of the neoplasm has not been destroyed, another
application of the high frequency current should be
made over the remaining portion. When the entire growth
has been thus removed, the tissues are protected with a
piece of moleskin for one or two weeks.
Rudolph Mertin, of Boston, Mass., has used the high
frequency current extensively in the treatment of verruca
and he says that two or three applications of from twenty to
thirty seconds duration usually suffice to effect an absolute
cure for even a large sized growth of this variety. He advises
that, for nervous patients, the current be reduced and
if necessary the treatment be extended to six or even ten
different applications. This eliminates fright and nervousness.
Electrolysis. The use of the galvanic current in the
treatment of verruca is finding great favor among podiatrists,
and is especially adapted to verruca vulgaris of the
hands. The current may be generated in a few small wet or
dry cells, and by passing it through a rheostat with a milliamperemeter
attached, it can easily be regulated and controlled.
There are many such machines on the market today,
any one of which will answer the purposes of the practitioner.
Ordinary direct lighting current, if properly reduced,
is admirable.
James R. Bennie, of Philadelphia, Pa., who uses
[Pg 201]this method of treating verruca exclusively, has developed
a technic that is fully described in the following:
“Eight years ago I began treating verruca with electricity
and such was the success that invariably followed
the use of this agent, that I quickly abandoned all other
methods of treatment. I use the galvanic current, and the
growth is destroyed by electrolysis. This is the quickest,
the surest and the least painful method of treatment and is
equally successful in treating helomata vasculare and moles.
“Electrolysis is accomplished by the use of the negative
or active pole. Through the action of the negative current,
caustic alkalies are formed. The action of these alkalies,
in conjunction with the current itself, causes the
growths to liquify and disintegrate. Any galvanic current
which will give from two to ten milliamperes during the
treatment, may be used. An essential point to remember is
that the negative pole is the operating pole whenever tissue
is to be liquified and disintegrated. The positive pole contracts
and hardens the tissues.
“The procedure in the treatment of growths by electrolysis
is simple, but the greatest care should be observed
in carrying out all antiseptic precautions. Remove all calloused
tissue on or about the growth. Saturate the positive
pole, which should be a copper plate covered with felt,
with an aqueous solution of common salt, then place the
pole on the skin as near the seat of operation as possible.
The negative pole should be a platinum needle or needles,
as the case may demand. I have used as many as twelve
needles at one time. The needles should be sharp, and
platinum is the best metal for this work.
“With the field of operation properly prepared, transfix
the growth through its base with the platinum needle,
taking care not to penetrate too deeply into the true skin
about the growth. The current is then turned on and
applied in the strength of from one to five milliamperes.
The application is continued until the verruca assumes a
pearly hue. A frothy substance will form in and about the
[Pg 202]needles; this is hydrogen gas mixed with a serous exudate
and is positive evidence that disintegration is completed.
If the growth is exceptionally large and painful, local
anesthesia may be induced by hypodermatic injection.
“The time required for each treatment varies with the
character of the verruca. The more vascular the verruca,
the quicker its disintegration. When the current is turned
off and the needle removed, the part should be antiseptically
dressed, and should be protected with a shield of felt or
buckskin, properly fitted and fastened. At the expiration of
one week the patient is requested to return for further
treatment, when the dressing should be removed and the
eschar cut away. If the verruca is not completely destroyed,
the treatment is repeated.
“The appearance of the part after the verruca has been
completely destroyed is not always the same; in some cases
coagulation occurs; again there may be present a small
quantity of purulent fluid. When the products of the destruction
of the growth are removed, a healthy granulating
ulcer remains, which yields readily to antiseptic treatment.
“When a large number of verruca are present, try to
determine which is the original growth and treat it first.
With the destruction of this lesion, the others will frequently
disappear without further treatment, thus enabling the
podiatrist to accomplish a brilliant result which will greatly
impress the patient. I have frequently observed this singular
result of the galvanic current and believe it to occur
from the fact that the verruca develop within a definite
nerve area, and that the current affects the enervation of
this area and thus brings to completion the cure.”
Direct Cautery. The destruction of verrucæ by means
of heat is practised to a greater or lesser extent by a few
practitioners of podiatry, but on the whole, other methods
which are available are superior to it. Any implement which
can be heated sufficiently hot, so that when applied it will
burn the growth, may be used in this treatment. A small
piece of carbon, pointed at one end, and small enough to be
[Pg 203]easily handled with the thumb forceps, is used by some practitioners.
The pointed end is placed in an alcohol or other
flame until the carbon is glowing. It is then applied directly
to the verruca, and allowed to remain there until the pain
becomes unbearable. One or two seconds should be the limit
of each application. The carbon is again heated, and the
application is repeated.
For the convenience of the practitioner, an electric apparatus
has been devised, which, with the aid of a platinum
electrode, affords an opportunity to generate sufficient heat
for this form of cautery. The platinum electrode is attached
by two wires to the coil, and when the contact is
made the fine metal end soon becomes red hot. The temperature
is easily controlled by a little switch on the side
of the handle of the electrode. The platinum point is
brought in direct contact with the part to be destroyed, and
after several short applications, this is easily accomplished.
This method has several disadvantages, because the
pain during the operation is intense, and the smell of the
burning tissue is very disagreeable to both the patient and
the operator. Further, the sight of the red hot metal being
applied to the foot usually frightens the patient, so that,
all in all, other methods are desirable.
Carbon Dioxide Pencil. For the treatment of verruca
by this method, the apparatus necessary is a small tank of
liquified carbon dioxide gas, and some small cylindric receptacle
in which the gas can be condensed into the solid form.
A glove finger is very good for this purpose. The gas is
allowed to escape into the glove finger, where it solidifies,
forming carbon dioxide snow, or what is commonly called
the carbon dioxide pencil. The temperature of this snow
or pencil is very low, being much below the freezing point
of water.
The pencil is applied directly over the verruca and is allowed
to remain for a few minutes, until the entire tissue
has been devitalized. The extreme cold causes the blood
supply directly beneath and around the growth to cease,
[Pg 204]much the same as exposure causes local anemia in chilblains
and frost bite. The tissues around the part become blanched
and the growth separates from the normal structures in a
few days. There is usually a slough which will respond to
treatment.
Great care should be exercised, so that the application
is not prolonged, as this will destroy normal tissue, and
cause deeper ulcers which do not readily heal. This method
is painless during the operation, but the pains of reaction
are marked, varying with the duration of the application,
and with the resistance of the individual. Wm. Golus considers
this method of treatment extremely harsh. Monroe
Redell and Irvin Mayer are similarly minded. All of these
practitioners state that they give the preference to any and
all other procedures whenever called upon to treat verruca—they
will not use the carbon dioxide pencil because they
fear the after-effects.
[Pg 205]
CHAPTER XIII
CALLOUSED NAIL GROOVE
The formation of hardened, or calloused skin in the
nail groove is, unhappily, a very common occurrence. In
our present day of high-heeled and pointed shoes the nail
grooves of all the nails, but particularly those of the great
toe, are subject to a great amount of pressure and friction.
This irritation develops conditions in these structures, ranging
from a transient inflammation to the formation of
distinct helomata, or the general callousing of the whole
surface of the groove, both under and beside the nail.
In many cases where an heloma has developed in the
inner lateral nail groove of the great toe, the condition is
judged and treated as an ingrown nail.
Why this error in diagnosis should occur is hard to
reason out, for, while the subjective symptoms of the two
conditions may be and usually are similar, the objective
symptoms are so entirely different that the only accountable
reason for a mistaken diagnosis is carelessness or
ignorance on the part of the practitioner. The true ingrown
nail is not a particularly common occurrence and, as has
been previously explained, a nail to be classified as ingrowing,
must present an edge that has invaded and is imbedded
in the softer tissues of the adjacent nail fold. In calloused
nail groove, nothing of this nature has occurred and it is
the maltreatment of cases of this kind that usually leads
to true cases of ingrown nail.
Definition. A calloused nail groove is a condition in
which a localized heloma (sometimes several disseminated
helomata), or a general calloused condition has developed
in a lateral nail groove.
[Pg 206]
Symptoms.Subjective symptoms: excruciating pain
on the slightest pressure, heat, and throbbing in severe and
neglected cases.
Objective symptoms: swelling, usually localized in the
nail fold involved; redness and general inflammatory condition;
upon close examination the heloma or the callous is
easily demonstrated in the fold by reason of its unyielding
qualities.
Etiology. This condition may be caused by irritation
of the tender tissues of the nail fold brought on by persons
who persist and delight in “digging” about the edges of
the nail with some instrument. In most instances, however,
a short or narrow shoe or stocking will cause sufficient pressure
of the edge of the nail upon the tissues of the groove
to cause nature to provide a protection which tends to prevent
the nail from piercing these softer tissues; the protection
appears in the form of callous. This callous will
appear as a hard development throughout the whole nail
groove, and we find those tissues to be unyielding and to
have lost nearly if not all of the pinkish tint which the
great amount of vascularity underneath normally gives to
the tissues about the nail. The color is yellowish or sometimes
greyish white. Where a distinct heloma is present,
it may be found covered by a thin sheet of callous which
covers some part of the groove, or it may be distinctly independent
and isolated from any such development. When
this latter condition is met, the heloma will usually be found
to be circumscribed, its edges regular and its shape circular.
These latter instances are not so common as the general
callousing of the entire groove. Where the helomata are
found disseminated, they will usually occur on the inside of
the flap next the nail, although in some cases they will be
found under the edge of the nail itself. In these first mentioned
instances the pain will be greatest upon lateral pressure
and in the latter upon dorsal or plantar pressure.
Treatment. Various methods of treatment are employed
for the alleviation or cure of this painful ailment.
[Pg 207]They may be divided, for discussion, into two general
classes: surgical and medical.
Surgical Treatment. This method consists in removing
the callous or the heloma by means of a fine-pointed scalpel
or a small curette. The nail groove is first well softened by
the application of small pledgets of cotton saturated with
warm water, or by the use of some epidermic solvent such
as liquor potassae, after which the parts are dried and the
operation is begun. With a sterile nail chisel sufficient of
the edge of the nail is cut away so that the heloma or the
callous is exposed. This not only gives the patient instant
relief but also allows room for the operation and the subsequent
dressing.
With a pointed scalpel or bistoury, the growths are
removed, much in the same manner as helomata in any
location might be treated. If the calloused condition be
general throughout the groove, a small curette is used and
the callous is loosened from the anterior end of the fold and
stripped backward toward the root of the nail.
The subsequent treatment consists in applying an ointment,
such as ammoniated mercury (5%), and packing the
nail groove with sterile gauze. Should the operator prefer
a liquid, the gauze packing may be saturated with bichloride
of mercury, ¹⁄₅₀₀₀, or boric acid, saturated solution; but it
will be generally found that the ointment is more effective
in reducing the inflammatory symptoms present and also
any irritation which may have been caused during the operation.
Whilst this operation is being constantly performed
and seems to be generally in vogue, much more satisfactory
results are obtainable from local medical applications.
In the first place, in using a scalpel or curette in the
nail fold, the operator must be very skillful in order not
to cause a hemorrhage and subsequently a tender digit. In
many instances, no matter how skillful the operator, or how
much care be exercised in the operation, it will be found a
practical impossibility to strip the callous from a nail groove
[Pg 208]without capillary rupture. This latter, of course, is undesirable
and usually, no matter how the lesion is dressed, the
groove remains tender for days.
In some cases the small helomata found in the nail fold
should at once be at least partly removed, to give the patient
relief. This may be done with a fine-pointed scalpel and
local treatment may then be applied.
Medical Treatment. There are two methods of medical
treatment employed. One finds its efficacy in the use of
salicylic acid as an epidermic disintegrant, and the other in
the application of liquor potassae (potass. hydrox. 5%) as a
cuticle solvent.
Salicylic Acid. After a sufficient portion of the nail has
been removed to give relief to the patient, the nail fold is
thoroughly cleansed and dried and the following ointment
applied in the groove:
Acidi salicylici
8.00
Camphorae
Chloral
aa
0.30
Ceratum
30.00
M. ft. unguentum
After a week or ten days has elapsed, the whole calloused
area will be found to be entirely disintegrated and
may be easily removed with a fine-pointed excavator. The
groove is then packed with either gauze or cotton, and an
appropriate ointment or solution is applied to alleviate the
inflammatory condition.
The treatment with salicylic acid is easily combined
with the surgical treatment, if it be found necessary to remove
a portion of the corneous formation in order to afford
relief to the patient.
In some cases it will be found efficacious, after the callous
has been removed by means of the salicylic ointment,
to apply silver nitrate (50%) to the groove. This will
reduce the inflammatory conditions and at the same time
act as an astringent to the underlying capillaries and as a
[Pg 209]sedative to the inflamed tissues. The alternate weekly use
of the ointment and the silver salt is advocated, and gratifying
results are usually obtained from this treatment in
cases where it can be used.
Liquor Potassae. Potassium hydroxide solution is most
generally used in cases where the callous is general in the
nail fold rather than where there is simply a localized
heloma.
An applicator is saturated in the solution and rubbed
over the calloused area until the mass is softened, when it
may be easily removed. While this mode of treatment is
a popular one it has been the experience of many practitioners
that the liquor potassae merely softens the calloused
condition, failing to disintegrate it entirely, and allows the
parts to harden, directly the application is discontinued.
Joseph Renk, a well known New York practitioner, reports
the best of results from this treatment, when carefully used.
No doubt there are good features in both treatments
and a wise practitioner, utilizing both, will adopt that from
which he obtains the best results.
In no instance should the nail fold be packed tightly in
these cases. The operator should remember that if he removes
a sliver of nail one-sixteenth of an inch in width and
then packs the resultant space with a pledget of cotton, gauze
or lamb’s wool one-eighth of an inch in thickness, he will
cause more pressure to be brought to bear on the parts
than there was originally present; this is, of course, to be
avoided under all circumstances.
On the other hand it must be remembered that sufficient
packing should be used to retain the normal line of the nail
fold and to keep these softer tissues in the proper place.
Under no circumstances should they be allowed to crowd
up and over the nail, for if this does take place we are merely
setting the stage for a possible ingrown nail. Jack Grossman,
M.Cp., makes this a strong point in his talks to the
students of The First Institute of Podiatry.
[Pg 210]
CHAPTER XIV
ONYCHOCRYPTOSIS OR INGROWN
TOE NAIL
Definition. Onychocryptosis, or ingrowing or ingrown
toe nail, is a condition in which the lateral edge of a nail
has penetrated through the epidermic layers and has become
imbedded in the adjacent or subjacent soft parts of
the lateral nail groove. This abnormal condition gives rise
to a number of complications, viz: simple inflammation, ulceration,
circumscribed or diffused cellulitis and the formation
of proud flesh. These may occur singly or as is commonly
found, the last three in unison. The unclean condition
of people’s footgear, the general unsanitary conditions
of the foot, or maltreatment of ingrown nail in its incipiency,
often give rise to the still graver septic complications
which ultimate in a general septicemia.
A nail then to be classed as an ingrowing nail must be
specifically ingrowing. Mention is made of this fact, which
many in their wisdom may deem superfluous, because so
many conditions of callous or helomata in the nail groove
are mistaken for ingrowing nail and their treatment as
such is not only useless, so far as a cure is concerned, but is
decidedly detrimental to the comfort of the patient and to
the future general condition of the nail involved.
Etiology. A large percentage, perhaps larger than
most people imagine, of ingrown nails arise from the injudicious
cutting of the part by an inexperienced person.
Directly after an amateur operation upon a painful nail,
acute symptoms of ingrowing nail do not necessarily develop—although
it does happen in many cases; but the
[Pg 211]etiology of a great number of acute and well defined cases of
ingrown nail, as stated, can be traced primarily to self-inflicted
nail injury at some previous time.
The changes taking place in the nail and in the tissues
of the nail groove after the removal of the lateral border of
the nail, are pronounced. Take, for example, the great toe
nail, as this is the most easily studied on account of its size
and at the same time is the most general seat of troubles
of this nature.
The nails are placed on the dorsal surfaces of the toes
as a means of protection to the expanded extremities of
the distal phalanges. Perhaps the Divine Providence in
moulding his masterpiece, man, foresaw the advent of modern
footgear and realizing its baneful effect upon the human
extremity, developed upon the great toe a heavy nail
from which a great deal of protection for the more tender
tissues beneath might be obtained. At any rate, the great
toe nail today bears the brunt of the pressure from our
leather footgear and for that reason is probably the seat of
so many painful afflictions.
The free edge of the normal great toe nail is found to
be more flattened and expanded than the posterior portions
of the nail nearer its root. This flattened expansion holds
the softer tissues of the end of the toe and of the lateral
border of the nail groove in place under the nail and also
prevents them, if allowed to remain untouched, from crowding
up or around the nail at any quarter. But allow the
free edge and the lateral border of the nail to be removed,
and particularly by inexperienced hands—and observe what
takes place. These softer tissues which were normally held
in place by the free borders of the nail, fill up the spaces
left by the removal of the nail borders. Even this condition,
were the nail to remain stationary and cease to grow,
would not be conducive to great pain or inconvenience. But
the nail is being continually pushed forward by the formation
of new cells at its posterior extremity. This is embedded
in the posterior nail fold, and when the newly
[Pg 212]formed portion of the same width as originally found arrives
at the point where the softer tissues are crowded up
and into the space left by the removal of the borders of the
nail, instead of growing over them and forcing them back
into their normal position, it finds this impossible, and
grows into them.
From the foregoing we are not to take it for granted
that all cases occur from injudicious cutting of the nail’s
lateral borders. Short and tight shoes and hose are in
some cases the exciting causes of ingrowing nails and, from
observation, we are led to believe that while the actual ingrowing
nail is not hereditary, nevertheless the predisposition
toward nail inversion is manifest through an entire
family or even through a generation.
In the case of tight footgear or hosiery, the cause is the
crowding of the great toe against its neighbor, forcing
the softer tissues of the nail groove and flap to be crowded
against the lateral edge of the nail. In these cases the
principal site of occurrence will naturally be the outer sides
of the great toe; in fact, in most cases, this groove will be
found to be the most general site of occurrence. The soft
tissues of the nail flap being crowded over and around the
nail’s lateral edge, there naturally follows an irritation in
the groove, caused by the nail rubbing upon these tissues
which, in time no doubt leads to ulceration of the parts with
the accompanying inflammatory symptoms.
Uric acid diathesis may in one sense be said to be the
cause of some cases of ingrown nail in that when patients
so suffer, the nails are prone to chip off at the edges leaving
the latter ragged and so allowing a chance for irritation
from the saw-like projections, ultimating in an ulcerated
condition of the wounded parts.
Complications. Other than the general inflammatory
conditions brought about in connection with the ulceration
caused by the edge of the nail penetrating the softer tissues,
proud flesh is probably the complication most generally met
with in these cases.
[Pg 213]
Proud flesh, thus produced, is due undoubtedly to the
constant irritation of the nail upon the exposed surfaces of
ulcerated area. It forms in many shapes and the mass developed
depends largely upon the length of time the condition
is allowed to progress without proper treatment. The
excess growth is usually found covering the whole exposed
area, or only forming in a teat-like prominence with a small
circumscribed base and expanded extremity. The pain to
the patient is undoubtedly augmented by the presence of
proud flesh and the discharge from the ulcerated areas is
thereby increased. Hemorrhage from the movement of the
toe in walking is prone to occur and the general unwholesomeness
of the part is thus exaggerated.
In some cases the production of these exuberant
granulations takes place under the body of the nail as well
as in the groove or on the flap and they are not clearly discernible
until the imbedded portion of the nail is removed,
when they will be seen to crowd upward into view.
Any open wound upon the surfaces of the foot is very
liable to septic infection. Regardless of the cleanly care
one may give his feet and regardless of the washing of
hose, infection will still take place, and only naturally so.
The feet are coming constantly in contact with septic surfaces
and the inside of a shoe presents large areas for the
resting place of countless microorganisms in that it combines
the three elements which are best suited for the growth
of bacteria, viz: heat, moisture and darkness.
Ingrown nails are even more prone to infection than
is a lesion in connection with an heloma or a fissured toe
web, and in many instances where cases have been allowed
to run for some time before the surgeon or podiatrist is
called into consultation, infection has already occurred.
In connection with septic cases, abscess cavities are
often found immediately in the nail groove, under the body
of the nail itself or with a suppurative sinus burrowing
backward under the posterior nail fold and involving the
whole of the matrix in an acute suppurative process. In
[Pg 214]exaggerated cases, the cellulitis may be diffused throughout
the whole digital region. However, these cases are rare,
as walking has become well-nigh impossible long before
this takes place and the patient will have been under scientific
treatment before the case has reached such proportions.
Treatment. From the standpoint of the podiatrist,
there are two distinct methods of operative technic in ingrown
nail cases, the radical and the palliative. They differ
as to the exact technic of the removal of the ingrown portion,
but agree on practically all other points.
In that but for the first part of the operation these two
methods are similar, they will be discussed separately as
to that alone, and the post-operative procedures and dressing
of both will be combined into one general discussion.
Under each heading the treatment of the surrounding tissues
is mentioned, but the reader is referred to the heading
“Prophylaxis” for a thorough and comprehensive discussion
of the various procedures necessary to their proper
care.
Asepsis. Proper aseptic precautions must be observed
in all lesions and particularly so with ingrown nail cases.
As has already been stated, conditions of this nature are
prone to infection because the surfaces and recesses or the
nail groove present excellent lodgment for bacteria, and
this point should always be borne in mind.
The parts should first be thoroughly cleansed with
ether. This removes all greasy or oily matter from the
field of operation and allows the antiseptic solutions subsequently
used to come in direct contact with the affected
surfaces.
Some effective antiseptic should then be used as a spray
to prevent the washing in of bacteria from the surrounding
parts. There are a number of solutions which are useful for
this purpose; liq. zinci et alumini compositus, N.F., and
liq. zinci et ferri compositus, N.F., are both highly recommended.
Liq. cresolis compositus may also be used with
excellent results, although it carries the somewhat disagreeable
[Pg 215]odor of the cresols. These solutions are all active in
strengths ranging from two to five per cent.
Iodine is unquestionably the best antiseptic that can be
applied to the field of operation, but as its discoloration of
the tissues prevents the operator from visually observing
geographic points he may need for further diagnosis, and
as this drug also acts as a corrosive to metal instruments,
it is found advisable in many instances to refrain from its
use.
As a substitute for iodine, alcohol is the next most efficient
germicide. Sixty per cent. strength is recommended,
as in that proportion it has greater penetrative and antiseptic
value than the stronger solutions.
The alcohol, applied by means of a cotton wound applicator,
is rubbed into the parts, or a pledget of sterile cotton
or gauze, saturated in the solution, may be applied over the
field and allowed to remain for two or three minutes prior
to operation.
When the operator has followed the foregoing, or a
similar line of procedure, the removal of the ingrown portion
of nail may be begun. For simplicity’s sake, the methods
of treatment will be discussed, beginning with the uncomplicated
case, and the various complications will be considered
under separate headings.
UNCOMPLICATED CASES
Removal of the Ingrown Portion. Having obtained
thorough asepsis of the affected and surrounding areas, the
operator by means of a small, blunt sterile probe, should endeavor
to locate the exact position and size of the ingrown
portion of nail, which should then be removed by means of
a sterile nail chisel.
The Nail Chisel. This instrument is a narrow steel
blade set in a long or short handle, as the operator desires,
the operating end of which is slightly oblique so that, upon
direct pressure, the blade cuts in a diagonal manner. This
is for the purpose of minimizing the danger of penetration
[Pg 216]into the nail bed. In the radical operation a broader and
heavier chisel is sometimes used so that the softer tissues
may be included in the incision.
The Radical Method. Proper antiseptic precautions
having been taken, the circulation is cut off at the base of the
toe by the application of a tourniquet. Under local anesthesia,
induced preferably by the hypodermatic injection of
novocaine, 1%, the nail is split longitudinally to the root
with an ingrown nail chisel, care being taken not to split the
nail at or near its centre—a procedure practised by some
surgeons. When the nail has been cut through the root, the
free portion is grasped with an artery forceps and is lifted
out of the nail groove. It is often necessary to dissect the
nail from adhesions which have formed.
The proud flesh, should any be present, is now snipped
off with a pair of curved scissors and if necessary a portion
of the enlarged nail flap is also included in the cut. The
soft tissues should be cut so that the structure remaining
appears normal in size.
The nail matrix is thoroughly curetted over its entire
exposed area, as is the nail bed along its whole surface to
the distal end. This procedure must be thorough to insure
against recurrence. Bleeding is of a capillary type and is
easily controlled by digital pressure.
The Palliative Method. With a sterile nail clipper, a
small cut is made on the affected side in the free edge of
the nail. The chisel is then placed in this notch and gentle
yet firm pressure is exerted so that the instrument cuts
through and splits the nail.
The cut made is in the shape of an arc, following as
nearly as possible the normal line of the lateral edge of the
nail. The broadest part of the arc is at the anterior or free
edge of the nail, gradually reducing the width of the piece to
be removed until the lateral edge is reached. In this way a
clean sweeping cut is made which does not invade and consequently
does not irritate the tissues about the nail root.
The palliative method of operative technic in ingrown
[Pg 217]nail cases is based on the theory that the condition is not
one of a misdirected growth of the nail, but rather a case
of the soft tissues adjacent to the nail crowding up, around
and over the nail proper; and that the nail body as it
pushes continually forward, cannot force this mass back
into its normal position and, of necessity, must grow into it.
There is no lateral
hypertrophy of the nail
nor does it present any
misdirected growth.
ONYCHOCRYPTOSIS (SUPPURATING)
Keeping this theory
in mind, it would
seem unnecessary and
poor surgery to remove
the portions of the
matrix of the nail from
which the affected side
develops when in reality
it is not the nail
that is at fault but
rather the soft tissues
adjacent to it; and the
ingrowing of the nail
body is purely secondary
to the displacement
of these soft tissues.
As ever in surgery,
however, it remains
a matter of judgment
as to which operation
should be done so
as to obtain the best results. When the palliative methods
fail to be effective, the radical operation is permissible—never
the reverse.
The palliative method has for its object the removal
of the portion of nail whose irritant free border is embedded
in the tissues and, this accomplished, to treat these softer
[Pg 218]tissues in such a manner that they will become normal as
to position and all else. By such a manner and method of
treatment, sufficient space is obtained at its lateral edge for
the nail to grow to its full width and in time to become perfectly
normal as to appearance, function and feeling.
The straight nail chisel, in most instances, can be used,
but where the ingrown portion of nail is deeply embedded,
a right or left curved chisel can be substituted with greater
success. The curve in this variety of chisel aids the operator
in lifting the nail out of its bed, while at the same time
the cutting process is not hindered.
Dressing. Following the removal of the offending portion
of nail, the operator should make sure that no nail
slivers, previously existing or of his own making, remain
in the nail fold. Assured of this, the parts should then be
thoroughly irrigated either with alcohol, 60%, or mercuric
chloride, ¹⁄₄₀₀₀. Hydrogen peroxide may be used as an
irrigant where pus is present, but it should not be depended
upon as a germicide as its action is very transient and superficial.
A final dressing is then put in place.
There seems to be a wide diversity of opinion as to what
constitutes a proper dressing after the nail has been removed.
Whatever else individual experience may show to
be useful, the dressing should be one embodying antiseptic,
astringent and healing properties. The antiseptic, surely
regardless of what other action is to be desired; the astringent,
so that inflammatory symptoms may be speedily combated
and the ulcerated areas contracted; and the healing
so that granulation may be the more speedily promoted.
Three forms of dressings may be classified: the wet;
the dry; the ointment.
The Wet Dressing. The nail groove is packed with a
small piece of sterile gauze. Care should be exercised that a
thin fold of the gauze be placed under the edge of the nail
between it and the tissues into which the ingrown portion
of nail was embedded. A piece of sterile gauze, of about
three or four thicknesses and about two inches square, is
[Pg 219]then placed over the affected fold of the nail, covering the
inflamed area and extending over the nail itself. This
pledget is then saturated with a solution of the operator’s
choosing to meet the needs of the case under treatment.
Two solutions seem to be favored above all others in this
connection: mercuric chloride, ¹⁄₅₀₀₀, or weaker, and liq.
aluminum acetate. The latter solution is at most times
preferable, as it possesses antiseptic qualities (nearly, if
not equal to corrosive sublimate without exhibiting the
toxic properties of the latter) and produces an astringent
and antiphlogistic action on the tissues. Strong germicidal
solutions such as the mercuric chloride are at times found
to be decidedly detrimental, in that they not alone cause
maceration and desquamation of the skin, but in some
instances, if too strong, they destroy the newly formed connective
tissue granules.
The gauze square which covers the whole end of the toe,
and which is saturated with either solution just described, is
held in place by a roller bandage or by adhesive strips.
The usual method of applying these strips is to place one
on each side of the gauze square, adhering them over the
end of the toe and to and on the skin, and one over the
centre of the dressing, carrying it over the end and down
to and on the plantar surface of the toe. A circular strip
is then carried around the toe, over the posterior end of the
dressing, thus binding down the ends of the three strips
previously applied.
No impervious covering such as gutta percha, oiled silk,
etc., should be used in this instance, or, in fact, in any condition
where the skin is broken. The warmth and moisture
produced by such a covering is congenial to the growth and
development of hostile bacteria.
The wet dressing, then, should be left uncovered so
that evaporation may take place and a quantity of the
solution used should be prescribed for the patient, so that
the dressing may be moistened with it from time to time.
The dressing without impervious covering is antiseptic and
[Pg 220]heat reducing because of the evaporation and frequent replenishment
of the solution.
The Dry Dressing. Dry dressings in this sense consist
in the application either of plain, dry, sterile gauze packed
in the nail groove and unmoistened, or dusting the affected
parts with some antiseptic powder to maintain asepsis in
the wound and to bring about normal granulation.
Of these two forms of dry dressing, that constituted
by the plain dry gauze is productive of better results than
are obtained by the dusting powders. A lesion caused by
the nail penetrating the soft tissues of the nail fold, in the
process of healing, necessarily discharges a certain amount
of waste material produced in the tissue repair. In consequence,
where a dusting powder is used, the serous discharge
at times combines with the particles of the powder
to form a crust which, in the confined areas of the nail
groove, often becomes equally as irritating as was the ingrown
nail itself.
However, in some instances dusting powders may be
used with impunity and many practitioners favor and report
success in their use.
Aristol (thymol iodide), dermatol (bismuth subgallate),
bismuth subnitrate and boric acid (powder), preferably the
first two named, may all be safely used in the treatment
of ingrown nail cases. Aristol depends upon the liberation
of iodine for its antiseptic action while the two bismuth
salts, the subgallate and the subnitrate, combine marked
astringent properties with their antiseptic qualities.
After the powder is dusted into the affected groove, a
thin layer of sterile gauze is packed lightly under the lateral
edge of the nail and a cocoon dressing is placed over the
whole.
This form of dressing is applied until resolution of the
inflammatory process and granulation of the wound has
taken place.
The Ointment Dressing. All ointments are necessarily
of fatty or oily consistency and, in consequence, when applied
[Pg 221]over a surface excreting a serous discharge, are liable
to confine this discharge to the affected areas rather than
allow it to be absorbed by the gauze dressing, and so drain
the wound. For this reason the use of ointments on discharging
surfaces is not particularly recommended. Many
practitioners use them, however, and presumably with
beneficial results.
Two classes of ointments may be used in this connection:
antiseptic and stimulating. Under these headings the
following are suggested: sulphur, 10% (vaseline or lanolin
base); ammoniated mercury (white precipitate), 5%; balsam
of Peru, 10%; scarlet red (medicinal Biebrich),
4%.
The ointment is placed in the nail groove by means of a
spatula, and sterile gauze is packed lightly under the nail,
holding the ointment in place. This is covered with a cocoon
dressing and is renewed until the parts regain their normal
condition.
COMPLICATED CASES
Proud Flesh. The development of unhealthy, exuberant
granulations is a common occurrence in connection
with ingrown nail cases, especially when they have been
allowed to progress before proper treatment has been
inaugurated.
In all cases the primary steps in the treatment are
essentially similar to those described under “uncomplicated
cases.” Proper asepsis and antisepsis are at all times
to be strictly observed, and any ingrown portion of nail
should in all cases be first removed before additional treatment
is administered.
The speedy and complete removal of the unhealthy
granulations is at all times essential. This may be accomplished
either by excision, by the actual cautery or by the
use of escharotics. The operator must always remember
that the presence of proud flesh in a wound not alone retards
the normal healing process, but also prevents the
[Pg 222]wound from healing without the formation of an abnormal
amount of new tissue. If, for instance, a mass of proud
flesh the size of a pea were present in connection with an
ingrown nail and allowed to remain without further treatment,
the tissue would in time present a perfectly normal
appearance. That is, the exuberant granules would sooner
or later develop an epithelial
covering which
would be of like appearance
to the normal surface
of the skin. But in
doing so, the tissues
would still retain the
shape and size of the
original mass of exuberant
granules and we
would find a teat of tissue,
the size of a pea,
jutting out of the normal
surface of the nail
groove.
Keeping in mind,
then, that to obtain a
speedy and normal
healing action in a
wound the proud flesh
present must be eradicated,
it should appeal
to the operator that the
quickest means for its
removal must be the best. Two quick and complete methods
for obtaining this desired result are found in (1), excision
(by the use of the scalpel or curved scissors), and in (2), the
actual cautery.
BEGINNING INGROWN TOE NAIL
Excision. Excision of the proud flesh cannot be resorted
to in all cases, but in most cases at least the larger portion of
the exuberant granulations can be removed in this manner.
[Pg 223]
The condition in which the use of the curved scissors is
particularly advocated as most efficient is that in which the
mass of proud flesh is found in pendulous form, where its
base is narrow and covers but a small area and where the
mass expands into an enlarged extremity. In cases where the
proud flesh is found generally throughout the nail groove,
and in some instances under the lateral edge of the nail
itself, the scissors or scalpel cannot be used with good effect,
if at all. Then of course other means must be employed.
Method of Procedure. After the field of operation has
been thoroughly sterilized and the ingrown portion of the
nail has been located and removed, the exact situation and
amount of proud flesh is ascertained. If at all practical, a
sterile scissors (preferably of the curved variety) is inserted
under the granulating mass and the whole is quickly snipped
off at its junction with the normal integument. Where
the mass is considerable, it will be found advisable to ligate
the toe at its base by means of a few tight turns of adhesive
tape or by the use of a rubber ligature. This precaution
will lessen the resulting hemorrhage and it can be more
readily controlled.
Where the amount of proud flesh to be excised is small,
the blood flow is easily arrested by digital pressure.
It will generally be found conducive to the best results
to anesthetize the parts by hypodermatic injections of
novocaine or by means of the ethyl chloride spray. This is
not necessary in every instance, however, as the advisability
of producing anesthesia depends upon the amount of tissue
involved and the nervous condition of the patient.
After the exuberant granulations have been cut off,
Monsel’s solution, adrenalin chloride or some other styptic
is applied to the bleeding capillaries.
It may be found advisable to apply silver nitrate, 50%,
or even nitric acid, c.p., to the bleeding parts. This serves
not alone to check the hemorrhage, but the escharotic action
tends to destroy whatever remaining shreds of the proud
flesh may still be present.
[Pg 224]
The oozing arrested, the ligature is removed. The nail
groove is packed firmly with sterile gauze (firmly, so as to
further check the vascular supply to the parts) and a wet
dressing of liq. aluminum acetate is applied. In the event of
no further recurrence of the proud flesh, the case is treated
in any of the ways described under “uncomplicated cases.”
The Actual Cautery. The electric cautery presents a
quick and sure means by which proud flesh may be destroyed.
Local anesthesia should first be induced by means
of a hypodermatic injection of novocaine, 1%, or by use of
a freezing spray, such as ethyl chloride. In most instances
the use of the ethyl chloride will be found sufficient for the
needs of the case although its anesthetic effect is quite superficial
and transient. Novocaine, on the contrary, is both
lasting and complete in its effect.
The argument against the use of the actual cautery is
one of humaneness rather than one of science. Regardless
of the lack of sensation produced by the anesthetic, patients
will rebel at the sight of a white hot cautery. The
mental shock of seeing one’s flesh seared by a hot iron is
pronounced, and at the present time no podiatrist can take
liberties with the patient’s feelings as does the surgeon,
without jeopardizing his reputation and diminishing his
clientele. On the other hand, while the mental anguish of
the patient may be greater during the use of the actual
cautery, the subsequent suffering is much less than that following
the application of an escharotic.
After the use of the cautery, a wet dressing of liq.
aluminum acetate or a solution of boric acid and alcohol,
equal parts, may be applied and renewed until all acute inflammatory
symptoms have subsided when a dressing may
be employed to hasten granulation.
Escharotics. The use of caustics for the destruction of
proud flesh is probably the most generally used method in
vogue today. Nitric acid, caustic potash and silver nitrate,
either in fused or in solution form, may all be used in most
every instance.
[Pg 225]
Inability for any reason to resort to the use of a curved
scissors, the scalpel, or the cautery compels us to look among
the caustics for an agent to accomplish the desired results.
Keeping in mind the aforementioned fact, that the quickest
means for proud flesh removal or destruction is the best, we
naturally lean toward the strong corrosives as a means to
bring about this end.
Nitric Acid. Nitric acid (aqua fortis), in all probability,
is the most efficient member of this class of drugs, as
its action is both energetic and penetrating. In cases where
the exuberant granulations are found involving the entire
nail fold and in no particular localized area, aqua fortis
is found very useful. Usually one application is sufficient
to destroy all vestige of the unhealthy tissue, but in extreme
cases added treatment may be necessary.
Care is taken to cover the surrounding healthy integument
with some greasy substance (vaseline is generally
preferred) to prevent the acid from coming in contact with
it and avoiding the consequent bad effects. The acid is then
applied by means of a cotton wound applicator (wooden
applicators are preferred, as they are inexpensive and may
be thrown away after being used) or a glass rod. The nail
groove should be firmly packed with sterile gauze and a
wet dressing of liq. aluminum acetate or of bichloride of
mercury, ¹⁄₅₀₀₀, or a boric acid and alcohol solution, equal
parts, should be applied over the affected parts. At the
next examination, any remaining shreds of the unhealthy
granulation are to be looked for and, if found, another but
lighter application of the acid should be applied. It is wise
to remove the eschar caused by the previous application so
that deeper penetration and more efficient action from the
drug may be obtained.
This is continued until all remnants of the proud flesh
are destroyed, when the toe should be dressed to induce
speedy and healthy granulation.
Caustic Potash. Potassium hydroxide (caustic potash)
may be used in place of nitric acid for the destruction of
[Pg 226]proud flesh. The preference for the latter seems to be due
to the fact that wound’s caused by the action of nitric acid
are prone to heal more rapidly than those due to the use
of caustic potash; also because the action of aqua fortis
can be more readily counteracted should the need for such
action arise.
Caustic potash should be used with care, the same precautions
to protect the healthy tissue being taken as in the
use of nitric acid. Apply caustic potash on a small cotton
wound applicator, packing the nail fold with sterile gauze
to be followed by a moist dressing of liq. aluminum acetate.
Silver Nitrate. The use of the silver stick or a strong
solution of the salt to destroy any great amount of proud
flesh is not advocated. In the first place the caustic action
of silver nitrate is due solely to the nitric acid generated by
its use, and so the aqua fortis should be used to obtain a
speedier and more energetic removal of the unhealthy tissue.
Secondly, silver nitrate coming in contact with the
albuminous tissue, decomposes, oxidizing it and forming a
metallic deposit on the surface which becomes an impermeable
eschar. This hard crust not alone prevents the silver
salt from penetrating into the tissues—the action of silver
nitrate is thus called “self-limiting”—but also being unyielding,
acts as a direct irritant to the denuded tissues.
Silver nitrate is, however, particularly efficacious after
the great amount of the proud flesh has been removed by
means of excision; in this situation it acts as a styptic to
arrest the capillary flow of the bleeding stump, and as a
mild caustic to destroy the remaining shreds of the unhealthy
granulation. It is also a beneficial application for
hardening the tissues of the nail fold to prevent further
recurrence of the ingrowing nail. This subject will be fully
discussed under “Prophylaxis.” After excision of the
proud flesh, silver nitrate should be used in solution of fifty
per cent. and the toe dressed as has been previously
described.
Burnt Alum. Burnt alum is still another remedy used
[Pg 227]in podiatry for the destruction of proud flesh. Its use is
not now favored for that direct purpose, but there are some
situations in connection with the treatment of the condition
in which it may be used with good results. It is the
least energetic of all the escharotics herein mentioned, and
many prefer to class it rather as an astringent. The burnt
alum is dusted in the nail groove directly on the mass of
proud flesh and the groove is then packed with sterile gauze.
Because of its extremely mild action, comparatively speaking,
burnt alum will not accomplish its work of destruction
with the rapidity nor the completeness of the other mentioned
drugs; moreover it causes considerable irritation and
pain to the patient. The modern practitioner is inclined to
relegate this drug, as a caustic, to the shelf, to be used only
in cases where a strong astringent action is desired.
Liquor Ferri Subsulphate. Monsel’s solution has been
used to dry up unhealthy granulations because of its astringent
action rather than on account of its caustic properties.
Treatment of Acute Infective Inflammations. Infection
is in all probability more generally met with in connection
with ingrown nail cases than in any other ailment
primarily occurring on the foot. The state in which the
toe may be found is dependent upon the length of time the
case has progressed without proper treatment. Cellulitis
may be circumscribed or diffused, and lymphangitis, both of
the reticular or tubular variety, may be present.
Following the usual antiseptic and aseptic precautions
relative to the field of operation, the operator’s hands and
the instruments, drainage of the suppurated areas must first
be obtained.
In the average case, an abscess cavity is usually found
in or adjacent to the lateral nail fold, and in many instances
the pus sac will be punctured during the removal of the
ingrown portion of the nail. It is sometimes found necessary
to remove an overlying portion of nail, other than the
ingrown portion, to give free access to the suppurating
process and to afford drainage for its purulent discharge.
[Pg 228]A sterile chisel of the straight variety is generally used to
accomplish the removal of the ingrown portion of nail,
care being taken that the cutting edge is inserted deep
enough to penetrate only the nail and not to pierce the underlying
soft parts.
Some practitioners do not advocate the removal of
portions of the nail and prefer rather merely to drill a hole
through the nail body and excavate the pus through this
channel. No doubt circumstances alter cases, but the writer
would prefer having the septic tract wholly exposed so that
thorough irrigation and proper treatment may be accomplished.
Having given free drainage to the pus cavities, the
parts should again be sprayed with alcohol, 60%. Hydrogen
peroxide, which manifests its greatest efficacy in pus cases,
should then be freely applied until ebullition ceases.
In cases where the sinus is small and deep and an ordinary
cotton wound applicator is too large for insertion
into its recesses, a wooden applicator tipped with iodine
(these applicators already prepared are now on the market)
will be found fine enough for this accomplishment.
There is also on the market a fine, hollow, flexible
needle, with a bulbous extremity in which there is an opening,
that fits any hypodermic syringe. Two or three drops
of iodine are drawn into the barrel, the needle is inserted
into the sinus, and its contents are evacuated by piston
pressure. This enables the operator to get the drug down
into the sinus so that it comes into direct contact with its
deepest surfaces. This needle is made of a non-corrosive
metal.
The next point to be considered is the form of dressing
to be used. If the case has progressed to a point where the
operator feels the necessity of a surgeon’s advice, the latter
should by all means be called in as a consultant. The writer
feels, however, that in most instances the modern practitioner
of podiatry is well equipped to successfully treat
even severe cases of this nature.
[Pg 229]
The affected nail groove is packed with sterile gauze
and a large piece of the fabric, of several thicknesses, is
placed over the whole inflamed area. This is saturated with
a solution of mercuric chloride, ¹⁄₅₀₀₀, and is remoistened
at intervals by the patient so that it is constantly wet. In
some cases it may be wise to have the patient remain in the
office several hours to make sure that the infected parts are
kept constantly immersed in a solution of mercuric chloride,
¹⁄₅₀₀₀. This treatment has been found to be extremely
beneficial in reducing the inflammation so that a moist
evaporating dressing, as described above, may be safely
applied. Rest is another feature to be employed in the
treatment of these cases. The patient should be instructed
to refrain absolutely from the use of the affected parts
until such time when the inflammatory conditions have subsided
or are under control. The podiatry patient as a rule
is loathe to have his or her energies in any way curtailed,
but the mention of “blood poisoning” is usually sufficient
stimulus to send the patient to bed when so ordered.
Prognosis. The prognosis in all cases of ingrown nail
under proper treatment is favorable. The length of time
elapsing before a cure is affected is of course dependent
upon the condition of the toe and the general condition of
the patient.
In cases where the nail penetration is slight, and the
inflammatory conditions are in their incipiency, one or at
most two treatments will be sufficient to heal the ulceration
and to restore the toe to its normal condition. Complicated
cases necessarily take longer to relieve and longer to cure.
The surgeon is still rather reluctant to believe that an
ingrown nail can be cured without removal of the affected
half of the nail, the lateral nail fold, and a portion of the
matrix. This method of procedure in nearly every instance
incapacitates the patient for fully two weeks and it is doubtful
whether anything is gained (taking all matters into
consideration) over the methods of ingrown nail treatment
as here outlined.
[Pg 230]
The surgical argument is based on the contention that
unless the matrix underlying the affected nail be removed,
the nail will again grow into the tissues. This is unquestionably
so, but in a majority of cases, as explained previously,
the trouble is not due to a misdirected growth of the
nail, but rather to the tissues surrounding the free edge and
lateral nail border crowding up, around and over the nail.
It may then be safely stated that an ingrown nail properly
treated and which has been subjected subsequently to
proper prophylactic measures, is curable; not temporarily,
but permanently.
PROPHYLAXIS
In considering the measures employed by which the general
condition of the nail may be improved so as to prevent
a further recurrence of the ingrowing tendencies, we
will make, for simplicity’s sake, six divisions. Five of these
relate to the nail itself and to the subjacent tissues, and
one to the footgear and hosiery of the patient.
1. Thinning the Nail Through Its Long Axis. When
the acute inflammatory symptoms have subsided and the
ulcerated areas healed, in other words when the toe and the
nail have returned to normal, measures should be taken to
prevent the latter from becoming again ingrown. With a
rotary file, the centre of the nail should be ground to a
paper thinness through its long axis. What is accomplished
by this procedure?
The nail is normally convex on its outer surface and
the apex of its dome is the centre of the nail body. This
portion, being the greatest point of elevation, naturally receives
the brunt of the pressure from the shoe. If the nail,
then, is allowed to remain thick in the centre of its body,
the shoe pressing upon it will find the nail unyielding and
in consequence will cause its lateral borders to be forced
down into the nail grooves. By thinning the body of the
nail to such an extent that it becomes thin and flexible, the
shoe presses upon a yielding surface, in consequence of
[Pg 231]which the nail “gives” or spatulates at its centre and the
pressure upon its lateral borders is decreased if not prevented
entirely.
Having done away with any untoward pressure which
might be brought to bear on the nail, we next turn to:
2. Hardening the Nail Groove, and Shrinking the Flap.
In many cases, after all acute symptoms of the disturbances
have subsided, we find that the flap of tissue adjacent to the
once affected nail and forming the outer side of the groove,
is greatly thickened and enlarged.
This must be reduced in order that the new-forming
nail will have sufficient room to develop to its normal width
and we must also harden and toughen the nail groove so
that it will present a surface that the nail, as it grows out,
will not be able to penetrate, should it be so inclined.
Silver nitrate is the most generally used and most
efficient agent to carry out a treatment of this kind. Solutions
varying in strength from 5% to 50% are recommended,
and the selection depends on what is to be accomplished and
the length of time which may be given to the treatment.
By persistent use of silver nitrate solution, 50%, an
enlarged and thickened nail flap may in time be reduced to
normal. Applications about one week apart—in some cases
ten days or two weeks to intervene—will usually work wonders
in conditions of this kind. The groove should be thoroughly
cleansed and dried and the silver solution should be
applied on a small cotton wound applicator and painted well
down under the nail and over the tissue in the enlargement.
A dressing, usually cotton and collodion, is then applied
and allowed to remain undisturbed until the patient’s return.
The action of this solution is astringent and sedative.
It is bound to reduce the chronic inflammatory symptoms
that may be present and, acting as an astringent, it
gradually shrinks the enlarged flap until the normal line of
the lateral nail fold is reached.
During the treatment, there is absolutely no pain nor
inconvenience to the patient. Care should always be exercised
[Pg 232]that the silver solution be not applied if any hemorrhage
has been caused in the removal of a previous eschar,
as it is sufficiently caustic to cause ulceration should it come
in contact with such a denuded surface. Packing of the
nail groove will be discussed under the sub-heading “Packing.”
Subsulphate of iron (Monsel’s solution) may be used
in the treatment of cases of this nature, but its action as an
astringent in this connection is so mild that it is of necessity
a slow process to effect a complete cure.
The solution, usually applied to the groove on gauze,
is allowed to remain. In fact, the patient is often advised
to procure a quantity of the drug and keep the gauze
moistened.
The patient should be seen at periods of about a week
or ten days, when both the dressing and the eschar caused
by the action of the iron salt are removed. Fresh gauze
is packed under the nail and the treatment continued.
Ferric chloride has much the same action in this connection
as the subsulphate, but this drug has never been so
popular, for the reason of its greater irritant qualities,
few of which are to any degree manifest in Monsel’s solution.
Ointments or collodion containing large percentages of
salicylic acid—as high as sixty to seventy-five per cent.—are
sometimes used to destroy an enlarged nail flap by
strong disintegrative action. The ointment is usually prepared
on a cerate base and sufficient wax is added to thicken
the paste so that the tendency to melt and run over portions
of the integument, where its action would be detrimental,
is minimized.
The ointment is applied in the groove and over the
top surface of the mass to be destroyed and is allowed to
remain for a few days when the disintegrated portion is
removed and another application made. This action of
salicylic acid, used in considerable strength, is at times
painful and cannot be borne by every patient. The treatment
[Pg 233]is a good one, however, and is rapidly coming into
the prominence and popularity it deserves. Salicylated
collodion is similar in action to the ointments containing
salicylic acid, and the same general procedure holds good
for both applications. The collodion is applied on all surfaces
of the mass, is covered with a cotton and collodion
dressing and a second application is made upon the removal
of the disintegrated portion.
It is sometimes advantageous to alternate the silver
nitrate treatment with that of salicylic acid. An application
of the ointment or the collodion is made and upon removal
of the disintegrated portion, the silver solution is
applied. After the lapse of about two weeks, the salicylic
acid is again applied and the treatment continued alternately
in this manner until the desired result is obtained.
3. Packing. We here come to one of the most important
procedures necessary to a successful prophylactic
treatment of an ingrown nail. Whether the nail groove is
to be packed loosely or tightly is a question of great import
and should be given careful consideration by the
operator. Often the comfort of the patient and always the
ultimate outcome of the case is dependent on the proper
packing of the nail groove as an after-treatment.
There appears to be a great tendency to pack the groove
full to overflowing with gauze, cotton, or what not, and,
although there are some instances where a procedure of
this kind is necessary, it is usually conducive to a great
amount of pain to the patient and has a decidedly deleterious
effect on the tissues under treatment.
In general, it is wise to pack the groove as lightly as
possible, using only a small pledget of gauze or cotton and
taking care that the fabric is well under the nail and interposed
between it and the tender areas underneath. It must
be remembered that no matter what fabric be used for
packing, it rapidly hardens and becomes more or less irritant
to the tissues. Should the nail groove be packed to
such a degree that at the time of dressing it is unyielding
[Pg 234]and hard, it is easily realized what the condition of this
dressing will be in the course of a few days.
The only time a nail groove might be tightly packed is
in connection with the treatment of proud flesh when the
tight packing tends to interrupt the circulation to the part
and thus aids in retarding the growth of the superfluous
granulations. Another instance when a groove may be
packed tightly is in a case where no inflammation is present
and when it is the desire of the operator to hold the softer
tissues down and away from the edge of the nail so that
sufficient room may be allowed for the nail to grow out and
attain its normal width. A word in connection with this
theory. Silver nitrate solutions, twenty-five to fifty per
cent., applied to the groove hardens the tissue by means of
the eschar developed on its surface and a tight packing to
hold these tissues in place is an ideal combination for the
prophylactic treatment of a previously acute ingrown nail
case, when by such tight packing no noticeable inconvenience
is caused to the patient. If cotton is used as a
packing it should be rolled into a loose thin pledget, the
finer “point” of which is inserted under the edge of the nail
near its posterior fold, and the thicker end is packed under
the nail at its distal portion. One thickness of gauze is
generally sufficient and, at most, two thicknesses may be
used, unless, of course, tight packing is required.
In connection with this prophylactic treatment it may
sometimes be wise to place a shield of felt or buckskin between
the tender part and the adjacent toe to hold that
member away from the affected areas and so that the medications
applied may be allowed a chance to complete their
therapeutic action undisturbed. This shield is not strapped
but is merely placed between the toes, resting on the interdigital
web, and is just high enough to reach the base of the
nail and so does not come in direct contact with the area
under treatment.
4. Allowing the Nail to Grow Long. The nail should
be allowed to attain as great a length as possible, particularly
[Pg 235]at its lateral points, without interference with the continuity
of the patient’s hosiery, and yet not long enough to
cause pressure from the toe of the boot.
This can be best accomplished by cutting the free edge
of the nail in a concave manner. The lateral points are
kept, if possible, long enough so as to extend to a point
slightly beyond the distal end of the nail fold and the rest
of the free edge is cut in a circular manner so that at its
centre it is no longer than just sufficient to cover the anterior
edge of the nail bed. This manner of cutting, combined
with thinning the nail body through its central longitudinal
axis, prevents any great amount of pressure from being
exerted by the shoe upon the apex of the nail’s convexity.
It will also, to a great extent, prevent the nail from cutting
through the patient’s hosiery. If the whole nail is allowed
to grow long, and its free edge to extend over the end of the
toe, some leverage is bound to be brought upon this extended
portion and in consequence there is a tendency to
press the lateral edges of the nail into the grooves, which,
of course, is to be avoided at all costs.
5. No Lateral Cutting. In connection with the length
which the nail is allowed to retain, it is absolutely imperative
that no lateral cutting be done. Some cases of ingrown
nail have been observed in even very young children (in
one instance a baby of fourteen months). The primary
cause in every case was found to be the overzealous care
on the part of the parents to prevent just the condition
they had caused by injudiciously removing from time to
time the lateral edges of the sufferer’s toe nails.
6. Proper Boots and Hosiery. In addition to the various
means for preventing the recurrence of an ingrowing
nail, great care should be exercised in the selection of the
patient’s footgear.
Shoes of sufficient width and length should of course
be advocated so that at no time will the toes be cramped by
any degree of pressure.
The wearing of a pointed boot or slipper in which there
[Pg 236]is not sufficient width at the ends of the toes to allow those
members proper latitude, should be discouraged. When
footgear is worn in which this cramped condition of the
digits is brought about, it will be generally found that the
soft tissues lying adjacent to the lateral edges of the nail are
crowded up alongside the latter and an enlarged and thickened
flap, which is the cause of so much trouble, is formed.
Lace boots are probably the most practical of any in that
they may be firmly fastened about the ankles and over the
instep, and thus prevent the foot from sliding forward and
coming in contact with the toe of the boot. Pumps of all
varieties are without a doubt the most detrimental footgear
worn today—for they have absolutely no support or anchorage
at the ankle and, in some cases, patients find themselves
flexing the toes in the endeavor to retain the slipper on the
foot.
Hosiery, too, should be neither tight nor short, as a
short stocking or sock may cause pressure upon the toe
nails and so be the forerunner of trouble.
[Pg 237]
CHAPTER XV
DISEASES OF THE NAILS
The nails of the hands and feet are subject to various
diseases. The chief of these are:
Onychocryptosis, or ingrown nail.
Onychophosis, or calloused nail groove.
Onychia, or inflammation of the matrix.
Paronychia, or inflammation around the nail.
Onychauxis, or club nail.
Onychatrophia, or atrophy of the nail.
Onychoptosis, or falling off of the nail.
Onychorrhexis, or brittle nail.
Some of these diseases of the nails are the result of a
general systemic disturbance, but only the local treatment
of such conditions becomes the province of the podiatrist.
It is often necessary to distinguish between a local
chiropodical condition and a local manifestation of some
serious systemic disease; it is then necessary for the medical
practitioner and the podiatrist to join hands in
making a diagnosis for the proper guidance of both practitioners.
Onychocryptosis, or ingrown toe nail, is a common affliction
of the nail, and is thoroughly described in a separate
chapter.
Derivation. From the Greek, onyx, nail, and krypto,
I hide or conceal.
Onychophosis, or calloused nail groove, is also one of
the common types of nail lesions, and is discussed separately.
This lesion is often mistaken for ingrown toe nail, and
treatment, improperly directed, often causes bad results.
[Pg 238]
Onychia or Onychitis is an inflammation of the matrix
with suppuration and final shedding of the nail.
Derivation. From the Greek, onyx, nail, and itis, inflammation.
Etiology. Onychia may be due to trauma, causing malformation
of the nail, and subsequent inflammation, but is
most usually due to bacterial infection. Removal of ingrown
toe nails under septic conditions, or the entrance of
bacteria through self-inflicted or other wounds offer opportunities
for infective processes on a part of the body none
too clean at best. Syphilis, tuberculosis and eczema are
also often etiologic factors.
Pathology. Bacterial infection or trauma causes the
nail matrix to become inflamed, with the accompanying
pathologic changes that occur in all inflammatory processes.
There is a gradual solution of the continuity between the
nail proper and the matrix, and as the degenerative processes
continue, namely the formation of pus and the solution
of the tissues which comprise the matrix, the grooves
in the nail matrix, which hold the corresponding ridges of
the nail, are lost and the mechanical union of the two parts
cease. The nail subsequently falls off. If the entire matrix
has been destroyed, no new nail will grow, but this does not
usually occur. Malformation of the new nail is quite common,
due to partial destruction of the matrix.
Diagnosis. The matrix of the nail is inflamed and severe
pain is felt when pressure is brought to bear on the
nail plate. The nail bed and the nail grooves are often involved
and the inflammation may continue to such an extent
as to involve lymphatics and cause destruction of a
large area of tissue.
Pus forms at the root of the nail, and the nail itself
gradually becomes loosened from its bed. In cases due to
injury or local infection, one or two toes may be involved,
but when the cause is of systemic origin, all of the nails,
including those of the hand, may become infected.
Treatment. The treatment of simple onychia consists
[Pg 239]in protecting the part from further injury and irritation
and it often becomes necessary to cut the shoe to accomplish
this. In severer cases, shoes should not be worn until resolution
commences.
Wet dressings are valuable, Burow’s solution or boric
acid solution being all that is necessary in mild cases.
When pus manifests itself, it is necessary to remove the
nail over the abscess and to establish free drainage. Wet
dressings of bichloride of mercury (¹⁄₅₀₀₀) for 48 hours
may be used, and when drainage is complete, the cavity may
be swabbed with silver nitrate, 5 to 10%. Dry dressings of
thymol iodide or boric acid powder will usually suffice to
complete a cure.
The parts should be packed with sterile gauze so as to
keep the soft tissues separated from the nail and to prevent
irritation and pressure. This packing should not be too
tight otherwise pus absorption with subsequent infection,
is likely to occur.
In extreme cases, in which the surrounding tissues are
involved and destruction has gone on to a greater extent, the
entire nail must be removed, and the matrix destroyed by
caustics or by curettage.
Paronychia, or Paronychitis, is an inflammation of the
tissues around the nail, and may involve all the tissues of
the distal phalanx, including the bone.
Synonyms. Felon, panaris, whitlow.
Derivation. From the Greek, para, beside, and onyx,
nail.
Etiology. Paronychia is usually caused by local bacterial
infection, due to treating the nail grooves with
unclean instruments, or it may be of systemic origin. It is
often associated with onychia and in these cases is due to
a spreading of the inflammation of the matrix to the surrounding
tissues. Pressure of an ill-fitting shoe or stocking
or of a foreign body may be a cause, and ingrowing
toe nail may later develop into a paronychia. Syphilis
often causes this lesion.
[Pg 240]
Pathology. The pathology of paronychia is much the
same as that of onychia. The tissues surrounding the nail
become inflamed, either by bacterial infection or by trauma,
and all the signs and symptoms of inflammation manifest
themselves. Swelling is marked and pus may or may not
be present. Tissue destruction continues unless proper
treatment is given, and the bone is often involved, causing
periostitis or osteitis.
Diagnosis. Simple paronychia may exist without any
hypertrophy of the nail itself, and may be due to pressure
of a shoe or to a chronic ingrowing toe nail. The great toe is
most commonly affected. The inflammation may be only
slight and superficial, or it may be quite severe with great
pain and swelling, terminating in a general intercellular infection
with suppuration. Nourishment is interfered with
and the nail may be shed much the same as in onychia. Pain
is of a throbbing type which is immediately relieved when
the abscess cavity is opened and the pus drained.
Treatment. Like onychia, paronychia should be
treated with wet dressings and stimulating medications.
In cases in which there is no suppuration, the following ointment
will give good results:
℞ Acidi salicylici
grs. X
Ung. hydrarg. amm.
Oz. 1
M. ft. ung. Sig. Keep on affected part constantly.
The corners and lateral edges of the nail should be separated
from the soft tissues by means of sterile gauze, or
they may be removed. Pus should be drained, with the assistance
of antiseptic wet dressings such as bichloride of
mercury, ¹⁄₅₀₀₀, and if excessive granulations are present,
they should be snipped off or destroyed with silver nitrate.
If necessary, free incisions should be made, which will relieve
the pain as well as assist in draining the pus.
In chronic paronychia it often becomes necessary to
remove the entire nail, including the root, and under local
anesthesia, this is easily accomplished. Rest is essential in
[Pg 241]these cases, and after suppuration has ceased, stimulants
such as balsam of Peru or ichthyol may be used to good
advantage.
In cases of paronychia, due to syphilis, it must be remembered
that the treatment must be constitutional as well
as local and the family physician of the patient should attend
to the former feature
of the treatment.
Mercurial ointments,
applied twice daily, are
usually employed locally.
ONYCHOGRYPHOSIS
Onychauxis, or hypertrophy
of the nail, is
an overgrowth or enlargement
of the nails
of the fingers and toes.
When the hypertrophy
is accompanied by deformity,
the condition
is called onychogryphosis.
Derivation. From
the Greek, onyx, nail,
and auxe, increase.
Etiology. Enlargement
of the nail is a result
of hyperplasia of
the papillæ of the matrix,
the thickening occurring
at the base, front, lateral edges or over the entire
area of the nail depending on the part diseased.
Pressure is no doubt a causative factor, and lack of
care of the nails will also cause a thickening. Injury to the
matrix will cause the nail to become hypertrophied, producing
in most cases a true club nail (onychogryphosis).
Chronic cutaneous lesions, such as eczema or psoriasis
[Pg 242]and other diseases such as syphilis, gout and rheumatism,
and nervous diseases or injury to the nerves supplying the
nails, may act as causes for onychauxis.
Pathology. Pressure or injury causes a widening of
the nail fold which allows the formation of a thicker nail.
The nail bed is irritated at the same time and a horny mass
forms on it below the nail, which acts as a barrier to the
forward movement of the nail cells, and by raising them
up, determines more or less, the degree of deformity. The
papillæ of the matrix become enlarged, and may be seen
protruding above the normal structure, when the nail is
removed.
The thickened and deformed nail thus produced, is
often the cause of other nail lesions, due to its pressure on
the soft tissues. Bacterial infection is also common at this
point, due to the fact that the mass of epithelial cells is
a good breeding place for microorganisms.
Diagnosis. Onychauxis may be congenital or acquired,
usually the latter. Simple hypertrophy of the nail is rarely
found, but overgrowth with deformity is quite common.
The nail becomes hardened, due to a closer cohesion of its
component cells; its transparency is lost, and it assumes
a dirty brown or even black color. The surface becomes
rough, due to the presence of longitudinal and wavy transverse
ridges.
One or all of the nails may be affected; there may be a
simple thickening or there may be a lateral overgrowth,
which may result in paronychia. The inflammation may
be slight or it may be severe and purulent. The nail, as it
continues to become thickened, may assume various shapes
resembling claws, talons, horns, etc. The big toe nail is the
one most usually affected and often only the one foot is involved.
This is indicative of a traumatic etiology.
Tuberculosis patients have a moderate onychauxis in
most cases, particularly on the nails of the fingers, while
hypertrophy is often seen in the inflammatory lesions such
as eczema, psoriasis, etc.
[Pg 243]
Older persons are more liable to be affected with hypertrophy
of the nail than younger persons, as there is a natural
tendency to epithelial overgrowth in the aged.
ONYCHAUXIS
Treatment. To affect a cure in case of hypertrophy
of the nails it is necessary to recognize the cause. Thus,
in cases of onychauxis, in which the general systemic condition
is at fault, treatment must be directed by the family
physician along constitutional lines and includes the taking
of tonics, arsenic, mercury, etc. If a cutaneous lesion is
the etiologic factor, it becomes necessary to treat the case
both generally and locally. If the cause be an external one
alone, local treatment is sufficient. For these latter conditions,
the treatment is divided into palliative and radical
procedures.
The palliative treatment consists in keeping the nail
properly cut. For this purpose, the rotary file, or surgical
drill, as it is called, is very efficient. Suitable burrs are
used, and care is taken that the skin of the nail grooves is
not injured. Infections are easily caused through the careless
use of this instrument. After the nail has been thinned
and is as nearly like a normal nail as is possible, the part
[Pg 244]should be cleansed with alcohol, and tincture of iodine (4%)
should be applied. The grooves may be packed with sterile
cotton and covered with collodion (cocoon dressing) which
will avoid any tenderness that may be felt after the nail has
been cut down. The hard nails may also be softened by the
application of sodium sulphide or liquor potassae and when
softened, may be scraped away.
If thickened or club nails become very painful, it is
often necessary to resort to radical measures, as this is
the only permanent cure for this trouble. The entire nail
must be completely removed under local anesthesia, and
subsequently the entire nail matrix should be thoroughly
scraped away by means of a sharp curette. The wound
thus produced is kept in sterile dressings and is allowed
to heal by granulation. It is quite common to find
only a small area of the matrix that is vital, particularly
in chronic cases of club nail, so that curettage is really a
simple procedure. A complete cure should be effected in
from two to three weeks, the patient being able to walk with
a cut-out shoe two or three days after the operation.
Onychatrophia, or atrophy of the nails, is a condition
in which the nails of the toes and fingers become smaller
and often are shed from the grooves in which they are contained.
Derivation. From the Greek, onyx, nail, and atrophia, atrophy.
Etiology. Atrophy of the nails may be caused by any
one of many factors, among which are the inflammatory
skin diseases, nervous diseases, constitutional disorders and
injuries.
Injury to the nail matrix causes complete or partial
cutting off of nourishment. If the nourishment is completely
cut off, the nail matrix will disintegrate and cause the
nail to be shed. New nails usually grow in these cases. If
the injury is less severe, there is only a temporary arrest
in the nail growth, and the nail becomes thin and small discolorations
are seen in the nail substance.
[Pg 245]
Inflammation of the soft tissues around the nail which
is accompanied by suppuration, may cause atrophy and
shedding of the nail. The nail will grow again as a rule,
but often when the etiology is systemic, the new nails shed
as soon as they are formed (onychia maligna).
In nervous diseases, such as cerebral paralysis, tabes
dorsalis, syringomyelia, leprosy, division of the nerves, etc.,
from the vasomotor disturbances due to the nerve lesion,
a bleeding may occur about the posterior nail fold, and
atrophy of the nail may result. The nails, as a rule, usually
grow again.
In stasis of the blood stream in the extremities due to
heart lesions, in venous congestion from emphysema, or in
any lesion in which the circulation is impaired, the nails
may undergo atrophy, particularly the nails of the fingers.
Diseases causing scarring of the nail matrix, such as
pustular syphilides, gummata and variola, give rise to a partial
destruction of the matrix and a shedding of the nail.
Subsequent scarring may completely destroy the matrix, so
that no new nail can grow.
In systemic diseases that cause wasting of the tissues,
such as chronic tuberculosis, nephritis and diabetes mellitus,
the matrix is usually under-nourished and the nails become
discolored, soft and brittle, and often crumble.
Chemical poisons, such as arsenic, silver and lead, may
cause atrophy of the nails. Those who work with chemicals
and are compelled to put their fingers in acids and in alkalies
often develop brittle, opaque nails. In general toxemias,
the affliction of the nail is caused by interference with
the nail nourishment at the matrix.
Pathology. When the nourishment of the matrix has
been interfered with, the cells do not develop as rapidly as
they should, and the nail becomes thin and streaked. The
lustre is lost and the nails become gray or yellow, and often
also become brittle. If the grooves in the nail bed are destroyed,
the mechanical attachment between it and the nail
is lost and the nail is cast off. Infective processes cause
[Pg 246]complete or partial destruction of the matrix by solution,
and this in turn causes complete or partial loss of nail.
White spots (leuconychia), said to be due to the entrance of
air under the nails, are often seen, and gradually move
toward the distal end of the nail.
Diagnosis. Atrophy of the nails may be congenital or
acquired, the former being rare and usually accompanied
by imperfect development of the phalanges and scantiness
of the hair throughout the body (alopecia universalis). Acquired
atrophy in some form is the usual condition.
The nails present various appearances. They may be
thin, soft, brittle, lustreless or opaque, split very easily,
may be streaked or even worm-eaten in appearance. One
or all of these conditions may be present. Thinning and
splitting of the free ends may accompany systemic diseases,
and some chronic inflammatory (especially scaly) skin lesions.
Some nails are thinned at the ends with a central fissure
extending toward the root. Transverse thinning or
furrows are met with in fevers. The nails are always affected
when nutrition has been lowered, due to depression
of the general health.
In wasting diseases, such as chronic tuberculosis,
diabetes, etc., the spoon-nail is observed. This is a condition
in which the lateral and free margins are raised, leaving
a spoon-like depression in the centre.
Trauma, parasites, lowered nutrition and nervous diseases
cause a crumbly, brittle nail. This is fairly common,
and may be limited to one or more nails of the toes and
fingers or it may be general. The atrophy may begin at
either end, and extend forward or backward.
Treatment. Treatment of a local nature is worthless
if the cause be systemic. Much like hypertrophy, the cure
of atrophy depends on an exact determination of the etiology.
Systemic treatment along proper lines will usually
effect a cure. Local treatment consists in protecting the
nails from irritation and sometimes even from water. The
nails should be cut even and smooth and mollifying ointments
[Pg 247]and lotions are advisable. Cocoon dressings are
very efficient for affording protection. In atrophy, due to
local circulatory interference, balsam of Peru (50%), in
castor oil, or even pure, will stimulate nail growth. This
should be applied once a day and can be retained by cocoon
dressing. As a soothing agent the following may be employed.
℞
Acid. boric.
Bismuth. subnitratis
aa
0.60
Ung. aquae rosae
Unc. zinci oxidi
aa
16.00
M. Ft. ung. Sig. Apply to the nails morning and night.
Onychoptosis, falling off of the nail, and Onychorrhexis,
brittle nail, are atrophies and have been discussed
as such in the preceding sub-head.
[Pg 248]
CHAPTER XVI
FISSURES, BLISTERS, AND BURNS
FISSURES (Fissura)
Definition. Fissura or fissures, as used in this sense,
are cracks or clefts in the surface of the skin, some involving
only the epidermic layers, some penetrating deep into
the corium.
Etiology. Fissures occurring on the foot, due to
trauma, are far in the minority as compared with those occurring
as secondary lesions in hyperidrosis, uric acid diathesis
and other systemic conditions. They are usually due
to a too strenuous drying of the interdigital surfaces with
a rough towel. They may also be caused in like locations by
excessive walking, but the condition of the skin of the patient
has much to do with their formation. If the skin be
dry and a great amount of its elasticity is gone, these lesions
are much more prone to develop than where the skin tension
is practically normal. The interdigital toe webs are often
cracked or fissured in spreading the toes too far apart, and
this has been caused, at times, by the podiatrist working
between the toes and stretching them to obtain room for
his instruments or dressings.
Treatment. The natural treatment for a condition of
this kind would be to obtain astringent action. This may
be accomplished by a number of drugs, principal among
which is silver nitrate. Tannic acid preparations are also
frequently used, but they cannot compare in efficiency with
the silver salt. A number of mild vegetable astringents of
the same group are similarly employed by podiatry practitioners.
[Pg 249]
If the fissure is superficial, involving only the epidermic
layers, compound tincture of benzoin, painted freely over
the parts, after they have been thoroughly cleansed and
dried, will be found advantageous in inducing rapid healing.
Dusting powders such as tannoform, bismuth subgallate,
bismuth subnitrate and thymol iodide, may also be successfully
employed in these
cases, but where the
fissure is deep, the
edges angry and red,
and the whole area is
involved in the inflammatory
process, none of
these are, as a rule, of
avail, and more radical
methods must be employed.
Nitrate of silver presents
the most efficient
means whereby astringent
action may be obtained
in the parts.
Weak solutions, from
1% to 10%, are most
generally employed, but
it is often found necessary
to use stronger
solutions, even as high
as 50%.
FISSURED TOE WEB
Technic. The parts
are first thoroughly cleansed and any callous around the
edges of the fissure is carefully and completely removed.
This is an essential procedure, for no lateral granulation
will take place, nor can direct apposition be obtained if this
callous be allowed to remain.
Small particles of material from the hosiery or other
foreign bodies should also be thoroughly removed. The
[Pg 250]recesses of a deep fissure present excellent places of lodgment
for minute particles which are always to be found
in footgear, and it is these bodies which produce infective
processes. The above precautions having been observed,
alcohol, 60%, should be freely applied and the parts thoroughly
dried. Silver nitrate may then be painted deep down
into the floor of the fissure, by means of a cotton wound
applicator. This will produce some smarting, but it is transient
and there will be no great amount of irritation. The
silver solution should also be applied to the surfaces adjacent
to the edges of the fissure, for it must be remembered
that silver nitrate is sedative and this action is desirable in
reducing the local inflammation.
Where the fissure is deep and of long standing, it may
be found necessary to resort to a 25% or 50% solution or
even to the fused stick. When cases are observed where
proud flesh has developed in the fissure, due to continued
irritation, it is necessary to use the stronger solutions or
the stick at once. The proud flesh may be in such form as
to permit of surgical removal. Where this can be accomplished,
the bleeding stump is usually cauterized with silver
solution, 50%. If a surgical procedure is impractical, the
fused stick may be used to cauterize the neoplasm and thus
eradicate it.
A dressing should be applied over the parts after the
fissure has been treated. This may consist of several thicknesses
of gauze, fashioned to fit between the toes, if the
fissure be in that location; if the lesion be upon a plane
surface, a square of gauze should be applied and held in
place by adhesive strips.
A cocoon dressing may be substituted for that of gauze,
and in many instances will be found more practical. It has
been found necessary at times to apply some ointment or
grease over the fissured area to aid in softening the parts
and rendering them more flexible. Massage, at intervals,
with olive oil or mutton tallow, will also be found advantageous
in bringing about this result.
[Pg 251]
No dressing is applied over the parts after the use of
compound tincture of benzoin, for this drug forms its own
coating, which is practically impermeable. If a dusting
powder be used alone, the parts are first thoroughly dried,
whereupon the powder is dusted lightly into the fissure, and
a wisp of cotton is placed over the part and held in place
with collodion.
Pure ichthyol has also been found efficient in these instances;
a drop is placed in the fissure and is retained there
by means of cotton or gauze.
Astringent treatment, as described, should be continued
until the fissure has entirely healed, and in the use
of silver nitrate it will be found advisable to remove all
remnants of the previous application before the drug is
again used. The eschar is easily removed, but it must also
be remembered that in some instances it may be advisable to
allow the eschar to remain, and the wound to granulate
under its protective covering.
This article has been confined almost entirely to fissures
occurring in the interdigital webs for the reason that these
parts are their usual sites of occurrence. At times, however,
they do form in other parts of the foot—on the heels
along the sides of the foot, and on the ends of the toes. The
treatment in any locality is similar. When infection is
present it should be arrested; if proud flesh has developed,
that must be eradicated; in all cases astringent treatment is
necessary to a successful outcome.
BLISTERS (Bullae)
Definition. A blister is a collection of fluid in the skin
beneath the outer epidermic layers, which latter are raised
to form the upper wall of the sac, the base of the blister
being formed by the mucous layers of the epidermis or by
the corium.
Etiology. The cause of practically all blisters met
with in podiatry is traumatism. Those occasioned by the
[Pg 252]friction brought to bear on the surfaces of the foot by a new
or unyielding shoe predominate, but occasionally the podiatrist
is called upon to treat these lesions arising from a
burn. In discussing the subject of blisters under this heading,
those of traumatic origin only will be considered. Those
occasioned through burns, or superficial vesicular developments
of specific origin will be discussed in chapters dealing
with the disease or diathesis in connection with which
they may develop.
Pathology. The pathologic process causing the formation
of a traumatic blister is a simple one. Due to the constant
rubbing of a shoe, the superficial epidermic layers are
loosened up, one layer from the other, and, owing also to
this external irritation, the serous elements of the blood
are caused to leave the vessels and thence find their way
into the intercellular spaces caused by this loosening. Collections
of fluid of this nature are known as bullae or blisters.
The so-called “blood blister” is of a similar origin
except that the injury (in this case usually a severe trapping
or pinching of the tissue) is sufficient to cause the
rupture of one or more capillaries whose blood contents extravasate
into the overlying epidermic layers.
Usual Points of Location. Blisters developing upon the
pedal extremities are most common in the spring of the
year when people begin to wear Oxford ties or other styles
of low shoes. They occur principally upon the posterior
surfaces of the heel at the upper extremity of the os calcis,
or upon the tendo Achillis, just above this point, and are
caused by the rubbing of the stiff heel of the shoe upon
these parts.
Bullae are also often found to develop over or immediately
adjacent to the prominent extensor tendon on the
dorsum of the hallux. In these locations the stiffness of
the shoe in “breaking” over this point is found to be the
irritant agent.
Whilst the two foregoing locations are the most general
sites of occurrence, they are, at times, also found to
[Pg 253]develop upon the plantar surfaces, and in some instances
upon the ends or between the toes.
Treatment. The method of treatment to be accorded
these cases depends upon the condition that the affected
part may be in at the time of observation.
Ordinary Conditions. When the blister is found to be
unbroken and no great degree of inflammation is present,
the sac should be opened and its contents evacuated. This
is best accomplished by means of a fine-pointed, sterile
scalpel or bistoury. The blister is punctured through the
unaffected epidermis immediately adjacent to its base, and
thereupon gentle yet firm pressure is exerted until all the
fluid contents are evacuated.
Once the contents have been removed, thorough asepsis
should be inaugurated. The parts should be swabbed with
alcohol, 60%, and allowed to dry by evaporation, or be dried
with a sterile wipe. In dressing these conditions it must
be remembered that protection must be obtained as well
as granulation induced. Recognizing these to be important
factors in treatment, the choice of a proper dressing should
be carefully made.
The cocoon dressing (see “Dressings and Bandaging”)
is practical in these cases, as the cotton serves to afford
great protection to the parts and also to confine whatever
medication is to be applied as a curative agent.
Dressings of sterile gauze or surgeon’s lint may also
be used, and consist of a square of gauze or lint applied
over the part and held in place by means of adhesive strips.
The cocoon dressing may or may not be reinforced by
adhesive strapping, as the judgment of the operator determines.
If strapping becomes necessary in this connection,
half-inch or one inch width plaster is generally used.
The strips (each about three or three and a half inches in
length) are applied in the form of a triangle, binding down
the edges of the dressing. It is also found advisable to
avoid using too much collodion on the cotton. These dressings
should never be hard; it is, therefore, preferable to
[Pg 254]bind down the edges and then merely paint the collodion
in one narrow strip across and with the fibre of the cotton.
If adhesive strapping is to be used for the adherence of
gauze or lint, the one-half inch plaster is the most practical
in almost every instance.
The strips are each cut about three inches in length,
unless the size of the gauze or lint squares makes it desirable
to have them longer, and they are placed in rectangular
fashion over each of the four sides of the dressing. It
should always be the endeavor, when possible, to bind down
the edges of the fabric to the skin, and to accomplish this
the adhesive strips are made adherent, half on the dressing
and half on the underlying skin. This serves to hold the
dressing more firmly in place and also to prevent foreign
matter from getting under its edges.
Ointments are generally found to be the most advantageous
applications in cases of ordinary bullae. There are
several of these from which we may choose. Ammoniated
mercury, 10%, and ichthyol, 10%, are probably the most
generally used and are efficient.
Broken Conditions. In many instances the blister,
through neglect and improper puncturing, has become
broken and the affected epidermic layers are stripped off,
being attached at one point only, or are entirely gone.
The parts should be thoroughly cleansed with alcohol,
60%, and all loosened epidermis removed. Never leave any
flaps of skin about the edges of the denuded area, for they
not alone serve as excellent places for the lodgment of
hostile bacteria, but are also apt to curl up and, becoming
thickened, may irritate the denuded surfaces by pressure.
The lesion being thoroughly aseptic, a dressing should
be applied. If infection be already present in the part, the
treatment should consist of the application of wet dressings
of mercury bichloride, ¹⁄₂₀₀₀, or weaker, until all inflammation
has subsided. If no infection be present, a dressing
which will be protective, healing and sedative should be
placed over the parts. A shield is usually a necessary adjunct
[Pg 255]to every successful treatment in cases of this nature.
It will always be found advisable to have the aperture
of the shield sufficiently large, not alone to protect the denuded
area, but also to include some of the surrounding integument.
In locations about the os calcis region and along the
surfaces of the tendo Achillis, an oval pad of a soft grade
of felt is found to afford the best protection. In cases where
the blister has developed over the extensor tendon on the
dorsum of the great toe, a strip of white felt, about one
inch long and one-half inch wide, placed parallel to the
tendon, and of sufficient thickness to be higher than its
elevation, is found to be the most practical means of shielding
the affected area. An oval shield, if used in this latter
instance, should have a groove fashioned on its under surface
in which no adhesive is placed and which allows for
the free play of the tendon in movements of the foot.
The choice of an ointment, if one is to be used, should
be carefully made, for asepsis is to be at all times maintained
and granulation must be induced.
Ammoniated mercury, 10%, and sulphur, 10%, are to
be highly recommended as antiseptic ointments, and the
latter, in particular, has tissue stimulating properties.
Ichthyol, 10%, balsam of Peru, 5%, or scarlet red, 3%, may
also be used, the latter two where the lesion shows signs
of indolence and needs stimulation.
At times a dry dressing, either of plain sterile gauze,
or gauze, combined with a dusting powder, secures good results
in these cases. Thymol iodide and bismuth subgallate
probably lead the list in popularity but a very efficient
substitute is found in a combination of equal parts of
bismuth subnitrate and powdered calomel.
The areas should be thoroughly dried before any dusting
powder is applied. This is best accomplished by applying
alcohol and allowing it to dry by evaporation, which
may be hastened by blowing air upon the area. A practical
means of applying dusting powder is afforded by compressed
[Pg 256]air. Under low pressure any powder may be blown
from the nebulizer upon the parts in a thin and even coating.
Both the ointment and the dry dressing should be
changed in from twenty-four to thirty-six hours until complete
granulation is observed and the structures of the denuded
corium are entirely covered. Dressings which are
allowed to become stale and which harden, are apt to act as
irritant agents to the tender granulating surfaces and not
only retard normal healing but further break down the
tissues.
Cocoon dressings may also be employed to apply either
ointments or dusting powders, as just described for gauze.
They will remain in place for much longer periods of time
than will gauze or lint, but in these cases, as the dressing
must be changed daily, this is not an important consideration.
Prognosis. The tissue lost in blister cases properly
dressed and protected should be replaced rapidly and stimulation
is seldom found necessary. The course is active
but short. It is advisable to have the patient refrain from
wearing the shoe which originally caused the disturbance so
that no untoward irritation is brought upon the part during
treatment. After the epidermis covering is complete, it will
be found advantageous to paint the parts with silver nitrate,
50%. The eschar so formed will act as a protective agent
to the parts until the skin regains its normal strength.
BURNS
The podiatrist is not called upon to treat many burns
on the foot, and when these conditions are present they
are, as a rule, not extensive. The subject is so important,
however, and so much progress has been made in recent
years along the lines of burn treatments, that a thorough
knowledge of this subject is of great interest to the modern
practitioner.
Definition. A burn is a lesion caused by heat or by
[Pg 257]caustics. The lesion may be superficial in the tissue involvement
or it may have penetrated to the deeper tissues
and, if extensive, may cause permanent injury or death.
Pathology. Intense heat being applied to the surface
of the body destroys the vascular supply, and so shocks
the nervous sensibility of the part that the nerves are temporarily,
sometimes permanently, paralyzed. This causes
the tissue to slough and a more or less deep ulceration is
formed. The edges are found to be a dark, angry red in
color and the floor of the ulceration is usually a pale, unhealthy
yellow or white. In small areas the pain is intense,
while if large areas be involved to such an extent as
to include the main trunks, the parts rapidly become anesthetized
and gangrene ensues. Discharge from the ulceration
is generally profuse.
As the podiatrist will only come in contact with the
smaller burns the discussion in this chapter is confined to
their consideration.
Treatment. The burn, whether caused by direct heat
or by chemical reaction, is at first aseptic and this asepsis
must be maintained throughout the entire treatment. If the
burn is very recent, an immediate application of carron oil
(equal parts of linseed oil and limewater) will be found
to relieve much of the pain, and to keep the tissues in fairly
healthy condition. If this medication is not obtainable, a
paste of sodium bicarbonate will also prove efficient. All
air should be excluded as soon as possible, and many advocate
the application of a simple grease smeared freely on
the abraded surfaces. These are purely first aid procedures,
however, and have no part in scientific treatment.
After the acute pain has been reduced or entirely relieved,
treatment should be instituted which will at once induce
granulation and maintain asepsis. Strong germicides,
particularly those with toxic properties, should be studiously
avoided, for it must be remembered that the vitality
of the part has been severely shocked, even in a superficial
burn. Nothing must be done to retard the healing process.
[Pg 258]
Ointment or dusting powder dressings are advocated
in these cases, but the most efficient treatment lies in the
use of one of the newer paraffin preparations (see Dressings
and Bandaging). The method of application of these paraffins
is as follows and is the original technic as formulated
by Dr. de Sandfort, who is the originator of this method of
treatment:
Method of Use. Paraffins are used warm, consequently
in a liquid state (158°-176° F.).
Heating. Place a piece of the material in a bowl, tin
cup, or other convenient receptacle, set in any vessel containing
a little water, which should be kept on the point of
boiling for ten minutes.
Precautions to Be Taken.
1. Care should be taken to prevent the splashing of the
boiling water into the container holding the paraffin. When
the water begins to boil, reduce the temperature to avoid
drops of water being thrown into the wax. It must be
remembered that these compounds, completely devoid of
water (anhydrous), do not burn the tissues at 176° F., while
even the smallest quantity of water added would have the
contrary effect.
2. While the mixture is being heated, cut a piece of
absorbent cotton of sufficient size to amply cover the burned
area, and divide it into layers as thin as possible. At the
same time, have ready the gauze and band, needed to bind
and keep the waxen shell in place.
The Dressing. When the paraffin is in a liquid state,
and is at a temperature of from 140° to 150° F., take a soft
camel’s hair brush, dip it into the mass and spread it on
the wound, without pressing; that is, as much as possible
dabbing it on and not brushing it on. This operation is repeated
until the glazing is complete, taking care to leave no
spot uncovered. Immediately afterwards, place quickly on
the first wax glaze one of the thin layers of absorbent cotton
already prepared, as explained above, so that it becomes
[Pg 259]easily impregnated with the wax, and then, with the
same dabbing movement, brush on several more applications
of the paraffin.
If the wound is extensive, the operation is done on
small square surfaces, successively and close together
(about 4 by 4 inches). These little surfaces become, by the
application, part of one another. This proceeding is to
avoid the first coat of glaze, because it is essential to form
(on the whole surface of the wound) a shell uniformly
warm which keeps its warmth a long time, thanks to the
close attention of the wax with absorbent cotton. Two
layers of cotton can be applied successively, saturated with
the mixture, although this is not indispensable.
When the application is complete, the dressing is finished
by binding with ordinary gauze or cotton, kept in
place by bands. If desired, gauze can be replaced in part
by oiled silk, or even paper.
Note. In not following the precise instructions already
given, grave errors can be committed. Thus, should the
layer of absorbent cotton be applied directly to the wound
and afterwards covered with the first layer of the paraffin it
causes:
1. A very painful burning sensation. These applications
on a wound are very soothing, while cotton impregnated
with the paraffin applied direct to the wound causes
a distressing, burning sensation.
2. At the moment of removing the dressing, a pulling
and even tearing of the tissues is caused. If the wound
has not been previously glazed by an application of a first
layer of paraffin, as explained above, the cotton will adhere.
Removing the Dressing. For the first few days the
waxen shell must not be left in place for more than twenty-four
hours, on account of an abundant secretion of lymph,
which takes place beneath it. The sero-purulent liquid flows
under the wax covering (which proves that the waxen layer
does not adhere to the tissues like collodion, with which paraffin
has been wrongly compared) and exudes from under
[Pg 260]the edges of the dressing. After a few days, this exudation
diminishes and the dressing can be left in place for forty-eight
hours at a time and even longer.
To remove the dressing, untie the bands and take off
the ordinary gauze or oiled silk, thus exposing the “shell.”
An incision is made in the “shell” by means of a blunt knife
or scissors and it is easily peeled off. The dressing is removed
more easily than a glove. The wound is afterwards
bathed with boiled water and the cleansing is further perfected
by washing with absorbent cotton soaked in boiled
water. Then it is dried, either by a current of warm air
or by a piece of cotton wool, care being taken not to rub,
or cause the granulations to bleed. The new dressing is
not applied until the surfaces are thoroughly dry.
Important Recommendations.
1. In washing the wounds, antiseptic solutions must not
be used, unless extremely weak.
2. Anxiety need not be occasioned by the grey aspect
and fetid odor which emanates from the wound when the
waxen shell is removed. In fact, after this washing, it is
seen that beneath this purulent liquid, the tissues present
an intense vitality and an excellent appearance. In order
to properly proliferate the elements of healing, it even
seems as if they have need to bathe in this purulent liquid,
which might be termed auto-serotherapia.
3. In application, the wax should be brushed on with
strokes or daubs all directed the same way, and these should
commence at the top of the part and be carried downward,
never starting at the bottom and going upward.
After several days of treatment, skin granulation will
be observed, white spots appearing more especially at those
points, where the sero-purulent liquid has remained in the
greatest abundance.
Care should be taken not to apply paraffin at a temperature
of more than 105° F.
Contrary to the usual practice, the abundant granulations
must never be cauterized with nitrate of silver or any
[Pg 261]other caustic. In spite of their development, at times considerable,
little by little they begin to be strangled by the
regenerating elements of the skin, which finally replace
them.
In case of persistent atony of the wound or of excessive
growth of granulations, the paraffin treatment can be
interrupted every three or four days by a wet dressing
(water slightly alcoholized) for a period of twenty-four
hours. Paraffin treatment is afterwards resumed, which
the patient often requests himself, on account of the comfort
derived from the waxen shell.
After some days of treatment, there appears sometimes
on the healthy skin surrounding the wound an eruption
of sudamina, caused by the perspiration confined under
the waxen shell. To make it disappear, cover it with
an ointment of oxide of zinc, then powder with talc,
always continuing the paraffin application over the wound.
Conclusions.
1. Paraffin preparations instantly alleviate the pain.
2. They constitute a warm shell, a heat retainer, under
which the tissues, protected against outside contamination
and maintained at a temperature always constant, rapidly
heal.
3. They become non-adhesive after a short period, thus
rendering removal instantaneous, without pain, without
hemorrhage and without tearing the tissues of neo-formation,
thus permitting the integral healing of the tissues,
without apparent scars, without contraction of the skin or
of the tendons.
4. Without causing persistent and incurable functional
weakness.
Important. Heating these preparations in a bath of
boiling water raises the temperature to nearly 212° F.,
therefore, before applying to the wound, they should be
removed from the water bath and allowed to stand for a
minute or two so as to reduce the temperature below 105° F.
If an ointment be used, a bland healing type should be
[Pg 262]chosen. Among these ichthyol ointment, 5% to 10%, is probably
found to be as efficient as any, although zinc oxide,
10%, balsam of Peru, 5%, and various sulphur ointments,
3% to 10%, may be substituted with equal results.
On a freely discharging surface, of course, an ointment
is contra-indicated and a dusting powder must be resorted
to or merely a dry aseptic gauze dressing applied. The
dusting powders to be used are the two bismuth salts, subgallate
and subnitrate, although the latter is found to be
irritant at times; thymol iodide may also be used and its
antiseptic and healing action makes for its general popularity
in these cases.
The ointment or dusting powder is covered with a cocoon,
gauze, or lint dressing which is held in place by collodion
or adhesive strips, respectively.
The dressing should be changed daily until granulation
is complete. Burns are stubborn lesions to heal and
the podiatrist should not slight them in any way. They are
prone to infective processes, and the least neglect is apt
to cause the undoing of all that previous treatment has
accomplished.
[Pg 263]
CHAPTER XVII
BURSITIS
Bursae are closed sacs or pouches containing fluid,
found in all parts of the body, covering and protecting exposed
or prominent bony surfaces, and interposed between
tendons and parts over which they play. They serve as
protective cushions to prevent physiologic wear and tear.
There are two varieties of bursae found in the human
body: the bursae mucosae, those secreting a mucous or a
gelatinous substance, and the bursae synovia, those secreting
a thin, viscid substance, and which are similar in structure
to synovial membranes.
The principal form of bursae found in the foot is of
the synovial type and for this reason the treatment of this
variety is that discussed in this chapter. Bursae may be
either deep-seated or subcutaneous and the latter variety
are those which, through trauma, usually become inflamed
and troublesome in the regions of the foot. The deeper
seated bursae, however, often become involved in a pathologic
process, and the podiatrist is called upon to treat
these cases as well as those involving subcutaneous variety.
Definition. Bursitis is an inflammation of the bursa
sac. The inflammation may be acute, subacute or chronic.
Acute bursitis is a condition in which the general inflammatory
symptoms are active, the course short, and in which the
overproduction of synovial fluid has found an outlet and is
discharging on the surface of the skin. Subacute bursitis
is a condition in which the inflammation has not reached
a true acute stage, but in which it is more in evidence and
more active than in the chronic form. Chronic bursitis is
a condition in which the inflammation is long standing
[Pg 264]and of an inactive nature and where no great amount of
overproduction of synovia is in evidence. In chronic cases
the walls of the sac itself are generally found thickened and
leathery; where this condition occurs in the bursa over the
first metatarsophalangeal joints it is often inadvertently
called a “bunion”.
ACUTE BURSITIS
Etiology. Bursitis
occurring in the foot is
in nearly every instance
due to trauma. A blow,
a knock, a part being
stepped on, or the continued
pressure of an ill-fitting
shoe, may be the
exciting causes of this
disturbance. Malalignment
of a joint may
be a secondary cause,
such as would occur in
hallux valgus. In this
instance the deep-seated
bursa would be affected.
Bursitis would
hardly develop from this
alone, however, and the
exciting cause is found
in the pressure of footgear
or some other injury
to the part.
Location. As bursa
sacs are only found covering a bony prominence, or interposed
between the sheaths of tendons and muscles, or between
these structures and the skin, serving in each capacity
to prevent physiologic wear and tear, bursitis occurring in
the foot will be found in these locations.
The first and fifth metatarsophalangeal joints (metatarsophalangeal
bursitis); the interphalangeal joints of
[Pg 265]the toes (interphalangeal bursitis); the posterior and outer
surfaces of the os calcis (retrocalcaneal bursitis); and the
tarsometatarsal region on the dorsum of the foot (dorsal
bursitis) are the principal sites of occurrence. The base
of the fifth metatarsal is also a spot over which bursal
inflammation will occasionally develop.
Pathology. The pathology of bursitis is primarily that
of any inflammation. Due to trauma, the parts are subjected
to a severe irritation which causes an engorgement of blood
in that location. Serous infiltration of the tissues takes
place and the functional activity of the sac is increased. Materials
from the blood for the production of synovia, are secreted
in abnormal amounts, and in consequence the sac becomes
distended from the superabundance of fluid. In time
this fluid must find some outlet, for synovia is secreted so
rapidly that the lymphatic system cannot absorb the excess.
This outlet must naturally develop toward the point of least
resistance, which, in these cases, is outward toward the
periphery. The tissue is broken down to a small extent
and a minute sinus is formed which permeates the tissues
and opens upon the surface of the skin. From the peripheral
opening the excess of fluid is thrown off, and when this
stage is reached the distension in the part is naturally lessened
and the patient is fairly comfortable.
Symptoms.Objective Symptoms. The parts will be
found considerably swollen, red and hot. Loss of function
is noted and fluctuation is present.
Subjective Symptoms. Pain on slightest pressure and
at times upon forced movements; impaired function; heat,
and a feeling of fullness or distension in the part.
Characteristics. The characteristics of bursitis,
whether acute or chronic, are so plain that no error in diagnosis
should ever be made. However, many of these cases
are mistaken for suppurated helomata, probably through the
fact that both are conditions in which a discharge is present.
Why this error should be made is a mystery, for while it is
true that there is an exudation in both instances, the characteristics
[Pg 266]of the discharges are so different that only a
careless or inexperienced person could mistake one for the
other. The important characteristics are:
(1) The distension in the bursa sac proper causes a
swelling of the parts adjacent and superjacent so that the
whole area over and around the affected part will be found
enlarged and puffy. Fluctuation is present and often the
sac itself may be grasped in the fingers, so distended are
its walls.
(2) Removal of the overlying calloused area, should one
be present, brings to view the sinus opening, in the acute
stage. The tissues are blanched in appearance and are
leathery and hard to digital or instrument touch. The opening
of the sinus is usually very small and its edges are circumscribed
and even. The sinus itself has the appearance
of a healthy granulating surface and at no time is there
apparently any membranous lining. Probing will determine
that the sinus follows an almost vertical course with
no sub-borrowings or offshoots in any direction. There is
no loss of tissue upon the surface of the skin, such as would
be found in connection with an heloma involved in a suppurative
process, except at the opening of a canal.
(3) Digital pressure exerted laterally and anterio-posteriorly
usually is rewarded by the oozing of a thickish,
viscid, almost colorless fluid from the sinus opening. There
is nothing in the appearance of this fluid that should lead
one to mistake it for pus. Very often this fluid oozes from
the part of its own volition, due probably to the pressure of
the excess fluid in the sac beneath. The fluid causes no active
decomposition of hydrogen dioxide and the ebullition caused
by the contact is almost negative. This constitutes one
more point of differentiation between the changed synovial
fluid discharged from an acute bursitis and a pyogenic exudation.
Treatment. The treatment of bursitis varies according
to the degree of inflammation, and the general conditions
present. We may divide the treatment into three
[Pg 267]classes: the radical operative, the non-radical operative,
and the palliative. The first mentioned is a purely surgical
procedure, complete in itself, and consists in the removal
or curettage of the inflamed sac. The last two are usually
combined and are procedures which are generally practised
by the podiatrist.
The Radical Operative Treatment. Under proper
aseptic conditions an incision is made in the overlying tissues
and the sac is removed in its entirety; the parts are
then sutured, and a few days rest and elevation of the foot
brings complete union. This method may be varied in that
the sac is not removed, but a free incision is made into it
and the parts thoroughly curetted. One other of the purely
surgical procedures is to make a free incision into the sac
to accomplish thorough drainage. This latter procedure is
generally practised in cases of infected bursitis.
Inasmuch as the non-radical operative and the palliative
methods of treatment are purely podiatry procedures
and are usually combined, they will be discussed as one
subject.
The Non-Radical Treatment. There are several methods
by which bursitis in its various stages may be successfully
treated. They vary in some details but all agree on
two most important points: rest and the absence of pressure.
A bursitis developing over a bony prominence upon the
foot, usually occurs in connection with some form of superficial
callosity or an heloma. The inflammation of the sac
may be due to the neglect of a growth of this nature, or,
as previously explained, to some distinct injury to this part.
To successfully treat a condition of this nature it is
found necessary at all times to accomplish the removal of
the excrescence. This is done in the usual manner by either
the shaving or dissection method. These growths must be
removed for several reasons:
(1) To remove all hardened and thickened epidermis so
that no further irritation from that source will be present.
[Pg 268]
(2) To allow the operator a chance to effect drainage
for the overproduction of bursal fluid.
(3) To allow the medications used to come in direct
contact with the underlying tissues without the necessity of
penetrating several layers of epidermis and expending their
action upon and through them.
Under proper aseptic conditions, the superficial thickened
epidermic layers are removed and the excess fluid
is allowed to drain off. It will often be found that the callous
forms a “plug” which extends down into the surface
opening and prevents this excess fluid from being thrown
off. Once this drainage is accomplished, other procedures,
dependent upon conditions present, should be utilized for
the alleviation and cure of the bursitis.
Rest. By far the most effective means of bringing
about a speedy cessation of the inflammation occurring in
the bursa sac is to procure absolute rest for the part involved.
It has been noted that in a number of cases when
no medical or surgical treatment has been afforded, inflammations
of this nature resolve themselves speedily upon
complete rest. There is nothing remarkable or supernatural
about this for inasmuch as the bursa is only used during
the movements of a part, it is easily understood why a
trouble of this nature will clear up rapidly if the part is
kept immobile.
Removal of Pressure. There are many cases of bursal
inflammation which occur in people who are not able to lay
up and give complete rest to the affected part. The next
most effective measure in these cases is the judicious and
proper use of shielding. In applying a shield to a case of
this nature it should always be remembered that the parts
affected are usually swollen to a considerable extent around
the tissues immediately overlying the sac itself. For this
reason a shield such as would be employed for the protection
of an heloma in a like situation, is not practical. This
is more particularly the case where the bursitis is located on
one of the interphalangeal joints of the toes. In this location
[Pg 269]an individual shield which is to rest on the affected
toe alone cannot be applied, for the whole area overlying
the inflamed sac will be found swollen and leathery and the
tissues anterior and posterior, as well as those covering
the interdigital surfaces of the toe, are ordinarily more or
less involved in the general inflammation. In this instance,
then, we must resort to some sort of shielding which will
take the shoe pressure from the part, and yet which will be
distributed over the whole digital surface and not on the
diseased toe alone. A dorso-digital oval or crescent shield
(see chapter “Shields and Shielding”) answers the purpose
and is entirely effective in most instances.
Probably the most practical method of removing all
pressure from the inflamed areas is to have a circular portion
of leather immediately overlying the part removed
from the shoe and another softer piece adhered over the
opening. The appearance of this will be inconspicuous
and the small pouch thus formed allows the patient to wear
a shoe, affording comfort, which, however, exerts no pressure
upon the lesion. It is wise to remove a piece of leather
considerably larger than the circumference of the affected
part, otherwise the edges of the aperture cut in the shoe
may become depressed and press upon and irritate the
already inflamed areas.
Strapping. Enlarging upon the theory of rest, inasmuch
as complete absence of movement aids materially in
reducing the local irritation, strapping is a practical means
of immobilization.
This procedure, although used in these situations, is not
so practical in bursitis occurring over the first and fifth
metatarsophalangeal joints, or over the interphalangeal
joints, as it is in other locations upon the foot.
Adhesive strapping is applied in such manner and at
such tension as to accomplish almost complete immobilization,
and for this reason it will be readily seen that this
method cannot be used in cases where the added pressure
will produce additional irritation. Several lengths of adhesive
[Pg 270]plaster are placed over the part and adhered tightly
to the surrounding integument so that very little or no
movement is allowed in the affected part.
Strapping, to prevent movement, is particularly effective
when the bursitis has occurred in the os calcis region
between that bone and the tendo Achillis (retrocalcaneal
bursitis). The foot is placed in plantar flexion and a long
strip of 1¹⁄₂ or 2 inch plaster is anchored at the centre of
the upper part of the calf and is then carried down over
the heel on the plantar surface of the foot. This strip is
then reinforced by transverse straps applied over the heel
at the insertion of the tendon.
Aside from these general methods of procedure thus
discussed, the podiatrist must resort, in a majority of cases,
to local treatment which will hasten the ultimate resolution
of the inflammatory process. These local methods of treatment
are conveniently divided into six groups:
Hydrotherapy. Hydrotherapeutic measures may be
resorted to in the treatment of bursal inflammations and
either thermal extreme may be used with equal results. As
one person will react to one extreme more readily than to
the other, the choice of heat or cold usually depends upon
the individual case.
Hot Applications are probably most practical in these
instances in the form of compresses. Several thicknesses
of gauze, saturated in water, as hot as can be borne, are applied
over the affected areas, the hot water being replenished
as soon as the compress commences to cool. Hot applications
act as mild poultices and their action is similar
to them in a limited and modified form. They tend to hasten
[Pg 271]resolution of the inflammatory process by accelerating absorption.
It is unwise, however, to continue hot applications
for too long a period; it is found preferable to have
the patient apply hot compresses for periods of one hour
duration two or three times a day, allowing the part complete
rest in the intervals.
Hot compresses, applied continuously for some hours,
are apt to bring about an over-stimulation in the parts to
such an extent as to produce a slough. To be effective, it
must be remembered that the compress must be kept hot
for the entire period of application. This may be accomplished
by immersion in hot water, by moistening intermittently,
or by keeping the compress covered with some heat-confining
covering. In the latter instance, oiled silk is in
all probability the most practical agent, but even the use
of an impervious covering does not relieve the patient of
the necessity of remoistening the compress with hot water,
at frequent intervals.
INFECTED BURSITIS
Cold Compresses, as here advised, are either applications
of cold water on a compress of gauze or some similar
material, kept constantly wet, the use of ice bags or packs,
or a cold water drip. The surfaces of the foot, particularly
[Pg 272]if the bursitis be on the toes, are so small, however, that as
a general rule, ice bags or packs are not practical. The cold
produces anemia of the parts by contracting the calibre of
the blood vessels, and forcing the blood from the capillaries.
They also tend to anesthetize the nervous sensibility and
are in that way also pain reducing. There is one bad feature,
however, in the use of cold as a hydrotherapeutic agent.
The resulting reaction, which is generally bound to occur,
gives the patient considerable annoyance and is apt in time
to increase the infiltration and distension in the part.
Again, should the patient have any tendency toward chilblains,
the moist cold is almost always sure to develop the
tendency into a reality.
The Poultice is the older and now obsolete method of
applying moist heat to a part. The stimulative action of
this form of application is at times so severe as to cause
deleterious effects upon the diseased tissues. A cataplasma
should never be used where a distinct loss of tissue is in
evidence, in the presence of pus, or where the vitality of the
parts is considered to be subnormal, either from the age or
condition of the patient, or because of the diseased condition
of the part.
The most generally used materials in this connection
are flax-seed, and slippery elm, and the most practical manner
for preparing a poultice for use in podiatry is to make
several small bags (about two or three inches square) from
cheesecloth or some like material. These are filled half full
with the meal and are dropped into a vessel containing
boiling water. The bags and their contents are allowed to
boil for eight or ten minutes and are then applied to the
part as hot as can be borne. This method does away with
the rather “messy” procedure of laying a cloth on the part
and then applying the warm mass by means of a spatula,
spoon or like implement; also the poultice, so made, may
be used again and again. The usual method of procedure
in using poultices, when recommended, is to have the patient
apply them continuously for about an hour during some
[Pg 273]part of the day. It is found much more effective to have
moist heat applied for a longer period at one time than
to apply three poultices a day, one in the morning, one at
noon, and the last at night. The patient removes one bag
as soon as it starts to cool and replaces it with another
taken hot from the boiling water. This form of treatment,
of course, tends at first to increase the overproduction of
synovial fluid, and proper drainage must at all times be
preserved so that this excess may be carried off.
Baking. With the development of the modern baking
apparatus, this method of applying heat to a part has come
into use in cases of subacute or chronic bursal inflammations.
The heat applied by this means is dry, in contradistinction
to that obtained from hot applications of water
and from poultices. As the synovial bursae are of similar
structure to the true synovial membranes of the joint cavities
and capsules, they are subjected to similar ailments. It
stands to reason, therefore, that if baking is beneficial in
several forms of arthritis, it is also beneficial in some forms
of synovial bursitis. Some podiatrists have baking apparatuses
installed in their offices; where this is not the case it
is recommended that, when such treatment is thought advisable,
the patient be sent to some hospital or institute where
this treatment can be administered. Baking serves as a
hyperemic agent (to bring an abnormal supply of blood to
the part) and in this way to aid in the more rapid absorption
of the exudates in the affected region.
Moist and Wet Dressings. In conditions of acute bursitis,
an efficient means of reducing the inflammatory symptoms
is found in the use of wet dressings. Moist dressings
(those with mackintosh protection) should not be used in
these cases when the skin is broken, when there is any suspicion
of a discharge, or where infection is present.
The agents which may be used with such wet dressings
are mercury bichloride, liq. aluminum acetate, saturated solution
of boric acid and alcohol, equal parts, and lead and
opium wash.
[Pg 274]
Mercury Bichloride may be used as a wet dressing in
all cases of acute bursitis, but more particularly where infection
is present. It should never be used with mackintosh
covering, for even without the confinement thus afforded,
its action serves to macerate the skin to a great extent.
The solution may be used either hot or cold and in no instance
stronger than ¹⁄₄₀₀₀. This strength solution should
only be resorted to in cases where the infection is acute and
has progressed to some extent, weaker solutions, ¹⁄₅₀₀₀ or
¹⁄₁₀₀₀₀, being found efficient in a majority of cases. Mercury
bichloride, on account of its toxic properties, should
not be used after the infective process has been reduced,
and there are many arguments in favor of an efficient substitute
for it even in the initial instance. However, no solution
which is practical for use in these cases can be depended
upon for beneficent results as surely as corrosive
sublimate. In chronic bursal inflammations, corrosive sublimate
is contra-indicated.
Liq. Aluminum Acetate can be used in place of bichloride
of mercury in many cases of acute bursitis. The solution
is decidedly astringent, and while this action is to be
desired at times, nevertheless it has been found detrimental
in the treatment of some cases of acute bursitis, because
when it penetrates through the sinus into the bursal sac it
has been found to create a decided irritation upon these
deeper tissues. Liq. aluminum acetate, therefore, is shunned
by many in the treatment of these cases, but aside from this
one detrimental feature, the action of the acetate is efficient
and is productive of good results. The drug may be used
plain, or diluted with sterile water to reduce its irritant,
astringent qualities. A dressing of liq. aluminum acetate,
like bichloride, should never be confined in a mackintosh
covering, as it will macerate the skin, quickly and thoroughly.
This solution is particularly effective in subacute
cases where no infection is present when its astringent
action goes far to reduce the infiltration in the parts. It
should be applied cold.
[Pg 275]
Boric Acid-Alcohol Solution may be used in all cases
of acute or subacute bursal inflammations. It is efficient
in septic cases and its quality of rapid evaporation aids
materially in reducing the inflammatory symptoms, independent
of the therapeutic action of the component drugs.
This solution, on account of its rapid evaporation, must be
renewed more often than either of the foregoing, but while
this demands more attention on the part of the patient, it is
immeasurably better for the general condition of the disease.
The one disadvantage in having the patients attend
to the moistening of the dressing is that often they will fail
to carry out instructions properly; but a condition of this
nature, properly attended, will respond as quickly to the
boric-alcohol application as to aluminum acetate or to mercury
bichloride, and with none of the irritant or toxic tendencies
of both of these. This solution is applied cold.
Lead and Opium Wash may be used in the treatment
of bursal inflammations, usually in the subacute or chronic
stages. In cases where the integument is broken, avoid the
use of this medication on account of the irritant qualities
of the lead it contains. Prolonged applications are apt to
develop a dermatitis, and if the skin is broken, local lead
poisoning will not only be more pronounced, but will be
manifest in a shorter space of time. Lead and opium wash,
hot, is an advantageous application in the treatment of
chronic bursal inflammations, the heated applications being
continued for about thirty minutes at a time, at intervals
of two or three hours. It should always be remembered in
using this wash that it exhibits marked irritant qualities
upon prolonged application.
The choice of a moist dressing to be used in subacute
or chronic cases, especially the latter, should be carefully
made. Boric acid, saturated solution, is an efficient and
safe drug to use under rubber, fish skin, or oiled silk covering
but, as before mentioned, mercury bichloride and liq.
aluminum acetate are contra-indicated in this connection.
Unguent Dressings. Ointment dressings are used in
[Pg 276]this instance under the same rules and considerations which
govern their application in all other conditions. No ointment
should be applied on any inflamed bursa where there
is a discharge of any nature. The operator must never
forget that the base of all ointments is either oily or fatty
and a serous discharge, coming from any surface, cannot be
absorbed by the fabric used as a dressing if even a thin
unguent film is interposed.
Certain classes of drugs, however, which are known to
be beneficial in certain stages in the treatment of bursitis,
can be readily applied in unguent form and for this reason
the question of using them may be profitably discussed here.
The action demanded of drugs to be used in the treatment
of bursal inflammations are antiphlogistic, analgesic and
antiseptic. The latter action is particularly demanded in
cases where surfaces denuded of epidermis are found.
Some stimulant action is at times desired and drugs which
have properties of this nature may also be included in this
armamentarium. The following named ointments may be
used, therefore, with beneficial results in certain stages of
bursal inflammations: ichthyol, sulphur, menthol, balsam of
Peru, scarlet red and salicylic acid.
Unguentum Ichthyoli, 3% to 10%, is used in all cases
where an emollient action is desired. The stimulating action
of the drug in this form is negative, but it can be relied upon
to reduce acute inflammatory symptoms. Ichthyol may be
combined best with either lanolin or vaseline as a base; the
former is preferred inasmuch as it does not become
rancid when exposed to a variety of conditions as does
the latter. Lanolin being a wool fat product is supposed
to have a beneficent action upon certain pathologic conditions
of the skin, and so it is used as the base of many
ointments.
Unguentum Sulphuris, 10%, may be used in many conditions
of subacute or chronic bursitis. Its antiseptic action
makes it a desirable choice for use when the integument
is broken or when a distinct antiseptic action, in addition
[Pg 277]to the general action of sulphur as an antiphlogistic,
is sought.
Unguentum Balsamum Peruvianum is used in these instances,
principally when some loss of tissue in the part is
noticeable and where stimulation is required to accelerate
granulation. Peruvian balsam is sometimes combined with
ichthyol (5% of each) in ointment form. In this combination
the ointment has marked stimulative and antiphlogistic
qualities. Balsam of Peru is used in strengths of from 3%
to 10% in a vaseline base.
Scarlet Red is a highly efficient stimulative ointment.
It is used alone, with zinc oxide or with borated vaseline,
and should never be applied in too thick a coating. The
parts should first be made thoroughly aseptic and dried,
and then scarlet red applied on gauze in a thin even coat.
Care should be taken that the application of scarlet red does
not cause over-stimulation to the parts, and thus prove detrimental
to the general condition of the lesion.
Unguentum Acidi Salicylici, 2% to 5%, may be used to
good advantage where the parts overlying the thickened
sac are found to be somewhat calloused. One application of
an ointment of this strength will serve to disintegrate this
overlying thickening, thus making the parts flexible and
soft. A stronger ointment than this should never be used
in these cases, as salicylic acid is a strong epidermic disintegrant
and will cause decided irritation if used in greater
than 5% strength. In such cases salicylic acid may also be
combined with collodion in the same percentage, 5 grains of
ext. cannabis indica being added as an anodyne. Unguentum
salicylic should never be used when the skin is broken or
the tissues show any tendency to thinness. All ointments
used in the treatment of bursitis are applied and kept in
place by the use of a cocoon dressing. If a shield is to
be used, it is first applied; the ointment is then placed
in the shield aperture and the cotton and collodion dressing
is made to cover the whole. The ointment should be
renewed at frequent intervals in order that the dressing
[Pg 278]may not become hardened, and thus become an irritant.
Counter-Irritation. Counter-irritation means literally
an irritation which is developed to act against a previous
irritation. It would seem, theoretically, that in cases of
bursitis, this form of treatment is particularly advantageous.
A bursal inflammation is a fairly deep-seated condition
which should readily respond to a counter-irritation
developed on the surface overlying the trouble. Counter-irritant
agents should be used only in subacute and chronic
cases, more particularly in the latter; for it is found that
this form of treatment applied to an acute bursal inflammation
tends to intensify rather than reduce the symptoms.
In treating such cases we have a number of counter-irritants
which may be used with consistently good results:
iodine, capsicum, turpentine and mustard, are the most important
and most commonly used.
Iodine is today, in all probability, the most generally
used agent to induce counter-irritation in podiatry. Its
present popularity as a germicide, however, has over-shadowed
its action as a counter-irritant.
To obtain the maximum counter-irritant action from
tincture iodine (U. S. P. 7%) it should be applied in a heavy
coat at frequent intervals until such time as the inflammatory
symptoms have entirely subsided. The continued use
of iodine after this has been accomplished should be avoided
as the tincture is irritant and mildly corrosive, and numbers
of patients will be found whose skin will not stand its
activities. Churchill’s tincture of iodine (about 16%) has
been advocated for general use as a counter-irritant, but
its action in many cases will be found too irritant for ordinary
use.
The theory of counter-irritation, simplified, is that a
drug applied at a spot more or less distant from an inflamed
area will cause an irritation in this new locality
and thus aid the original condition, inasmuch as it will draw
away the excess blood in the original part and allow the
vessels to contract to normal calibre and the circulation
[Pg 279]there to become normal. Realizing this, it is readily understood
why tincture of iodine should not be used as a counter-irritant
in acute cases. With a discharging sinus to contend
with, applying iodine over its opening at the periphery
might be the cause of a severe irritation in that location
which would further increase the tissue loss and thus prove
a detriment to the general condition.
Capsicum is generally applied in these conditions in the
form of a plaster. It should never be used in acute cases
as its greatest efficacy is apparent in those cases with
chronic characteristics. Capsicum plaster is applied and
renewed as necessary, until the symptoms of the deep inflammation
have subsided. Shields are usually employed
to remove the pressure while a chronic case is under treatment,
and this removal of all irritation which the shoe might
produce aids materially in the relief and cure of these conditions.
Turpentine may be massaged into the parts for the purpose
of counter-irritation although its action is at times
severe; it should never be used where the skin is broken
or where a discharge is present. It is not so desirable an
application as either of the foregoing for it is found impractical
to give proper massage to the comparatively small
areas which are affected in bursal inflammations.
Mustard has been recommended for use in cases of
chronic bursitis, either in the form of a moderate local application
or in a general foot bath. It is decidedly energetic
in action, and should be used with great discretion and care.
Every skin will not stand the action of mustard and for this
reason it is not advocated as a general counter-irritant
agent. Upon the failure of any of the other drugs mentioned
under this heading, however, it may be tried, and if
properly used, may prove conducive to good results.
Massage. Massage is at times a potent factor in aiding
absorption in chronic cases. There is no question but
that the stimulation afforded by this procedure is efficient
and will aid materially in returning the tissues to normal.
[Pg 280]
Some cases of bursitis which occur upon the foot, however,
are confined to such limited areas that massage is impractical.
Several drugs which are reputed to have great powers
of penetration are recommended as agents which can be
safely massaged into the parts and even if the action
claimed for them is overestimated, their use at least serves
to reduce the friction upon the surface tissues.
Many of the so-called “petrogen compounds”—drugs
in combination with petroleum (mineral oil)—are recommended
for use in these cases, and are undoubtedly of some
benefit. Petrogen iodine, 10%, and petrogen camphor, 5%,
(Wyeth) are the two most generally used, and have been
found to be productive of good results.
The compound is applied to the parts and then rubbed,
first lightly, then gradually increasing the pressure, by the
fingers and palm of the hand. It is found advantageous to
massage the parts at first with a circular movement, confining
the energy to the areas immediately overlying the enlarged
sac. After about five minutes, the pressure is increased
and considerable of the surrounding integument is
included in the massage. The direction of the finger movements
is then changed from a rotary one to a series of long
strokes under considerable pressure, first toward the diseased
sac, following as nearly as possible the blood supply
to the part, and then away from the sac, following the outgoing
vessels. This serves first, to increase the vascular
supply, and then to aid in its quick removal, and reduce
the congestion in the part. With this, the lymph activity
is also increased so that it helps to absorb the waste products
more rapidly.
Massage should be recommended as a daily treatment
and should be continued until all signs of infiltration have
disappeared. Perseverance is necessary, for in chronic
bursal inflammation, the changes are not noticeable nor
should they be expected to be rapid.
Electricity. Many forms of electrical application are
[Pg 281]recommended in the treatment of chronic bursal inflammations.
Among those most commonly employed are the high
frequency, and the faradic currents. Vibration, induced by
electric impulses, is also recommended and is employed generally
by the podiatrist.
High Frequency Current, more popularly known or
rather misnamed “violet ray,” is generally found efficient
and is more generally used than any other form of electric
application. This current serves to produce active stimulation
in the parts and by this means tends to accelerate all
functional activities and to hasten absorption. Whether
the more popular priced and small sized high frequency
machines on the market today really do create any but a
very superficial stimulation, is a question, and for this reason
a machine of greater power is recommended. The parts
are treated daily, the glass electrode being applied for about
eight or ten minutes at a time.
Faradic Current is also recommended for daily use being
applied by means of a moistened sponge electrode. The
treatment is from five to ten minutes duration. Stimulation
is obtained by this treatment which, as in the case of
the high frequency current, aids the general absorption in
the affected areas.
Vibration used in these cases may be produced by electricity
direct, or through a modern air compressor, controlled
by electricity. Vibration is only recommended in
chronic cases; it increases the functional activities of the
part. It should be applied daily.
Bursitis is a stubborn condition in any form, and can
only be relieved and finally cured by scientific and rational
treatment. The operator should bear in mind that rest and
the absence of shoe irritation will do as much or even more
for the general improvement of the condition than can be accomplished
by drugs. Surgical procedure is certainly to be
recommended in cases where no improvement is shown
[Pg 282]under palliative methods, even though this requires a cessation
of activity on the part of the patient, and means the
transfer of the patient to the care of a practitioner of
surgery.
[Pg 283]
CHAPTER XVIII
CHIMATLON
Chimatlon, or pernio, is an inflammation of the skin
and of the deeper structures which is the result of exposure
to reduced temperatures. The severity of the condition
depends upon the length of the exposure as well as
upon the degree of temperature. If the skin alone is involved
and there is no loss of tissue, chimatlon mild, or
chilblains, is the term applied to the lesion; where there
is an involvement of the deeper structures the condition
is called chimatlon severe, or frost bite. In many instances
it becomes difficult to distinguish between a severe chilblain
and a mild frost bite. However, for the sake of scientific
study, in all cases in which the deeper tissues are involved
and suppurative processes affecting these structures
manifest themselves, the condition should be considered as
chimatlon severe, for these cases are usually due to prolonged
exposure to low temperatures.
CHIMATLON MILD
Derivation. Chimatlon, from the Greek, meaning the
severity of winter.
Definition. Chimatlon mild, or chilblains, is a local
inflammation of the skin due to exposure to cold and dampness.
Etiology. Chilblains are primarily due to exposure to
cold in varying degrees. When the part is exposed to a
decreased temperature, the vasomotor nerves become affected
[Pg 284]and the cutaneous circulation is impaired. This interference
with the blood flow produces congestion, leading
to inflammation, which latter is followed by a serous discharge
or even by the production of pus. Dampness hastens
the affection of the vasomotor nervous system of the
skin, and where this organ is very sensitive, in the presence
of moisture, only a moderate decrease in the temperature
is necessary to produce all the symptoms of severe chilblains.
The parts of the body most usually affected are the
hands and feet; the distance of the extremities from the
heart is probably the reason for this impairment under the
other abnormal conditions. Where the horny layer of the
skin is thin, it receives its nourishment normally, regardless
of the distance from the heart; but on the hands and feet
the skin is thicker and is imperfectly nourished and a decrease
in temperature, in the presence of moisture, results
in local inflammation.
Females are more disposed to chimatlon mild than
males, and young people more than old. Aside from cold
as an etiologic factor, there is also the predisposition which
is equally as important in the production of chimatlon mild
and should be considered in every case. Imperfect circulation
in the limbs, due to varicose veins and arterial disturbances,
caused by a deranged nervous system, are often
causes of chilblains and must be given consideration.
Any part of the body exposed to the air may become
affected, particularly the ears and nose. Several cases of
chimatlon mild of the skin over the throat have been recently
reported, due to walking against a strong wind, with
the throat bared to the weather.
Symptoms. The symptoms in the mild form of chimatlon
vary with the severity of the exposure. In very mild
cases the only perceptible symptoms are a tingling or slight
itch, and the part feels cold and clammy to the touch. The
most common cases show the parts colored dark blue or
purple, immediately after exposure and during the reaction.
[Pg 285]The parts are inflamed and there is severe itching coupled
with pain. After reaction has set in, the color of the lesions
varies from a scarlet to a purple. There is no sharp line of
demarcation between the affected and the surrounding area,
but there is a gradual blending between the discolored and
the normal tissues. There is considerable congestion, the
parts are swollen and after a complete reaction, heat manifests
itself. These symptoms may soon subside or they may
persist for many months. In general, they are of a transient
nature, but the parts remain permanently weakened
and congested, and are easily affected from the slightest
cause.
In the more severe types of chilblains, blebs are formed
which, when opened, exude serum or even pus. The blebs
are commonly found at the ends of the toes, and sometimes
the entire distal end of the digit is covered by one lesion.
No pain is felt immediately after exposure, but as reaction
commences, shooting pains develop, and if the reaction
is severe, these pains become almost unbearable.
Itching is present to a marked degree, and after reaction is
complete, dull pains and burning are noticed until the
affected parts become normal.
Pathology. The immediate effect of cold upon the skin
is to constrict the small blood vessels and to retard the
stream within them. Under quite severe or prolonged exposure
there may ensue a destruction of the minute vasomotor
nerve terminals in the arterioles, which control their
constriction and dilation. This nerve function is thereafter
permanently affected and the muscular coat of the vessels
in the parts impaired, atrophies from disuse. It is this
degree of chimatlon which is classified as chimatlon mild, or
chilblains. (Destruction of tissue beyond this, is classified
as chimatlon severe or frost bite).
In winter there is a natural conservation of heat, by the
constriction of the superficial capillaries; the blood supply
to the skin is diminished and heat radiation is thus controlled.
This reduction in the peripheral blood pressure
[Pg 286]especially affects the feet and other parts remote from the
heart.
Later on besides this natural deficiency in the blood supply,
there is in chimatlon mild a deficiency of freely circulating
blood, due to the blood vessels relaxing. The reverse
condition may seem to be proven by the heightened color but
in reality this redness is due to too much blood in the tissues.
There is however, congestion; the blood entering the tissues
has but little motion, the pulse wave is lost in the relaxed
vessels and the stream is in consequence a sluggish one.
The reduction in the supply of fresh blood is probably the
direct cause of the pain; the lack of oxygen brought to the
parts and the retention of excrementitious chemical substances,
act as irritants to the sensory nerve terminals.
Persons suffering with chilblains have feet which are generally
cold to the touch in spite of their being surcharged
with blood. The blood in them is rendered sluggish and the
heat is not retained long, nor is there a sufficiently rapid
supply of fresh blood to replace it.
In summer time, when the general peripheral circulation
is at its maximum, vascular conditions are equalized
throughout the entire body surface and are congenial to
conditions in affected areas.
All the peripheral vessels are dilated and the blood
pressure within them is increased to facilitate heat radiation
and the maintenance of a cool body. “The season is
congenial to persons who suffer with chilblains in winter
because the pathologic condition is compensated by the
physiologic vasodilatation and heightened blood pressure.”
(Maximilian Stern, M.D.)
CHIMATLON MILD FROM THE JACOBI ATLAS
Diagnosis. Chimatlon mild is a true inflammation of
the skin with or without bullous formation and serous or
purulent exudation. The color varies from a light scarlet
to a deep purple and the lesions blend gradually with
the surrounding normal tissue. The part feels cold and
clammy to the touch, this being a characteristic symptom in
spite of the heightened red color. The blood present in the
[Pg 287]parts is sluggish so that its temperature is below normal.
Chilblains of the metatarsophalangeal joint of the great
and fifth toes may be mistaken for bursitis. The chief
difference between the two conditions is found in the history
of the case,
which in chilblains
shows exposure,
while in
bursitis the lesion
is usually
accompanied by
hallux valgus.
The usual sites
of chimatlon
mild of the foot
are the heel, the
tips of the toes,
the great and little
toe joints
and the webs between
the toes.
The pains of
chilblains are
transient and of
a shooting variety,
and are
present with the
shoe on or off,
while those of
bursitis are constant
and dull,
and are present
only when the
shoe is worn.
Where inflammatory
processes
have continued
[Pg 288]so that the deep tissue are involved, the pains are of
a throbbing nature in both lesions, so that other symptoms
must be observed to determine upon a proper diagnosis.
Chimatlon Mild
Bursitis
History of exposure
No history of exposure
Hallux valgus not usually present
Hallux valgus usually present
Pains of shooting variety
Pains dull and steady
Pains present at all times
Pains absent with shoes off
Intense itching
No itching
The lesions of chimatlon are irregular in shape and may
involve the entire forefoot, including both the dorsal and
the plantar surfaces. The heel over the tendo Achillis, as
well as the skin on the sole and lateral surfaces over the os
calcis, are common sites of chilblains. These lesions are
usually deeply colored, the redness gradually diminishing
as the periphery is reached.
The blebs which have formed, may exude serum or even
pus, and these lesions may be easily differentiated from the
blebs of pompholyx and eczema by carefully noting the
history of the case, the age of the patient and the general
appearance of the foot and leg.
Prognosis. The ultimate cure of chilblains is uncertain.
Cases of a mild type often respond immediately, while others
persist indefinitely. The painful symptoms are readily
relieved, but the lesion itself often continues until the change
of season, when the warmer weather brings about a cure.
This is due to the changes that occur in the cutaneous circulation
during warmer weather. Recurrence is the rule in
those who have poor circulation from anemia or other
causes.
Treatment. The treatment for chimatlon mild consists
in bringing about a gradual reaction. This should be commenced
immediately after exposure, and is accomplished by
rubbing the parts with snow or cold water. It must be
remembered that the reaction must be gradual. If the parts
[Pg 289]exposed are rapidly warmed, the reaction will be equally
rapid, and serious results may follow. After reaction has
been established, the treatment varies with the severity of
the resulting inflammation.
When the skin has been broken and blebs or bullae are
present, the lesions must be healed first. For this purpose
ointments are most desirable. The parts should be thoroughly
cleansed with an antiseptic such as phenol (1-40)
or bichloride of mercury (1-2000), and by removing serum
or pus present, with hydrogen peroxide. The surface of the
lesion may then be dressed with any of the following:
℞
Ichthyol
8.00
Petrolatum q. s. ad.
32.00
M. ft. ung. Sig. Apply over affected parts twice daily.
℞
Acid. carbol.
0.60
Acid. boric
2.00
Petrolatum q. s. ad.
32.00
M. ft. ung. Sig. Apply on chilblain once daily.
℞
Spirit. terebinthinae
2.00
Acid. boric
2.00
Petrolatum q. s. ad.
32.00
M. ft. ung. Sig. Apply on chilblain once daily.
Wet dressing of Burow’s Solution, diluted with equal
parts of distilled water, applied for a few days, produces
satisfactory results in lesions where there is marked inflammation
and swelling.
In severe ulcerative processes that do not granulate
readily, a strong stimulant, such as balsam of Peru or some
iodine preparation, should be used until the entire area is
healed.
After the skin has been healed, or in cases where the
skin has not been broken, the treatment varies with the
severity of the lesion. In very mild cases, massage followed
by an application of the compound tincture of benzoin,
which, because it furnishes an occlusive coating and acts as
[Pg 290]a support for the skin, is often sufficient. The liquor alumini
acetatis (Burow’s Solution) may be used as an astringent
wet dressing to reduce the swelling and inflammation. The
part may also be painted with a four per cent. solution of
silver nitrate at frequent intervals, to be then covered with
raw cotton; or nitric acid, diluted with aqua cinnamoni, 15
minims to the ounce, may be painted over the unbroken skin.
A very satisfactory liniment which has been used extensively
to relieve the pain and reduce the inflammation in
this condition consists of the following:
℞
Guaiacol
8.
Spts. terebinth.
28.
Ol. olivae q. s. ad.
64.
M. ft. lin. Sig. Rub on affected parts at bedtime.
The itching, which is a marked symptom of chimatlon
mild, can readily be controlled by the application of camphorated
soap liniment. Its action is almost instantaneous.
Ichthyol has proven to be a valuable agent in the treatment
of chilblains; it may be used with collodion, or as an
ointment, the following being found satisfactory:
℞
Ichthyol
8.
Lanolin q. s. ad.
32.
M. ft. ung. Sig. Spread on gauze or lint and apply.
It must be borne in mind that the apparent cure of an
acute lesion of chimatlon mild, is not in reality an absolute
cure, and thorough precautions must be taken to prevent recurrence.
Stimulation of the cutaneous blood supply and
the vasomotor nervous system is essential, and for this
purpose, massage and the alternate hot and cold foot baths
are advisable. The latter treatment should be used at least
once daily and if possible, twice a day. The feet should be
kept in hot water for thirty seconds and then plunged into
cold water and kept there for fifteen seconds. This is repeated
for an entire ten minute period.
Electricity, in the form of the faradic or the high frequency
[Pg 291]currents, may be used to assist in the stimulation
of the action of the skin. These treatments should be given
for ten minutes, three times a day.
The hygiene of the foot is all important, and this should
be explained at length to the patient. The feet should be
protected by wearing woolen or cashmere stockings, the
latter being preferred, and should be used from early in the
fall until late in the spring. Hose of this kind prevent heat
radiation, so necessary for those who suffer from chilblains;
they also absorb excretory moisture, all of which prevents
recurrence of the lesions. It is necessary to conserve the
body heat as much as possible, and warm underclothing,
covering the entire body, should be worn; the patient should
be instructed to take some form of general exercise. Footgear
should be wide enough to allow freedom of the toes
and the shoes should be made of either calf skin or vici kid.
The wearing of silk stockings and patent leather shoes must
be discouraged if good results are to be expected.
Where the skin is not broken, Dr. Charles T. St. Clair
of Bluefield, West Virginia, advises as follows: “coal oil
(kerosene) applied night and morning to old itching frost bites
of the feet gives almost immediate relief. It should be
applied with a cloth and cotton soaked in the kerosene and
allowed to evaporate, which it will do in a few minutes. If
the sock is put on and the person goes to bed with the foot
still wet with the oil, it may burn the skin.”
CHIMATLON SEVERE
Derivation. Chimatlon, from the Greek, meaning the
severity of winter; severe, with extremely bad effects on the
tissues.
Definition. Chimatlon severe is a local inflammation
of the skin and deeper structures, produced by exposure to
extreme cold, and is a result of complete or partial paralysis
of the vasomotor nerves.
Etiology. The one cause for the severe form of chimatlon
[Pg 292]is prolonged exposure to an extreme degree of cold. The
decrease in atmospheric temperature lowers the temperature
of the parts exposed, thereby causing complete or
partial paralysis of the vasomotor nerves and producing
congelation of the blood vessels. When the congelation is
complete the parts are deprived of their nourishment, and
finally become devitalized.
Symptoms. Immediately after exposure, numbness develops
and all sensation is gradually lost. The parts are
congealed and if there is complete freezing, they present a
white, blanched appearance. The tissues affected may be
so completely frozen, that upon thawing, they are either
found to be absolutely dead, or their vitality so greatly impaired
that there is very little reaction and gangrene may
result in a very short time. If the area is not completely
frozen, the reaction is rapid, the tissues become purple,
swollen and very painful. The parts may become gangrenous,
in which case the line of demarcation and separation
between the gangrenous and the healthy tissues evidences
itself. The affected tissue is at first white but gradually
becomes blue and finally black. The fluids in the tissues
rapidly evaporate and the odor of decaying flesh is very
apparent.
If the parts do not become gangrenous, the symptoms
that present themselves are those of inflammation. The
tissues become swollen and assume a deep purple color,
which, as the circulation is restored, becomes lighter and,
after inflammation has subsided, gradually disappears.
Blebs may form and there may be an exudation of serum
or even of pus.
Pathology. The changes that occur in chimatlon severe
are much the same of those of the milder type, the former
however, causing complete destruction of tissue, or the development
of gangrene. The cold causes a constriction of
the blood vessels and the stream within them is retarded.
The minute nerve terminals in the smaller arteries, which
control the dilation and constriction, are destroyed and their
[Pg 293]function is lost. The vessels now contract and in extreme
cases remain so. Where the exposure has not been severe
enough to cause complete death of the vessels, there is a
dilation after the contraction, with a very slow movement
or even complete stasis of the blood stream.
Gangrene or necrosis will manifest itself in extreme
cases almost immediately, and often after reaction has
commenced, the tissues may be cast off. At the line of
demarcation between the normal and the dead tissues, the
changes that accompany inflammation take place.
Diagnosis. The diagnosis of frost bite is not very
liable to be confused with any other condition, in that the
history shows exposure to an extremely low temperature.
The disease known as “Trench Foot,” when it first manifested
itself, during the world war, was considered a form
of chimatlon, but since research work has been done along
the lines of the new disease, it has been found to be quite
another condition. Trench Foot will be discussed following
this chapter.
The color of the part is characteristic. Immediately
after exposure, the tissues are blanched, and as reaction
progresses, the color deepens from a light scarlet to a deep
red purple or black, depending on the length of the exposure
and the severity of the condition. As reaction advances,
the gangrenous tissue is separated from the normal
tissue by a distinct slough, which, as previously stated, is
known as the line of demarcation.
The milder cases of frost bite and the severer cases of
chilblains are often confused, particularly in cases of the
former when the loss of tissue has been avoided. The
confusion, although of no great moment (inasmuch as the
treatment of both lesions is identical), may be avoided by
remembering that frost bite develops quickly and that the
parts have been exposed to a very low temperature, while
chilblains develop more slowly, are less painful and do not
require exposure to a very great decrease in temperature
for their causation.
[Pg 294]
Prognosis. When the part has been completely frozen
and the circulation to the parts has ceased, there is no possibility
of saving the tissues. However, in cases seen immediately
after exposure, in which proper treatment is
commenced at once, it is often possible to save large areas
that would otherwise be lost. Amputation is the only cure
in cases where gangrene has developed. The ulcers which
result after the dead tissue has been removed, respond very
slowly, requiring from one to four months to heal.
Recurrence is the rule, due to the fact that the vasomotor
nerves never regain their normal vitality, and persons
who have had frost bite will develop symptoms from
the least imaginable cause.
Treatment. In all cases of frost bite, even when the
parts seem hopelessly frozen, the first treatment should
consist of bringing the parts back to normal temperature
by a gradual reaction. This should be carried out as thoroughly
as possible, for it often is the means of saving large
areas of tissue. A case in which the entire forefoot is
involved may be thus saved so that only one or two toes are
lost. Such a patient would be able to walk comfortably,
whereas if no care were taken with the preliminary treatment,
the patient might become a hopeless foot cripple.
A gradual reaction is brought about by rubbing the
parts with snow or cold water. The affected parts may be
placed in a vessel containing cold water, or they may be
wrapped in cloths wrung out in cold water. The final result
depends largely upon the length of time elapsing between
the exposure and the inauguration of the first treatment.
If the parts are completely frozen, gangrene will soon
manifest itself. If the affected part is only partly frozen,
a gradual reaction can be brought about by the above-described
means and if the subsequent inflammatory reaction
is gradual, gangrene may be averted or at least limited.
Cold water dressings should be continued for some time
after reaction has occurred, and should be maintained until
the certainty of the avoidance of gangrene is fixed. The line
[Pg 295]of demarcation and separation will be indicative of this fact.
When all of the gangrenous tissue has separated, the
remaining ulcer should be treated just as though it had
arisen from any cause. In cases of gangrene of the toes and
feet, complete or partial amputation should be practised
as soon as the lines of demarcation and separation are well
established. When gangrene has been avoided in frost bite,
the treatment consists in stimulating the affected area.
Various medicaments are useful, among which may be mentioned
oil of turpentine, balsam of Peru, tincture of iodine,
ichthyol and strongly carbolized ointments.
If the frost bite is of the bullous, pustular, vesicular or
escharotic type, soothing agents such as ichthyol, Burow’s
solution, etc., should be applied to the affected parts.
Wrapping the affected parts in dry salt has been suggested
by a western chiropodist, who claims to have obtained
excellent results by the use of this agent.
In cases where gangrene has been averted, the following
have proved of great value:
℞
Acid, carbol.
1.
Acid, boric
2.
Petrolat, q. s. ad.
32.
M. ft. ung. Sig. Apply every morning.
℞
Ichthyol
8.
Lanolin q. s. ad.
32.
M. ft. ung. Sig. Apply on lesions once daily.
℞
Ichthyol
8.
Aquae q. s. ad.
32.
M. Sig. Paint over the affected area.
In frost bite, after the gangrenous tissue has been removed,
the resulting ulcer may be treated with a stimulant.
For this purpose balsam of Peru, iodine, ichthyol and other
agents have proven successful. These ulcers do not respond
readily, because of the decrease in vitality of the surrounding
tissues, and patience is essential for a final cure. The
[Pg 296]patient must be told that the lesion will require a long time
to heal.
Hernance (Therapeutic Gazette, 1895) draws the following
conclusions from the study of thirty cases: “1. Ichthyol
is the drug that gives most relief to pain and is as good a
protector as any other application. 2. Acetanilid ointment
is the best dressing when the parts are raw and ulcerated,
preventing suppuration and promoting granulation. 3. In a
certain number of cases one can do nothing but keep the
parts clean and wait until nature throws off the diseased
tissue.”
Massage is a very good therapeutic agent for chimatlon
severe, and should be applied twice a day, if possible. This
will help stimulate the circulation and tone up the faulty
nerve endings. Electricity should also be used wherever
possible, the high frequency and the faradic currents being
the best. Applications directly to the affected parts for
ten minutes, once or twice a day, will aid materially in bringing
about a rapid cure.
The prevention of the recurrent attacks may be accomplished
by treatment commenced in the early fall, and including
massage, proper shoes, cashmere stockings, and
other prophylactic measures. This treatment is essential,
particularly for those who are anemic and under-nourished.
[Pg 297]
CHAPTER XIX
DISEASES OF THE SWEAT GLANDS
HYPERIDROSIS
Derivation. From the Greek hyper, in excess, and
hidros, sweat.
Definition. Hyperidrosis is a functional disorder of
the sweat glands (usually of the hands and feet) characterized
by the excessive excretion of sweat. The condition may
be limited to certain areas or it may be distributed over the
entire body.
Etiology. When hyperidrosis is general it is caused
by faulty innervation. The cause in localized forms is
doubtless varied from that of pure idiosyncrasy to grave
systemic disturbances. In instances there seems to be an
inherited tendency to this disturbance. Excessive drinking
of water or tea will produce hyperidrosis pedum in some
people. Localized sweating may follow some debilitating
diseases for a period of time. Anything that causes a depression
of the nervous tone, may be an etiologic factor.
Neurasthenics often display this symptom. Physical or
mental excitement will cause profuse sweating in many
individuals.
Pathology. The normal sweat excretion is closely related
to the nervous system, hence pathologic excretion
must have some nervous cause. It is most probable that
any disease or injury that affects the function of the sympathetic
nervous system, is the direct cause of excessive sweat
excretion. Examination of sections of the glands fails to
show any increase in size or in the epithelium of the gland.
[Pg 298]
Symptoms. Hyperidrosis may occur as a result of a
general disease such as rheumatism, tuberculosis, malaria,
etc., or it may be idiopathic and persist for a long period.
The latter phase is of most interest to the podiatrist. The
disease is quite common. The sweating may be immediate
or profuse, and is always more marked in regions where
excessive sweating is normal, such as the hands, feet,
axillae, etc. It is more pronounced in hot weather, but is
excessive even in cold weather, and is increased by the least
exertion. In hot weather it is frequently accompanied by
miliaria, intertrigo, or acute eczema.
On the feet, hyperidrosis is often disgusting, and may
become exceedingly troublesome. The excretion is excessive
and the feet are constantly damp or wet and clammy.
The stockings become moist and the shoe may become water-soaked.
Sweating is most profuse on the soles and between
the toes. The skin is soggy and macerated and, in severe
cases, the sole and surrounding areas are reddened, puffy
and irritated, with ill-defined vesicular or flattened bullous
lesions. In ordinary hyperidrosis of the feet, the sweat is
not offensive immediately after it is exuded, but rapidly
becomes so, unless the footgear is changed frequently.
Bromidrosis is often associated with hyperidrosis.
Prognosis. As a rule, localized cases are obstinate, but
with continued treatment, good results will follow. It is
often necessary to change the treatment from time to time.
Relapses are not uncommon.
Treatment. The treatment of hyperidrosis is divided
into two groups, local and general. Excessive general
sweating following fevers and debilitated conditions of the
system should receive general treatment at the hands of the
physician. When nervous disorders produce sweating in
limited areas, they also require specially directed general
treatment. In localized sweating of indefinite cause, under
the advice of the physician, it is often advisable to administer
general tonics, and remedies such as ergot, belladonna,
gallic acid, etc., may be locally applied. Precipitated
[Pg 299]sulphur, taken internally, one dram twice daily, is the resort
of many physicians in such cases and the treatment has
given satisfactory results.
While constitutional treatment should be used in every
case of hyperidrosis pedum, the external treatment is more
positive in result and therefore is more essential. This
external treatment consists of the application of ointments
and powders, with frequent washing and the use of lotions.
Astringent lotions, used for the purpose of hardening the
skin may be chosen from the following:
Alum powdered
1 ounce.
Water
1 pint.
or
Zinc sulphate
2 drams.
Water
1 pint.
or
Formalin
3 drams.
Alcohol
1 pint.
The feet should be thoroughly cleansed and dried.
Lotions applied two or three times daily, should be allowed
to dry on the foot. This may then be followed by a dusting
powder of the following:
Acid salicylic
15
grains.
Boric acid
1
ounce.
The local application of belladonna in the form of the
diluted tincture, the liniment or the ointment, has given
excellent results in some cases, but great care should be
exercised in their use, as belladonna may produce toxic
effects, through absorption.
Many cases have responded readily to the alternate
foot bath (See Chapter, The Care of the Foot). After the
alternate foot bath, the feet are thoroughly dried, and in
severe cases, the lotion of formalin and alcohol may be used,
or in ordinary cases, grain alcohol is applied. When the
[Pg 300]lotion has dried, the feet are dusted with the following
powder:
℞
Acid salicylic
15
grains
Alum powdered
Lycopodium
aa
1
ounce
M. Sig. Dust on feet morning and night.
Diachylon ointment, freshly prepared, is the best
remedy among the unguents. It is prepared as follows:
℞
Lead plaster
1
ounce
Oil of lavender flowers
15
grains
Olive oil, q.s. ad.
3
ounces
M. Sig. Apply on gauze and bandage.
Another ointment which has astringent properties and
which has been used with some success is:
℞
Tannic acid
2
drams
Petrolatum
1
ounce
M. Sig. Spread on gauze and bandage.
Before these ointments are applied, the parts should be
thoroughly washed with soap and water, dried, and the
ointment spread on gauze and held in place with a bandage.
The application should be removed after twelve hours, the
parts rubbed dry with a towel, and the ointment reapplied.
This should be continued for a week or two, when, if results
have not followed, other forms of treatment should be used.
The X-rays have a drying influence upon the skin, but if
this treatment is used, great caution should be exercised,
as the rays are likely to have a very harmful influence upon
the tissues generally.
At the suggestion of a prominent chemist and physician,
a series of experiments were performed with oxygen
gas and vanadium chloride solution for the treatment of
hyperidrosis, which proved more or less successful. The
solution of vanadium chloride (1-20,000) was applied to the
foot, and the oxygen gas was slowly sprayed on the foot,
[Pg 301]from a large gas container. This treatment lasted for ten
minutes and was applied twice a week. In one particular
case, which had resisted the ordinary methods of treatment,
the use of this remedy was of great benefit to the patient.
After several weeks, the case showed marked improvement,
but the inability of the patient to continue treatment prevented
further trials. In many other ordinary cases of
hyperidrosis, the results were excellent, while in others
there was no marked improvement[6]. The use of formalin
and alcohol solution in conjunction with the oxygen treatment,
has proven very effective. The lotion is used at night,
immediately before retiring.
Stillians, in the Journal of the American Medical
Association, states that a 25% solution of aluminum chloride
in distilled water, dabbed gently on the part every second
or third day and allowed to dry, will cause a rapid amelioration
of the excessive sweating; three such applications are
usually sufficient. If the condition recurs, the treatment
may be repeated.
Potassium permanganate solution, 5 parts to 1,000, has
been found efficient as a wash for the feet. More active,
and therefore to be used with more care, are “chromic acid”
solutions, as:
Chromium trioxide
2.5
Water
50.0
Sig. Use as a paint once a week.
Less active, but more pleasant than the foregoing, is:
Tannic acid
5.
Alcohol
100.
Water, q. s. ad.
200.
Sig. Use as a wash twice a day.
The lotions and washes should be used in conjunction
with drying powders, such as have been already mentioned.
The use of the various solutions of aluminum chloride,
or of chromium trioxide, may, in some cases, cause a mild
[Pg 302]dermatitis, perhaps with itching. This may be relieved by
the application of protective dressings to prevent scratching,
and the application of ointments, such as cold cream
containing 12 per cent. boric acid, or a calamine lotion. Itching
may be relieved by adding 0.5 per cent. phenol to the
calamine lotion.
BROMIDROSIS.
Derivation. “Bromos,” a stench; and “hidros,” sweat.
Synonym. Osmidrosis.
Definition. Bromidrosis is a functional disorder of the
sweat glands, characterized by a sweat excretion which has
an offensive odor.
Etiology. The etiology of bromidrosis is much the
same as that of hyperidrosis, occurring in those who are
anemic, chlorotic and nervous and in those who are compelled
to stand for long periods. Eating certain foods and
drugs will give peculiar odors to the perspiration, among
which are garlic, onions, assafetida, and sulphur. The
cause of the odor of the sweat in bromidrosis pedum is the
decomposition of the fatty acids of the sweat, as well as the
presence of the bacterium fetidum, which is found on the
feet, especially between the toes.
Pathology. Immediately after the sweat is excreted,
it is not offensive, but soon becomes so, due to the presence
of microorganisms and the decomposition of the fatty acids.
Symptoms. The sweat has a disagreeable odor and is
usually associated with hyperidrosis, but not necessarily so,
as it may occur in persons having a normal sweat excretion.
When the excretion is excessive, there are the usual symptoms
of hyperidrosis, viz., puffiness, tenderness, sogginess
and possibly blebs or vesicles. The odor is offensive, stale,
penetrating and peculiar and often is sufficient to make the
sufferer unfit for society.
Treatment. The treatment is essentially the same as
for hyperidrosis, coupled with absolute cleanliness and frequent
change of footgear. Shoes should be allowed to stand
[Pg 303]in the air for at least twenty-four hours after having been
worn, so that several pairs are required. Constitutional
treatment is the same as for hyperidrosis as is also the
external treatment. The feet should be washed in boric
acid solution, and the powder used freely in the socks and
on the feet.
The feet may be painted once every three weeks with
a 5 to 10 per cent. solution of chromic acid, or they may be
washed every other day in one per cent. solution of potassium
permanganate, and in the interval the following
powder proves efficacious:
℞
Acid salicylic
10
grains
Tannoform
2
drams
Zinc oxide
Talc
aa 3
drams
M. Sig. Dust on feet morning and night.
ANIDROSIS
Derivation.a, without; and hidros, sweat.
Synonym. Decrease or absence of sweating.
Definition. Anidrosis is a functional disorder of the
sweat glands characterized by a diminution or suppression
of sweat.
Etiology. Anidrosis is rare as an idiopathic condition,
occurring generally in diabetes and fever, also in some skin
diseases such as ichthyosis and pityriasis rubra pilaris; also
in the parts affected by anesthetic leprosy, scleroderma and
keloids. Localized sweat suppression follows injury to the
nerves.
Symptoms. The skin seems to be abnormally dry, and
this dry skin may be a form of ichthyosis or may predispose
to eczema. When the sole of the foot is dry and the skin
shows clefts, which contain helomata miliare, and has a yellowish
color, diabetes may be suspected. There may be but
slight diminution of sweat excretion, or total absence.
Treatment. In congenital cases, nothing is of much
[Pg 304]avail. In the acquired cases, applications of hot water or
vapor baths externally, and general tonics, the free drinking
of water and the use of warm clothing, are indicated.
Pilocarpin or jaborandi may be given internally, but this
must be on the prescription of a physician. Massage with
oil or the application of galvanic or faradic electricity have
proven of benefit. Hot alkaline baths, preceding the massage
with oil, are also at times beneficial.
In addition to the above there are a number of rare
granular perversions which occasionally are seen by the
podiatrist and of which but brief mention need here be
made:
Chromidrosis. A condition in which the sweat is
colored, usually black. When this condition arises from
accident, the sweat may be colored green. Red sweat, which
occasionally occurs in the axillae, is due to the action of
bacterium prodigiosum.
Sudamen. A collection of sweat in the upper layers of
the epidermis, due to obstruction of the sweat ducts, which
gives rise to an eruption of numerous pinhead, transparent
vesicles. Occurs during the course of fevers and is usually
of but short duration.
Uridrosis. Characterized by the excretion of urine constituents
through the sweat glands. Usually the result of
suppression of urine by reason of impaired kidney function,
whereupon the sweat glands assist in the elimination of the
urinary deposits. There is a urinous odor to the skin.
Hematidrosis. Characterized by hemorrhage from the
sweat glands. A very rare condition.
Phosphoridrosis. In this very unusual disease the
sweat glands exude a phosphorescent sweat, said to be due
to a species of photobacterium following the ingestion of
phosphorus or of food stuffs containing phosphorus.
Miliaria. A mild inflammatory affection caused by obstruction
of the sweat ducts, characterized by the occurrence
of small papules and vesicles at their mouths.
Hydrocystoma. A condition characterized by the
[Pg 305]formation upon the face of firm, pinhead sized vesicles, due
to sweat gland obstructions.
Hydradenitis Suppuration. An inflammatory disease
of the sweat glands followed by deep-seated, shot-like
nodules, which suppurate and leave scars.
Seborrhea. A lesion of the fat-producing glands characterized
by an increased and altered secretion of sebum resulting
in an oily or scaly condition of the skin.
[Pg 306]
CHAPTER XX
ULCERS
Definition. An ulcer is a lesion of a cutaneous or
mucous surface, caused by a molecular disintegration of the
superficial parts, usually attended by more or less suppuration.
A wound, or superficial loss of tissue due to traumatism,
is not primarily an ulcer, but may become such if
the healing process is arrested or the wound becomes infected
with pyogenic microorganisms.
The following ulcers frequently come under the observation
of the podiatrist:
Simple Ulcer, a local non-constitutional lesion attended
with no marked pain or inflammation.
Indolent or Callous Ulcer, a chronic lesion, with hard,
elevated edges and few or no granulations and showing no
tendency to heal.
Varicose Ulcer, localized destruction of the skin over a
varicose vein, usually of the leg, due to mechanical pressure,
to nutritive disturbances, or to bacterial action.
Perforating Ulcer of the Foot, malum perforans pedis,
a round, deep, trophic lesion of the sole of the foot, following
disease or injury (in any part of its course from the
centre to the periphery) of the nerve supplying the parts.
Syphilitic Ulcer, due to syphilis in late secondary or in
tertiary stages.
Before describing the characteristics of the various
forms of lesions just mentioned, together with their differential
diagnosis, treatment, etc., it is deemed advantageous
to briefly discuss the general etiology and pathology of all
ulcers.
Etiology. One or several factors may be concerned in
[Pg 307]the etiology of ulcers, which are grouped under: (a) predisposing
causes; (b) exciting causes. The first group includes
local as well as general causes.
Predisposing Causes. Age can hardly be considered as
a very important factor, except that old age is accompanied
by retrogressive tissue changes, hardening of the arteries,
impaired circulation, etc., and one would therefore expect
the statistics to show a greater proportion of ulcers during
the later years of life.
As regards sex, ulcer is more common among men than
women in the ratio of about three to one. Alcoholism, syphilis,
and traumatism may in some measure explain why
ulcers are more common in men than women. Occupation
seems to have little to do with the etiology beyond the fact
that it may predispose to various forms of infection, and it
is due to this element that we have the most important factors
in the causation of ulceration. Varicose ulcer is always
associated with varicose veins in the lower extremity,
and these may be described as veins whose valves are incompetent.
The most obvious cause of the breaking down
of the valves is hard work, that is the lifting or carrying of
heavy loads, as in the case of laborers, freight handlers,
and longshoremen. The great strain occasioned by work
of this kind lays a heavy load upon the veins of the legs.
Whether the valves become useless through stretching of
the vein walls, or are directly broken, is immaterial. The
occupations which involve standing for long periods without
moving the legs are, in a lesser degree, a source of
valvular incompetence, and this is not from excessive back
pressure but from stasis due to lack of muscular movement.
Among women, the venous engorgement of the legs, so often
seen in pregnancy, may, after the birth of several children,
result in varicosity.
Many of the constitutional diseases such as gout,
anemia, diabetes, syphilis, and tuberculosis, which lower the
vitality of the tissues, and other conditions, such as valvular
disease of the heart, general obesity, and arterial hardening
[Pg 308]which prevent proper circulation, predispose to the formation
of ulcers when there is in addition some exciting cause.
Embolism, which cuts off the nutrition of the part, may
also act as a local cause. Certain vasomotor disturbances,
such as occur in frost bite and in Raynaud’s disease, may
produce small areas of localized gangrene which subsequently
become the seat of an ulcer.
Interference with the return of venous blood from a
part predisposes to ulceration. Where phlebitis and periphlebitis
occur, especially in the smaller venous radicles,
small abscesses often form, the adjacent skin becomes involved,
and an ulcer results; or the rupture of the diseased
wall of one of the small veins may become infected, and
ulcer develops.
Perforating ulcer of the foot is a frequent complication
of tabes dorsalis. Myelitis, and other pathologic conditions
of the nervous system may also, either through trophic
changes or by reason of impaired sensation, bear a distinct
relationship to ulcerative processes.
Exciting Causes. Traumatism is one of the most frequent
causes of ulcer formation. Its degree may, of course,
vary greatly, and whether it will produce an ulcer depends
upon one or more of the predisposing causes already mentioned.
Infection by any of the staphylococcus or streptococcus
group of organisms as well as by the tubercle bacillus
will produce ulcers; malignant ulceration also occurs.
Pathology. The pathology will vary according to the
conditions causing the ulcer, although in the non-specific
forms of ulcer the phenomena of congestion, exudative and
necrotic inflammation, together with reparative inflammation
or granulation, will only be in evidence. In the development
of an ulcer the degenerative process predominates;
in the healing stage, the reparative. When the ulcer
develops from without, as when infection enters the skin
through an abrasion, congestion first occurs. This is
rapidly followed by the emigration of leucocytes, by a diapedesis
of red blood cells which rapidly disintegrate, and
[Pg 309]by an exudation of serum and fibrin. At the same time
there is a proliferation of the epithelial cells and also a
proliferation of the connective tissue cells of the corium.
The tissue next becomes softened by the exudate between
the cells. Then, as a result of the pressure of the exuded
serum, of the crowding by the leucocytes, and of the cutting
off of the blood supply, and also in some measure through
the effects of the toxins furnished by the bacteria, there
occurs necrosis of the cells, which are thrown off from the
surface with the products of exudation, until there is formed
an ulcer with its base consisting of spheroidal and a few
epithelioid cells developed from the connective tissue cells
by proliferation.
When an ulcer in its complete stage of development is
examined, the surface is found to be covered with a layer
formed by the overproduction of new round cells, together
with the exudate of fibrin, serum, and the cellular elements
of the blood. When the discharge from the ulcer is profuse,
this may be constantly washed away. When the ulcer is
sluggish, it may be in a condition of coagulation necrosis.
In this latter condition a croupous material covers the base
of the ulcer, and below this is a more or less distinct layer,
largely composed of cellular elements, with very little cellular
substance, the cells being spheroidal and epithelioid in
character and mingled with polynuclear leucocytes. As we
go deeper, the amount of intercellular substance increases,
and a number of transparent fibres and fusiform cells are
found. In this layer of granulation tissue are also the newly
formed blood vessels, the most superficial branches being
vertical to the surface, and developing by a process
of budding from the endothelial cells of the capillaries
deeper down. This layer is paler in color than the layer
made up of the cellular elements, but may contain pigment
from the disintegration of the red blood cells. It gradually
merges into a layer of cicatricial connective tissue which
lies beneath the ulcer.
A section of a chronic ulcer would show an enlargement
[Pg 310]and prolongation of the papillæ, with a marked proliferation
of the epithelial cells covering them. This is most pronounced
in the condition known as callous ulcer, where the
edges may, by proliferation, be considerably raised about the
level of the surrounding skin, and often overhang the base
of an ulcer. Under proper treatment the reparative process
proceeds faster than the degeneration of the cells and the
ulcer begins to heal by granulation. Small sprouts or buds
of protoplasm protrude from the capillaries below or in the
base of the ulcer, developing from the cells in their walls.
These are hollowed out by the blood pressure and form new
blood vessels which anastomose with others. Nuclei form in
the protoplasm and thus endothelial cells develop. At the
same time small spheroidal cells, developing from the connective
tissue cells, become grouped around the blood vessels.
These are closely crowded together at first, being
separated by only a small amount of fluid intercellular substance.
Some of the round cells then become larger and
fusiform or branched. The larger cells are known as epithelioid
cells. Some of the fusiform and branched cells, called
fibroblasts, develop the new delicate fibrillar intercellular
substance, while others form the connective tissue cells.
Gradually the fibrous intercellular substance increases in
amount, while the cells become fewer and flattened, and
cicatricial tissue is formed. The contraction of this cicatricial
tissue constitutes an important element in the healing
of an ulcer.
During the process of granulation, more of the round
cells are produced than are necessary. These die and
are thrown off in the discharge. Healthy granulations
should be small, even, and of a reddish pink color. Where
the growth of the blood vessels proceeds more rapidly than
the development of the cells and the formation of connective
tissue, there is produced a soft, pale, flabby condition known
as exuberant granulations, or proud flesh. On the other
hand, both the cells and the blood vessels may develop very
slowly, forming indolent or sluggish granulations. In order
[Pg 311]that the ulcer may heal it must eventually become covered
with epithelium, and this can develop only from the epithelium
at the edges of the ulcer. Under favorable conditions,
when the granulations reach the level of the surrounding
skin, the epithelium begins to spread in a thin bluish white
line from the edges out over the surface, until the latter is
entirely covered, when the ulcer is healed.
Simple Ulcers. By far the greatest number of ulcers
coming under the observation and within the province of
the podiatrist are of the simple variety. Heavy calloused
areas which are neglected are apt to become so irritant as
to cause the softer tissues underneath to break down and
ulcerate, and a similar condition very often occurs in connection
with helomata, particularly heloma molle.
Constitutional diseases, either trophic or specific, may
be predisposing causes of these conditions but the exciting
cause is surely traumatism.
Simple ulcerations are most generally found upon the
plantar surfaces of the feet, under the heads of the first or
fifth metatarsal bones. As has been previously mentioned,
however, the interdigital surfaces are also prone to these
conditions. In this latter location the amount of perspiration
excreted in the locality undoubtedly has much to do
with the lowering of the vitality of the skin covering the
part, and renders it susceptible to disintegrative processes.
Treatment. All the overlying callous must be immediately
removed so that the parts may be properly cleansed
and so that drainage may be maintained. This may be done
with a sharp sterile scalpel, but sufficient care should be
exercised so that no hemorrhage is caused. After the
hardened tissue has been cut away, all necrosed tissue adhering
to the floor and edges of the ulcer should be removed.
A spray of alcohol, 60%, may then be employed to obtain
thorough asepsis and after the parts are thoroughly dried, a
dressing is applied in keeping with the conditions present.
Wet Dressing. If infection is present, or if the parts be
considerably inflamed, due simply to the traumatic irritation,
[Pg 312]a wet dressing of mercury bichloride, ¹⁄₄₀₀₀, liq.
aluminum acetate, or alcohol and boric acid, equal parts,
should be employed for a sufficient time to reduce all infective
or other inflammatory symptoms. Bichloride of
mercury should not be used for a prolonged period of time
in these cases, for its corrosive action will prevent new
granulations and thus retard healing. The aluminum
acetate and alcohol, boric acid combination may be used
without fear of toxic irritation. If simple inflammation is
present in the parts, Goulard’s extract may be employed to
reduce the acute symptoms, but care must be exercised and
the parts watched so that no lead dermatitis shall develop
from the drug.
It is unwise under any condition to prolong the use of
wet dressings beyond a time when they are thought to be
necessary. The constant moisture is not conducive to
prolific or to healthy granulation and for this reason these
applications are best discontinued as soon as possible.
Boroglycerine, a combination of boric acid and
glycerine, applied to a simple ulceration, particularly one
of the indolent type, is found to stimulate granulation and
thus aid materially in the healing process. It is applied on
sterile gauze and allowed to remain unchanged for from
twenty-four to forty-eight hours.
Dry Dressings. Dry dressings, either of plain aseptic
gauze or of dusting powders, are found effective in the
treatment of simple ulcerations. The choice of the dusting
agent is, of course, dependent upon the conditions present,
but it should combine astringent and antiseptic properties.
Thymol Iodide, while not astringent, is a general
favorite for most simple ulcerations. Contrary to the action
of most powders, this combination of iodine and thymol induces
a discharge rather than prevents it. This is due to
the action of its constituent thymol and is desirable in dry
ulcerations where more or less coagulation is present. This
powder, known best by its trade name, aristol, has an
energetic, antiseptic action due to the liberation of iodine
[Pg 313]and is used practically to the exclusion of all other iodine
powders. It is principally used as an iodoform substitute,
having none of the disagreeable odor of this drug.
Bismuth Subgallate, a combination of gallic acid and
bismuth, is an efficient powder for use in these conditions.
Its action is markedly astringent and it can be depended
upon for antiseptic action as well.
Bismuth Subnitrate is also an astringent and antiseptic
powder which may be substituted for the other bismuth salt
in these conditions. The molecules of this powder are very
fine and there is a tendency for it to cake so that when used,
the dressing should be changed at regular and short intervals;
the parts should be thoroughly cleansed of the dried
powder from previous application before the new dressing
is applied.
Zinc Powders, such as the oxide and the stearate, are
also applicable in cases of simple ulcer. Zinc oxide may be
combined with various other powders and numerous such
combinations are now in the market. Zinc stearate is used
alone and can be depended upon for a mild astringent action,
although not comparable with either bismuth subgallate or
subnitrate.
Ointment Dressings. The use of ointments is contra-indicated
in the presence of a discharging surface and for
this reason drugs in fatty or oily bases are not generally
used in all stages of ulcer regeneration. Several ointments
may be used, however, either for antiseptic or stimulative
action after the acute discharge, if present, has subsided
or if no great amount or exudation is present.
Ung. Hydrargyri Ammoniati, white precipitate of mercury,
will be found useful where antiseptic action is
desired.
Ung. Acidi Borici, an antiseptic ointment, is also used
in this connection.
Ung. Acidi Tannici, twenty parts of tannic acid, twenty
parts glycerine, sixty parts cerate, is an astringent ointment
efficient in these cases.
[Pg 314]
Ung. Eucalypti is used as an antiseptic and stimulant
application for indolent ulcers.
Ung. Zinci Oxidi is a soothing and mildly astringent
ointment which can be used advantageously.
Ung. Balsam of Peru, a 3% to 10% ointment of Peruvian
balsam in vaseline or lanolin, is both antiseptic
and stimulant.
Scarlet Red, an ointment prepared from medicinal scarlet
red (Biebrich), may be used in strengths from 1% to 8%
as a stimulant and healing application.
In the use of all ointments it is advisable to place only
a thin film of the mass over the parts. Avoid the tendency
to use a large quantity of any ointment.
A shield may, at times, be used in connection with the
application of the dry or of the ointment dressing. These
appliances, however, particularly if made from a thick
material, tend to arrest the circulation to the localized area,
and, as free blood flow is to be desired at all times, the
shield should be omitted in cases in which an ointment
dressing is being used, unless it is sure that circulation is
not being thereby impeded.
Squares of sterile gauze held in place by adhesive strips
or by a soft cocoon dressing, are practical means of
retaining a powder or an ointment to the part. In choosing
the latter form of dressing, never use a great amount of
collodion in binding down the cotton fibre. If applied too
freely, it is absorbed by the cotton and is apt to come in
contact with the ulcerated surface itself. The dressing, if
applied over a discharging area, should be absorbent, and
this possibility is nullified when it is hardened by collodion.
INDOLENT OR CALLOUS ULCER.
This form of ulcer occurs principally on the leg, but
occasionally is found on the foot and ankle. Callous ulcers
vary in size from a five cent piece to the entire circumference
of the part attacked.
The surface is usually smooth and glistening and of a
[Pg 315]dirty yellow color, with perhaps a few badly formed granulations.
The edges are hard and sharply cut and elevated
considerably above the surface, while the surrounding skin
may be inflamed over the margin and is either covered with
sodden cuticle or is congested. The skin surrounding the
part is often deeply pigmented from chronic congestion, the
pigmentation starting in separate papillæ as maculae,
which gradually coalesce. The discharge is purulent or
serous and may be so abundant and irritating as to cause
eczema of the skin. The base is adherent to the underlying
tissues and this constitutes one of the main difficulties in
healing, as contraction is thus prevented. If the ulcer is
situated above a bone, such as the tibia, chronic periostitis
may result. Such ulcers are sometimes very painful from
pressure on cutaneous nerves, or from a localized cellulitis
associated perhaps with inflammation of veins and lymphatics.
Thrombosis not infrequently occurs in both sets of
vessels, leading to chronic edema of the feet.
Etiology.General Causes: (a) Various devitalizing
fevers and diseases such as typhoid, scorbutus, diphtheria,
chronic nephritis, etc. (b) Mineral poisoning, such as is
produced by phosphorus. (c) Anemia and debilitating conditions
brought on by starvation, improper food, poor
hygiene, overwork, lack of sleep, etc.
Local Causes: (a) Old scar tissue, the contraction of
which has cut off the circulation. (b) Continuous pressure,
from splints, lying in bed, etc. (c) Local destruction of the
tissues such as is produced by extremes of heat and cold.
(d) Local irritation or injury of tissues from violence.
(e) Various diseases of the skin, for example, pemphigus.
Symptoms. These ulcers are most commonly found on
the inner side of the lower third of the leg. They show
great variety in size, shape and appearance, of base, edges,
and surrounding area, and in accordance with these differences,
many different names are applied to them. They may
be round, very irregular, or funnel-shaped, as in perforating
ulcer of the foot. When the granulations are large,
[Pg 316]irregular, and bleed easily, they are spoken of as exuberant
or fungating; when pale, soft and flabby, as weak or edematous;
when small and growing slowly, as indolent. Sometimes
the base is covered with a grayish or yellowish-white
necrotic layer formed of fibrin and necrotic cellular elements.
When this is removed, no granulations appear, but
instead it presents a smooth, shining base resembling
mucous membrane. This form is known as the croupous
ulcer. The edges also vary greatly. They may be irregular
or sharply cut, moderately thickened, or very much so, due
to chronic congestion and edema, with enlargement of the
papillæ and proliferation of the epithelial cells. When this
is a prominent feature, the name callous ulcer is applied.
The edges may be adherent to the deeper structures, thus
preventing contraction and healing; they may be rounded,
elevated, undermined, or overhanging.
The discharge from an ulcer is usually slight in
amount, serous in character, and contains very few pus
cells. The surrounding area may be swollen, red, congested,
pigmented, edematous, eczematous, or the ulcer may
be surrounded by smaller sores, by vesicles, or by masses
of varicose veins. As a rule, there is an absence of severe
pain accompanying leg ulcers, unless there is an exposure
or involvement of some nerve filaments; but frequently,
after the patient has been on his feet for a long time, there
is a dull, aching pain in the part, due to chronic congestion
which causes tension in and about the ulcer.
Differential Diagnosis. The diagnosis of a chronic indolent
or callous ulcer can be easily made by the character
of the granulations and by the location of the ulcer itself.
The history points usually to an injury or infection and the
situation of the sore is at the site of the previous injury or
infection. The base is shallow, inflamed and often of a
grayish-yellow color, with no thickening or elevation of its
edges. The surrounding area is usually round and inflamed.
A varicose ulcer is differentiated by the history of
varicose veins or phlebitis, by its occurrence at the lower
[Pg 317]third of the leg and by the undermined thickened and
irregular-shaped edges. A syphilitic ulcer is diagnosed by
the history of lues; by its usual occurrence at the upper
third of the leg; by a dirty sloughing and deep base; by
punched out, thin, dense, firm and undermined red edges;
and by scars of a dusky red color. A tuberculous ulcer, by
the history of previous glandular bone or lung disease; soft,
pale, edematous granulations; thin undermined edges; involvement
of glands and other signs of tubercular sinuses,
bone disease, etc. A perforating ulcer, by the history of
the case; the appearance of the ulcer upon the sole of the
foot or in the vicinity of the heel; the presence of a sinus
leading to necrosed bone; the pale, flabby granulations; all
these signs should make the diagnosis easy.
CHRONIC ULCER OF THE FOOT
(BEFORE OPERATION)
Treatment. This naturally depends upon the stage at
which the ulcer is seen and the conditions present. If there
is considerable inflammation, accompanied by marked cellulitis
and pain, wet dressings are indicated. Two distinct
therapeutic actions may be derived from the wet compress,
depending upon whether or not an impervious covering is
employed. These actions are antiphlogistic and hyperemic,
and these in turn may be either antiseptic or astringent.
The wet dressing, without a covering, is cleansing and heat
reducing, because of evaporation. There should be frequent
replenishment of the solution where there is considerable
discharge, or where it is desirable to reduce
inflammation. A wet dressing with an impervious covering
is contra-indicated in the presence of pus, the warmth and
moisture of such a dressing, being congenial to the growth
and to the multiplication of bacteria. For the relief of pain
and for the reduction of inflammation, wet dressings are
the most effective form of treatment because (1) they are
aseptic; (2) they permit free drainage; (3) no new granulations
are disturbed in changing the dressing.
A great many different solutions are used and among
these are: (1) sterile water; (2) ordinary saline solution
(a teaspoonful of salt to a pint of water); (3) saturated
[Pg 318]solution of boric acid (prepared by dissolving a teaspoonful
of boric acid in a pint of water); (4) Thiersch’s solution
(prepared by dissolving 15 grains of salicylic acid and 90
grains of boric acid in a pint of water); (5) Burow’s solution
(prepared by dissolving 675 grains of alum and 270
grains of lead acetate in a pint of water); (6) solution of
bichloride of mercury (varying in strength from 1 to 3,000
to 1 to 10,000); (7) lead and opium wash (U. S. P.); (8)
Dakin’s solution (hypochlorite of soda).
After the reduction of the inflammation, the next step
is the cleansing and sterilization of the ulcer. Before
healthy granulations can form, the removal of sloughs and
the cleansing of the base must be accomplished as thoroughly
as possible. Many means toward this end may be
effective. A one-half to two per cent. creolin or lysol emulsion
[Pg 319]is very useful for those dirty ulcers from which a profuse,
foul discharge escapes. A one per cent. solution of
formalin is of great value for smaller ulcers, especially
those due to tuberculous disease. The destruction and removal
of sloughs may be hastened by cauterization with the
solid stick of nitrate of silver. The use of certain ferments,
such as brewer’s yeast, papoid, or protonuclein, may help to
clean up a chronic ulcer. The most frequent means employed
for the cleansing and sterilization of the ulcer, previous
to the application of some stimulating dressing, is
washing the part with tincture of green soap and water.
Peroxide of hydrogen can next be used, then sulphuric
ether, and finally ninety-five per cent. alcohol. Where there
is an accompanying eczematous condition, the scales can
best be removed with benzine.
CHRONIC ULCER OF THE FOOT
(AFTER OPERATION)
Having reduced the inflammation and succeeded in
cleansing the ulcer, the next thing to consider is the means
by which granulations may be stimulated. This may be
accomplished by applications in the form of powders, solutions,
ointments and grafts.
Dusting powders are employed either as antiseptics
or as astringents or for both purposes. Their use in this
[Pg 320]instance is limited, and they are employed only where the
secretion is scanty. Among the various powders used are:
aristol, dermatol, boric acid, orthoform, calomel, protonuclein,
alum, zinc oxide, etc. Thymol iodide, or aristol, is
a superior antiseptic powder and enjoys the advantage
over iodoform of being inodorous. Iodoform should be
used only in tuberculous conditions; calomel only in syphilitic
cases. Dermatol, or bismuth subgallate, combines the
astringent and mildly antiseptic qualities of bismuth and
gallic acid. Boric acid is mildly antiseptic. Zinc oxide
and alum are both astringent. Scarlet red, five per cent.,
with boric acid, ninety-five per cent., is indicated when the
granulations are sluggish.
Among the various solutions used are silver nitrate in
various strengths, zinc and copper sulphate, ichthyol, balsam
of Peru, and calamine. Silver nitrate, zinc and copper
sulphates are employed for their astringent action. Balsam
of Peru, fifty per cent., with castor oil, fifty per cent.,
is used for its stimulating action.
Ointments are used in the treatment of ulcers either to
stimulate the granulations or to soften thick epidermis.
Ointments should never be employed where there is a profuse
discharge. Many different kinds of ointments are used,
prominent among them being: balsam of Peru, in a ten
per cent. strength for the stimulation of the granulations;
boric acid and ichthyol, in the same strength; Lassar’s
paste (which consists of salicylic acid, one dram; starch
and zinc oxide, each one ounce, and vaseline to make four
ounces). This latter ointment is especially indicated when
there is an eczema present. An ointment which has given
good results is scarlet red, 1% to 5%. Scarlet red (Biebrich)
was originally prepared as a dye for wool and silk, and is so
named because of the fact that it was first manufactured in
the town of Biebrich. Its application to granulating surfaces
induces healing, not by the formation of scar tissue,
but in every case by producing a high grade of normal skin
which very soon becomes freely movable on the underlying
[Pg 321]tissue. The return of sensation in the healed area takes
place from the periphery inward, instead of upward from
the underlying tissue. Usually the dressing should be left
undisturbed for from twenty-four to forty-eight hours, then
reapplied, as indications warrant. In removing the dressing,
if it be adherent to the granulations, peroxide of hydrogen
should be used to loosen it. The skin about the granulating
surface is best cleansed by benzine, as this removes all
traces of scarlet red better than any other solution. The
following formulas are recommended:
Scarlet red (medicinal Biebrich) fifteen grains; ungt.
acidi borici, q. s. ad three ounces (one per cent.).
Scarlet red (medicinal Biebrich), forty-five grains;
ungt. zinci oxidi, q. s. ad three ounces (three per cent.).
Scarlet red (medicinal Biebrich), seventy-five grains;
balsam of Peru, seventy-five minims; petrolati, q. s. ad three
ounces (five per cent.).
The first is indicated where scarlet red is desired over a
large area and for a long time; the second, where an astringent
action is required because the granulations are profuse;
the third, where the granulations are sluggish and require
stimulation.
VARICOSE ULCER.
Etiology. To chronic ulcers of the leg, associated with
varicose veins, especially of the smaller venous radicles, the
name varicose ulcer has been given. The usual development
of this variety of ulcer is as follows: persons who suffer
from varices of the leg usually complain, for some time before
the external manifestation of the disease, of a dull,
aching pain in the limb, with a sense of weight, fullness and
fatigue. In a more advanced state of the disease the ankles
swell after a day’s hard work, and the feet are constantly
cold; an embarrassed state of circulation is denoted by
these symptoms and the deep-seated veins begin to swell.
After a time, which varies with the idiosyncrasy and occupation
of the patient, small, soft, blue tumors are seen at different
[Pg 322]points of the leg, most of them disappearing on pressure,
but returning when it is removed, or when the patient stands
up. Each little tumor is caused by a vein, dilated at the point
at which it is joined by an intramuscular branch. Around
many of these tumors a number of minor vessels of a dark
purple color are clustered; these are the small superficial
veins which enter the dilating vein and in which the passage
of the blood is retarded. An increasing area of veins gradually
becomes involved and a number of irregular, knotty,
consolidated tumors are developed, grouping themselves
around the point at which the dilatation first began. The
external and internal saphenous veins are those primarily
affected, but long tracts of tortuous veins may extend up the
leg and thigh. Dangerous and even fatal hemorrhage may
ensue from the bursting of a varix through the skin. The
vessels may become filled with clots and permanently obstructed,
and ulceration with thrombosis or phlebitis may be
the sequel. The capillaries become engorged with blood,
and hence the assimilation changes are retarded and sometimes
altogether checked. Gradually the entire circulation
of the part is arrested. The vitality of the superficial structures
becomes permanently impaired; consequently they are
unable to resist the effects of slight injuries and repair fails
to take place after a portion has been destroyed, and an open
sore or ulcer is established.
Symptoms. The varicose ulcer is usually single, oval,
round or irregular in outline, and is most often seen on the
lower third of the leg near the internal or external malleolus.
The edges are thick, everted, and swollen. The swelling
is largely due to edema and is found to pit on pressure.
The floor is generally covered with rather large granulations
which bleed freely when touched. In a varicose ulcer
the destruction of tissue often begins at the margin of a
congested area and advances toward the centre. The size
varies from the small ulcers, less than one-half inch in
diameter, formed by the breaking down of an area of periphlebitis
around a small vein, to those several inches in
[Pg 323]diameter. Several ulcers may be present on one limb. The
granulations, as a rule, are weak and flabby. The discharge
is thin, serous, mixed with débris, and may be blood-stained.
The skin surrounding a varicose ulcer is often of a brownish
blue color, due to a deposit of pigment. The recognition of
varicose ulcers is usually easy; but the mere presence of
enlarged veins, it should
be noted, is not pathognomonic,
because they may
exist along with ulcers of
other origin—the luetic,
trophic, etc. The most frequent
complication is
phlebitis; cellulitis is also
seen. This latter may
sometimes be so severe
as to necessitate operation.
Complications such
as necrosis of bone, involvement
and ankylosis
of the ankle joint, together
with atrophy and
contracture of muscles
and adhesions of tendons
(perhaps giving
rise to various deformities
of the feet, such as
flat foot or even club-foot)
are extreme and
unusual complications.
Where the varicose ulcers have persisted for a long
time and refuse to heal, it is always advisable to apply the
Wassermann test in order to exclude the possibility of
syphilis. In doubtful cases it is also advisable to test by the
Noguchi luetin skin reaction.
VARICOSE ULCER
Treatment. In these cases of varicose ulcers it is impossible
to effect a cure until the chronic congestion of the
[Pg 324]limb is relieved and the blood supply of the part approaches
normal. Often all that is necessary is a gauze,
muslin, rubber or flannel bandage.
A bandage, when applied with moderate, even pressure,
has for its purpose the relief of congestion. In a great
many cases rubber has an irritating effect upon the skin,
and that kind of a bandage should therefore be cautiously
used. When the granulations are almost on a level with the
skin, and also where there is considerable thickening of the
edges of the ulcer, the best means of keeping up an even
pressure and causing absorption of the thickened margins,
as well as of hastening epithelial growth, is to apply zinc
oxide adhesive plaster in strips, one-half to one inch in
width. These strips should overlap to the extent of about
one-third of their width, should extend about three-fourths
of the way around the limb, and should be evenly and
smoothly applied. They should be started about one inch
below the ulcer and should run from two to three inches
above it.
In order to effect a permanent cure, varicose veins
must be operated upon, and a number of operations have
been devised, as follows: the ligation of the internal saphenous,
as advised by Trendelenburg; the multiple percutaneous
ligations of Schede; the total extirpation of the internal
saphenous, as recommended by Mayo; the dissection after
the method of Madelung; and the spiral of Rindfleisch.
Perforating Ulcer of the Foot. This type of ulcer usually
occurs where pressure and irritation are greatest and
is therefore commonly found on the plantar surface of the
foot under the heads of the first and fifth metatarsal bones,
and on the under surface of the great toe. Occasionally,
however, they develop on the dorsal surfaces or ends of the
toes, in cases such as hammer toe.
Etiology. There are various theories relative to the
causation of lesions of this nature. One claims injury to be
the sole cause; another attributes it to arteriosclerosis and
capillary thrombosis; still another charges it to chronic
[Pg 325]peripheral neuritis and alteration in the nerve terminals.
One writer states that traumatism is an important factor in
their development, conceding, however, that various systemic
conditions must necessarily enter into the etiology,
among them, locomotor ataxia and injuries to the spinal
cord, diabetes and injuries to the peripheral nerves. This
latter, known as the
“mixed theory,” is the
one most generally accredited
and is in all
probability most correct.
This type of ulcer is
found more frequently in
males than in females
and it occurs almost exclusively
in adult life
(between 40 and 60
years). Occupation is a
predisposing factor, and
work demanding long
periods of standing or
walking unquestionably
has much to do with the
development of a perforating
ulcer, all other
conditions being equal.
POST-OPERATIVE DIABETIC ULCER
Characteristics. The
ulcer is usually found to
be irregularly circular in
shape, with a tendency to
progressive development, involving the deeper soft tissues,
finally attacking the periosteum and the bone itself, causing
necrosis. The superficial edges of the ulceration are heavily
calloused and the lesion shows little or no tendency to heal.
One of the most marked characteristics is the entire loss of
sensation. Many cases have been observed where the
patient feels no pain, even when the lesion is deeply probed.
[Pg 326]
Symptoms. At times, particularly in diabetic patients,
a purulent blister is the initial lesion, but in most instances
these lesions develop under a heavy callous, the centre of
which breaks down into an indolent superficial ulceration,
discharging a thin, discolored, odorous pus, but never in
great quantities.
The fact that changes in the peripheral nerve supply
usually take place in the development of perforating ulcer
probably accounts for the absence of pain, as above mentioned,
and also explains the progressive degeneration
which takes place, allowing the ulcerative process to progress
into the deeper tissues.
Treatment. The systemic disturbances which may be
present are important factors to be considered in the treatment
of perforating ulcer, but local applications may be
made and local conditions must be considered. If the ulcer
be upon the plantar surfaces of the foot, walking and standing,
which would bring continued pressure, must be avoided.
Shoes must be well fitted and must not irritate the parts,
and cleanliness must be obtained and maintained. All callous
must be removed from the edges of the ulcer and proper
drainage is of great importance. All necrosed tissue must
necessarily be removed and any burrowing sinuses should
be thoroughly opened. Artificial hyperemia, massage and
electricity are found to be of benefit in improving the general
circulation in the foot and leg.
In the local treatment of the ulceration itself, prolonged
application of strong germicidal solutions is to be avoided
at all times. Cleansing with warm normal salt solution is
recommended as a non-toxic and stimulant application.
Dressings may be of plain aseptic or iodoform gauze
packed lightly into the ulcer. These lesions are discouraging
to treat, inasmuch as even after complete healing, relapses
usually occur which leave the parts as bad or worse
than the original lesion.
Stimulant applications may be employed locally, with
some success in connection with internal medications for the
[Pg 327]systemic disturbance present. Balsam of Peru or scarlet
red (1% to 3%) are advocated in this connection.
The prognosis in cases of perforating ulcer is bad, inasmuch
as the progress of the lesion sooner or later involves
sufficient tissue in the degenerative process to necessitate
surgical interference—perhaps amputation of the foot. As
has been previously
mentioned, even when
fully healed, relapse almost
always occurs.
The Syphilitic Ulcer.
The syphilitic ulcers do
not properly come within
the province of the podiatrist
for treatment, but
he should be able to
recognize them. They
may develop from pustules
or begin as original
lesions in the tertiary
stages of the disease. Developing
in this latter instance
from gummata,
they are immediately
deep ulcers.
The worst superficial
ulcers of syphilis may
develop early in the
course of the general
disease.
SYPHILITIC ULCER OF THE LEG
Symptoms. These ulcers vary in size from a quarter
to a silver dollar and occur on the upper third of the leg,
occasionally on the upper part of the middle third. During
the early stages of the lesion it is surrounded by an inflamed
area of skin at the ulcer and presents an even, “punched
out” edge. Being a new growth, developed in the corium,
the edges are usually more firm and dense than in other
[Pg 328]forms of ulcer. The floor of the lesion is of a dusky red or
coppery color, and has a characteristic slough of a greenish
color. The discharge is frequently bloody and is filled with
broken-down tissue.
If on account of the presence of enlarged veins, it is
difficult to distinguish a syphilitic from a varicose or other
type of ulcer, a positive Wassermann test will confirm the
diagnosis.
Being merely a local manifestation of a general infection,
the systemic disturbance must be treated by a licensed
physician. It is generally found that a lesion of this type,
once healed, remains so.
Treatment. Treatment for syphilitic ulcers comprehends
the use of mercurials as local applications. Mercury
bichloride ¹⁄₁₀₀₀₀ may be employed with beneficent results
in most cases where a profuse discharge is present. Where
there is little or no discharge, calomel powder dusted into
the ulcer will give good results.
As in most cases where a syphilitic lesion has developed
locally on the leg, the patient is or has been under a physician’s
care, practically none of these cases come to the podiatrist
for his treatment alone. Many times, however, he is
called in by the physician to do local dressings under his
direction, and it has even happened that the podiatrist has
been the first to recognize the significance of the local lesion.
[Pg 329]
CHAPTER XXI
CUTANEOUS MANIFESTATIONS OF
SUPER-ACIDITY
A surcharging of the blood with an abnormal amount
of acidity leads generally to conditions which come under
the domain of the physician. So-called rheumatism, gout
and kindred ailments of all forms and varieties are every-day
occurrences, and, being symptoms of systemic disturbances,
should be treated by internal administration.
The podiatrist, however, in his daily treatment of foot
troubles is called upon to treat locally certain forms of skin
disturbances due to hyper-acidity which manifest themselves
upon the surfaces of the foot.
Uric acid eczema is the general term employed to designate
these annoying conditions and is synonymous with the
older and now obsolete terms, lithemia and uric-acidema.
Definition. Uric acid eczema is a skin eruption due to
a surcharge of uric acid in the blood and a precipitation of
this acid in a certain part, so that the acid elements or
urates are carried by the blood stream to the skin and there
set up a dermatitis.
Characteristics. These manifestations may be found
in all varieties and degrees from a mere dryness and hardness
of the skin, in which the normal flexibility is gone, and
in connection with which there is usually intense itching and
burning, to the formation of deep fissures (usually found in
the toe webs) and small ulcerative processes which may
manifest themselves in any part of the foot and often present
a stubborn resistance to all endeavors at healing.
These symptoms may occur singly or, as in the most instances,
in combination.
[Pg 330]
These conditions are usually met with in the spring of
the year and no doubt are brought about by a series of
changes in habits and diet which occur at this time.
Etiology. During the winter months the average person
takes but little physical exercise as compared to his
activities during the warmer weather. The foot, being at
the base of a column of blood which must be forced back to
the heart, against gravity, is coming constantly in contact
with cold surfaces. This, together with a lack of exercise,
tends to stagnate the blood circulation in the pedal extremities.
Coupled with these two conditions, during the winter
months, people are inclined to over-eat and over-drink, the
waste materials from which excesses are but improperly
eliminated, due also, to a great extent, to insufficient exercise.
Here, then, we have a stagnation of the blood current
in the pedal extremities, a surcharging of the blood in the
feet with certain urates, and a precipitation of these solid
constituents, due to the cold surfaces with which those
members constantly come in contact.
This condition is present in the spring of the year
when fresh vegetables and fruits begin to come into the
market. A great many of these edibles, particularly strawberries
and tomatoes, are markedly acid and when ingested
tend to exaggerate the conditions in the blood already present.
The result is generally a cutaneous eruption which
may appear on any part of the body and which frequently
occurs in the feet. (See chapter on Fissures and Burns.)
Fissures. Probably the most common condition met
with from this cause is the cracking or fissuring of the toe
web. This may be accompanied by itching and burning in
varying degrees, but these latter complications are not
always present. The skin between the digits is found to be
blanched and macerated and often the superficial epidermic
layers will become slightly thickened and exfoliated. The
fissures occur in the web and are due to the skin losing its
normal flexibility so that the tissues, as they expand in
walking or in drying the parts with a heavy, rough towel,
[Pg 331]are not sufficiently extensible, and so they crack or fissure.
These cracks may be merely superficial splits through the
epidermic layers or they may become deep and ugly fissures
which penetrate well into the corium. When they reach
this latter stage, the parts are found to be exceedingly tender
and the irritation to the tissues is severe. These fissures
are prone to infective processes as their deep recesses
present an excellent lodgment for invading bacteria.
The fissured area is usually confined to the web, but
may be found extending around under the toe on either side
or upon the plantar surface of the foot. When these conditions
are of long standing, the edges of the fissure will
be found to be thickened and calloused; it is found necessary
to remove this growth before normal granulations may
be expected.
Treatment. In cases where only pruritis is present
and no distinct lesion manifests itself, tr. benzoes compositas
will be found an efficient agent in reducing the itching
and in aiding the general irritation to subside. In superficial
fissures, tr. benzoin compound may also be used in
many cases with good results. The parts should first be
thoroughly cleansed with alcohol, 60%, dried, any loosened
or exfoliated epidermis to be removed before the benzoin is
applied. More or less smarting is to be expected from the
application of the tincture, but as this is very transient, no
great amount of pain is suffered by the patient. The tincture
is applied by means of a sterile, cotton wound applicator,
and is painted well down into the fissure itself, and
over considerable of the surrounding integument. This
tincture is very sticky and should be allowed to dry thoroughly
before the hosiery is replaced. As compound tincture
of benzoin forms a thin film or coating upon thoroughly
drying, no gauze or cotton need be placed over the painted
areas. This application may be renewed daily, the coating
from the previous application being removed by alcohol
and the parts cleansed and dried before the second application
is made.
[Pg 332]
Mild vegetable astringents may also be employed in
such cases. Principal among these are gallic and tannic
acid. These drugs may be used in solution, ointment or
dusting powder form and seem to be efficient in all.
Dusting powders are usually preferred and the two
most popular are bismuth subgallate (dermatol), a combination
of bismuth and gallic acid, and tannoform, a
powder containing 5 to 10% of tannic acid. These are
applied after the parts have been made aseptic and thoroughly
dried. Bismuth subnitrate may also be used with
good results in this condition, as may thymol iodide (aristol).
The latter has very little astringent action and, therefore,
except for its antiseptic properties, cannot compare
with the other powders mentioned. Pure ichthyol may also
be used in the treatment of superficial fissures. The drug
is dropped into the lesion and covered with gauze or cotton,
as are the dusting powders. Another drug recommended in
these cases is sodium bicarbonate. This agent is alkaline in
its reaction and, coming in contact with the perspiration
(acid) in these parts, serves to neutralize this excretion and
so aids in returning the tissues to normal.
There are many other preparations, any of which may
be used in the treatment of fissured toe webs. Among these
are ichthyol ointments, 5 to 10%; balsam of Peru, scarlet
red, and a 5% ointment of ammoniated mercury. Reports
of cases treated by the above varying drugs show good
results.
When the fissures are deep, and the discharge from
their surfaces is considerable, slightly different measures
must be adopted to hasten granulation. The edges of deep
fissures are almost always found to be calloused and thickened
and this condition, of course, must be eradicated before
further treatment is administered. This is accomplished
with a knife or shallow curette and the operation is
usually painless to the patient and creates no hemorrhage.
After the removal of this tissue, if the fissure be deep, silver
nitrate, 5% solution, will be found efficient as an astringent
[Pg 333]to contract the parts and reduce exudation. After this
application, a bland ointment is smeared over the area for
the purpose of keeping the tissues soft, and this is covered
by a sheet of gauze or cotton to hold it in place. Applications
of the silver solution are made at frequent intervals
until the desired result is obtained, when it may be discontinued
and some dusting powder resorted to, to complete
the healing process. Should proud flesh have developed in
a lesion of this nature, through neglect, stronger solutions
of silver nitrate or the fused stick must be resorted to for
reduction of the superfluous granulations, followed by a wet
dressing of liq. alum. acetate to aid in the reduction of the
accompanying inflammatory symptoms. Lanolin and cocoanut
oil have both been found efficient to massage into the
parts in order to keep them soft and to prevent continued
dryness and fissuring.
Blebs. Aside from the fissuring of the interdigital
webs, super-acidity manifests itself upon the skin of the
foot, and the whole body for that matter, in the formation
of yellow or brownish blebs or vesicles. They are found to
be a more or less circumscribed eruption and are met most
frequently in the foot on the plantar surface in the hollow
of the longitudinal arch. They range in size from a pinhead
to a pea and, in most instances, are but slightly elevated
above the surface of the surrounding epidermis.
This is in all probability due to the involvement of the
superficial parts of the true skin.
These lesions are usually uniform with a tendency to
coalesce, and cases have been noted where patches of these
eruptions covered a considerable area, in one instance, from
the under surface of the foot, over its inner side, to the
internal malleolus. Vesicular developments of this nature
seldom occur singly but are often found in several groups
on different parts of the integument, each group consisting
of two, three or four distinct blebs.
Pruritis may or may not be present in connection with
this dermatitis. When itching is present it is usually intense
[Pg 334]and the patient often breaks and tears the skin in an effort
to relieve the irritation.
The areas of normal tissue adjacent to the eruptions
may be found involved in a slight inflammatory process,
although this is not common. These inflammatory symptoms
usually subside rapidly under treatment.
Treatment. It is usually found advisable, if possible,
to allow these blebs to remain intact, making no effort to
puncture them but simply applying a dressing which will
promote and hasten their absorption. Cases have been
noticed where these lesions have been opened and have developed
into angry, deep ulcerations which showed a
marked tendency toward indolent granulation accompanied
by profuse discharge.
However, when a bleb for any reason must be opened,
it is best accomplished by use of a sharp pointed, sterile
knife. The fluid contents are found to be a thin, syrupy,
translucent, discolored serum, without any great odor, although
resembling ichorous pus to some degree. There is
a distinct loss of tissue as the ulcerations are often found to
involve the upper parts of the derma. Upon evacuation of
the fluid contents, the parts should be thoroughly sprayed
with alcohol, 60%, and a moist, unguent or dusting powder
dressing, as the operator desires, applied.
The solutions which may be used as moist applications
are liq. aluminum acetate, or boric acid (saturated solution).
Powerful germicides, such as mercury bichloride, are not
necessary unless an infective process be present, and when
used needlessly, they simply prevent or break down new
granulations.
The dusting powders found useful in this connection
are aristol (thymol iodide) and dermatol (bismuth subgallate).
The parts should first be thoroughly dried before
the powder is dusted on. If the discharge is found negative
and the pruritis still persists, an ointment of ichthyol and
sulphur, such as follows will prove efficient in reducing the
itching and in stimulating healthy granulations:
[Pg 335]
Ichthyol
1.
Sulphur
1.
Menthol
1.
Vaseline
32.
This unguent is best held in place by a cocoon dressing
and should be renewed until granulation is complete. Other
unguents which may be used in this connection are sulphur,
10% (lanolin or vaseline base), balsam of Peru, 5%, and
unguentine (a proprietary but useful combination of ichthyol,
balsam of Peru and zinc oxide). These, however, do
not tend to relieve the intense pruritis which usually accompanies
these lesions as efficiently as the first mentioned
combination.
URIC ACID AND THE NAILS
The toe nails also manifest conditions of super-acidity.
They may be affected as to color or texture, and sometimes
in advanced or neglected cases, as to size and shape.
Discoloration. The nails, due to functional derangements
in the matrix, become loosened and discolored from
the presence of an abnormal amount of uric acid. They
may be whitish, yellowish or brown, and in some cases are
found almost entirely black, as if bruised. The nails in
these instances are usually entirely loosened, or at least in
part, from the bed, and sometimes fall off, practically of
their own accord.
Treatment. Nothing much can be done locally for
these conditions, and the main concern of the podiatrist is
to see that the edges of the loosened nail are not allowed to
irritate the softer tissues adjacent. This is best accomplished
by packing cotton or gauze under these edges so that
the nail, if movable, will rub upon this packing and not upon
the skin. It may be found advisable to first clean out (from
under and around the nail) any excrementitious matter
which is always present to a greater or lesser degree. However,
too much “digging” about these parts should never
[Pg 336]be indulged in, as the operator is liable not only to cause a
lesion, but to loosen the nail to such a degree that its removal
is imperative. If possible, this is to be generally
avoided, for it has been found advantageous to allow the
older nail to remain in place as long as possible in order to
protect the new-forming nail beneath. Alcohol, 60%,
sprayed over the part after removing the disintegrated
material, will serve as a cleansing agent and will insure
asepsis to the parts.
Texture Changes. Under the influence of uric acid precipitation
in the pedal extremities, the texture of the nail
is often found changed to a marked degree. The nail becomes
exceedingly hard, dry and brittle so that it powders,
chips off and breaks away under any sort of pressure. The
nails are often found ridged, and in some instances these
longitudinal ridges have become decided and permanent
cracks in the nail body.
Treatment. In clipping nails of this nature, care
should be taken that too much does not chip off or break
away from the pressure of the clipper blades. It will be
found advisable to cut but a small portion of the nail at a
time, and that very carefully. The waste material found
around or under the nail body should be carefully removed
and, if necessary, the nail itself should be thinned out by
the use of a rotary file. The parts should be thoroughly
cleansed, and the grooves and free edge should be packed
with gauze or cotton to prevent the nail from moving during
the movements of the toe and thereby developing trouble.
Changes in Size and Shape. The so-called “club” nail
is found in many cases where the patient is a sufferer from
a uric acid diathesis. This does not occur as frequently in
cases of acute dermatitis as in cases of chronic rheumatism
and gout. These are cases where there is functional derangement
of the matrix which causes the nail’s longitudinal
growth to be arrested, followed by an increased vertical
development.
The nail is generally found to be about one-half its normal
[Pg 337]length and may be from one-sixteenth to one inch or
more in thickness. Cases have occurred where the nail in
appearance and structure closely resembled a cow’s horn.
Club nails of this variety do not, as a rule, cause a great
amount of discomfort and then only when they develop to
such thickness as to receive and transmit direct pressure
from the shoe.
Treatment. Club nails are not curable and the treatment
is merely cosmetic. It consists in grinding and filing
the nail down to what would be its normal thickness, or as
nearly that as possible. This, of course, is best accomplished
by means of a rotary file. As much of the nail is
clipped away as is possible, when the rotary file with a
coarse-grained “barrel” bur is used. Considerable pressure
should be brought to bear unless the patient complains
of heat due to the friction. When the greater portion of the
nail is thus removed a “finishing” bur is substituted and
the roughened surfaces are smoothed off. The clippers
should then again be used to give the nail a fairly normal
shape and the parts under the nail are to be then cleansed
out as much as is advisable.
In using a rough cutting bur the operator must exercise
great care that the skin covering the posterior or the
lateral folds is not broken. If the handpiece of the file is
grasped firmly in the palm of the hand and directed by the
index finger while the thumb is rested on the toe and the
bur is directed to it (the thumb), the operator will always
have complete control of the instrument, and this danger
is minimized. It will be found advisable, after cleaning
under and around the nail, to spray the parts with some
antiseptic solution or to paint the parts with tincture of
iodine. This is done to insure complete asepsis. Should the
skin be broken during the filing or cleaning, the parts should
be first made thoroughly aseptic and a dressing to prevent
contamination should be applied.
Prognosis. It must always be remembered that these
lesions are merely local manifestations of a systemic derangement
[Pg 338]and although the painful or annoying characteristics
may be alleviated or cured, the cause of the trouble
must be reached, through internal channels.
Diet is the principal means of removing this surcharged
acid condition of the blood and, although some
medicines or waters may be and are ordered by the physician
as eliminants, proper care as to dietetics is essential to
the patient’s well-being. Systemic treatment by the physician,
combined with local applications by the podiatrist, are
usually conducive to beneficent and lasting results. In cases
of manifestations of a uric acid diathesis in the nails,
nothing much can be done except through the channels just
described; and in cases of club nails due to a like etiology,
nothing can be done to cure them. Removal of the nail does
not, as is sometimes supposed, effect a cure, and in many
instances serves but to make the new nail even worse than
its predecessor.
[Pg 339]
CHAPTER XXII
VOCATIONAL FOOT DISORDERS
Among the numerous diseases of the foot, there is a
class of lesions produced by strain and misuse, in consequence
of the occupation of the individual. Many occupations
cause those who are engaged in them to stand or walk
for long periods of time on hard and unelastic ground, and
others subject the foot or a part of it to such unusual work
that the entire foot, or a part of it, ceases to functionate
normally.
Weakfoot. The general term “weakfoot” is used to
indicate all types of disability caused by improper functioning
of the foot. It is particularly applied to that condition
of the foot in which the muscles and ligaments on its
inner side have become weakened by overuse or by improper
use, and it is, as a vocational foot disorder, common among
barbers, waiters, letter-carriers, policemen and servants. It
manifests itself by pain in the foot, particularly in the heel
and on the inner side, and sometimes by pain in the calves of
the legs, in the knees and lower part of the spine.
At rest, the foot has a normal appearance, but, under
weightbearing, it assumes an attitude of deformity varying
in degree with the extent of the overwork to which it has
been subjected. The chief characteristics of weakfoot are:
abduction of the forefoot, an inward rotation of the upper
part of the heelbone and a flattening, or obliteration, of the
longitudinal arch under weightbearing, only. When seen
in its incipiency, an anatomically correct shoe, together with
suitable exercises, can be made to arrest the progress and
effect a cure of weakfoot; but when found in the advanced
stages it takes from several months to several years of conscientious
[Pg 340]work on the part of the practitioner and the
patient to get results. In such cases, massage, adhesive
plaster strapping, corrective braces and shoes, exercises and
sometimes immobilization in an overcorrected attitude by
means of plaster of Paris dressings, have to be employed
in order again to get a normally functionating foot.
Flatfoot. This is a condition in which the longitudinal
arch is depressed and does not regain its normal position
when relieved from pressure. The forefoot is abducted, the
head of the astragalus rotates downward and inward, and
the os calcis rotates inward from above and outward from
below. It is the successor to the weakfoot and differs from
it only in that it exhibits also at rest, the abnormal attitude
that a weakfoot assumes under weightbearing only. In flat foot
this attitude is static, in weakfoot it is only temporary.
The person afflicted with it walks with a shuffling gait, due
to the accommodative changes that have taken place in the
muscles and ligaments of the foot.
The Subjective Symptoms are similar to those in weakfoot
and quite often are not as pronounced as in weakfoot,
due probably to the fact that in this condition a further
stretching and strain of the ligaments is impossible as the
limit has already been reached.
The Treatment is similar to weakfoot, but must be augmented
by means to overcome the accommodative changes
in the foot and leg. The same class of patients suffer from
this condition as are sufferers from vocational weakfoot.
Chauffeur’s Foot. As the term indicates, this condition
is found in people who professionally, or otherwise, drive
an automobile for many hours each day. It is an affection,
usually of the right foot and leg, due to the excessive use of
those members while “feeding the car.”
The constant pressure of the “ball” of the foot on the
accelerator causes pain in that part of the foot, followed
by a numbness of the entire foot. The foot feels as if it
were dead and when moved, later on, feels as if a
thousand needles were penetrating it. Cramps in the calf
[Pg 341]muscles are usually associated with the symptoms in the
foot.
Treatment. Massage of the foot and leg together with
flexion exercises of the foot and toes.
Policeman’s Heel. When a person is compelled to
stand upon hard pavements for a long period of time, great
strain is put upon the tissues over the os calcis or heel.
The calcaneo bursa becomes inflamed and gives rise to
pains in that region. This inflammation may affect the
periosteum, causing periostitis and finally a spur may
develop on the under surface of the heel bone, which will
become a source of constant pain.
The Treatment consists of rest to the part, and of transferring
the weight to a place other than the painful area,
by means of a felt pad or a brace. If a spur has developed,
surgical intervention will be necessary.
Dancer’s Foot. This is a foot lesion first described by
Miss Bryde Campbell, of New York City, who termed it the
“Modern Dancer’s Foot,” because she found it to occur
almost invariably in women who were in the habit of
dancing excessively in a modern high-heeled slipper. It
is a painful enlargement of the tissues under the head of
the first metatarsal bone and is found, as a rule, in the left
foot only. The under and inner side around the head of
the first metatarsal bone becomes painful to the touch, and
under weightbearing. It is best described as a periarthritis
although it is often complicated by a bursitis.
Treatment. Measures to relieve the painful part from
weightbearing. (Felt pads, braces, etc.) Rest and means
to reduce the existing inflammation.
Golfer’s Foot. The attitude assumed in playing golf,
especially when driving the ball from the tee, often gives
rise to a painful condition called “Golfer’s foot.” This
pain is felt on the dorsum of the foot over the course of
the extensor brevis digitorum muscle. The extreme extension
of the foot, while striking at the ball, is the direct cause
[Pg 342]of the pain. Massage and rest have proven of benefit in
Golfer’s Foot.
(Full details of all orthopedic lesions have been but superficially
treated in these pages by reason of the fact that “Podiatry
Orthopedics,” a volume now in the course of preparation and the
next of this series (Otto F. Schuster and Alvah H. Stafford,
authors), will provide exhaustive material bearing upon all phases
of foot orthopedics).
[Pg 343]
CHAPTER XXIII
LOCOMOTION AS AN AID
IN DIAGNOSIS
One need not be a very experienced physician to know
that there is a group of diseases, mostly of the nervous system,
which at a certain point of their evolution, stamp the
sufferer with a characteristic mode of locomotion. To
observe such a modification of the normal walk is often sufficient
to make a correct diagnosis.
It is strange, however, how little attention this important
subject has received from the medical profession. In
fact, other than the work of the brothers Weber, who established
the physiology and mechanism of human locomotion,
of Neugebauer and of Gilles de la Tourette, who developed
the ichnogram method of gait study, scarcely anything of
importance has been done along these lines for the last quarter
of a century. The study of the mode of locomotion in
various diseases and ailments remains, therefore, a fertile
field of research for the podiatrist.
Elements of Locomotion. The act of locomotion or the
power of progression is not a simple one. Various co-related
movements combine to form what we ordinarily term
the walk. The three chief elements are: (1) Posture, (2)
Station, and (3) Gait. These three factors may be influenced
by local or general diseases, either separately or
together.
Posture. Posture is the term applied to the position
of the body in space and is not of much interest to the podiatrist
except as corroborative of the two other elements of
locomotion. It has, however, its value in diagnosis and the
new practitioner of podiatry will do well to learn to observe
[Pg 344]the position of the body at various angles and in various diseases.
One should learn early, for instance, that immobility
is not always due to paralysis. It may be due to pain,
as in rheumatism or to a disinclination to move as in scurvy,
rickets or any condition causing dyspnea. The restlessness
in fevers and in large hemorrhages, as well as the throwing
about in renal, gallstone or intestinal colics, is known to all.
Equally characteristic are the agitation and irregular movements
in chorea and hysteria; the gun-hammer posture in
cerebrospinal meningitis, and the opisthotonos in tetanus
and strychnine poisoning.
Station. Station is the power of standing more or less
firmly on one’s feet. It includes attitude which is the manner
of standing, i.e., the relation of the rest of the body to
the erect position. The carriage of the head and shoulders
should be noted; the shape of the entire body whether bending
forward, as in “stooped shoulders” (faulty attitude
habit) and in paralysis agitans, or bending backward, as in
ascites and abdominal tumors, should be closely studied and
differentiated from the actual lordosis which is seen in
spinal diseases, in advanced pregnancy, in pseudo-hypertrophic
paralysis and in cretinism. The strictest attention
should be paid to the attitude of the lower limbs, their
individual shapes and their relation to each other when the
erect position is assumed. The degree of firmness with
which the individual stands should always be taken into
consideration before a final diagnosis is made. Swaying is
the term applied to any departure from the ideally rigid
erect attitude and perpendicular station. The normal
individual, with eyes open and heels close together, sways
about one inch forward and three-quarters of an inch from
side to side. In functional and static ataxias, the swaying
may become so extreme as to produce absolute incapacity
to stand.
Gait. This term means the specific manner of walking.
It is a narrower term than locomotion which is the power
of walking. It is, however, the chief factor in the act of
[Pg 345]progression and in the majority of cases it is characteristic
enough to stamp itself indelibly on the normal as well as
on the diseased individual. While in character reading, gait
expression may not be as popular as face expression, it is
often more reliable and in certain diseases it is simply
invaluable as an aid in diagnosis.
METHODS OF DIAGNOSIS
A.—The Observation Method. This is the usual method
of ascertaining the gait of an individual. It is practised
by the average physician and podiatrist and consists in
observing the patient while he or she walks up and down
the room, taking notice of the peculiarities of gait which
may develop. The patient may be allowed to roam freely
about the room or should be directed to follow a carpet seam
or a crack in the floor at right angles to a previous line of
vision. This may be varied by opening or closing the eyes,
stretching out the arms, with legs wide apart, or keeping
them close together. Brisk walking should alternate with
a slower gait and the effect of stopping abruptly and turning
sharply at command should be closely observed.
It is best to have the patient uncovered from the hips
down. In women, the nightgown or chemise can be pulled
tightly between the thighs and fastened anteriorly with a
safety pin.
Caution. Due allowance should be made for nervousness
and a careful watch must be maintained against a
serious fall.
Fig. 1
ICHNOGRAM OF A
NORMAL GAIT
B.—The Ichnogram Method consists in studying the
impressions left by both soles (previously colored) when
walking on paper for a distance of about twenty-five feet.
Ichnograms (from the Greek—ichnos—trace, and gramma—to
write) as a method of gait diagnosis are more exact
than the method of observation and should supplement it.
Besides, they inform us, at the same time, of the state of
the plantar arch as each pelmatogram (the impression of a
[Pg 346]single foot) shows more or less clearly
a posterior oval which changes but
little, and an anterior oval as well as
toe marks which undergo characteristic
contour changes, depending on
the state of the ligaments, of the tarsal
and metatarsal bones and phalanges,
and the relation of these structures
[Pg 347]to the musculature and innervation of the foot.
Comparatively little has been accomplished along this
line of endeavor, although it offers a vast and fruitful field
for podiatric research. In fact this branch of podiatry
deserves a special treatise, and it will be discussed in fuller
detail in our forthcoming book on Podiatry Orthopedics.
Fig. 2
A. PELMATOGRAM OF A NORMAL
FEMALE FOOT
B. MODIFIED PELMATOGRAM
SHOWING WEIGHT BEARING
POINTS
Fig. 3
PELMATOGRAM OF A MALE,
SHOWING FLAT FOOT
Classification of Gaits. Strictly speaking there are only
three types of gait: (1) the paretic, (2) the ataxic and (3)
the choreic. In some diseases there may be a combination
of the three, while in others one type of gait predominates
during the early stage and another during the later developments.
At times, one comes across a gait that combines
characteristics of the three types and hence is difficult of
classification.
I.—Paretic Gait.Paresis means a lessening of the normal
motility of a muscle, while the term paralysis denotes
entire absence of motor power. We may have, therefore,
two or three distinct paretic gaits according to whether the
muscle is slightly or severely weakened or entirely paralyzed:
A.—The mild paretic gait.
B.—The moderate or flaccid paretic gait.
C.—The severe or spastic paretic gait.
A.—The Mild Paretic Gait is caused by muscular weakness
due to a large number of etiologic factors. It results
in slowing of locomotion, the steps being shortened on
account of an exaggerated flexion at the knee joint. The
following are examples of mild paretic gaits:
(1) The Pompous Gait. The upper part of the body
leans backward, the back is hollowed, the abdomen is protuberant,
the feet are widely separated and appear to move
with deliberation and dignity, giving the impression of
conscious importance—hence the name. This gait may be
seen in obesity, pregnancy, ascites, large abdominal tumors,
cretinism and rickets.
(2) The Hobbling Gait. The pelvis tilts towards the
[Pg 348]sound side, while the trunk leans over to the affected side,
causing more or less pronounced limping. This gait is
seen in people afflicted with corns, rheumatism, gout, sciatica,
plantar neuralgia, Morton’s neuralgia, metatarsalgia,
hip or knee joint disease or injury (recent or old), sacro-iliac
disease, sprains, inflammatory diseases of the lower
extremity, chimatlon, short leg, paralysis of one leg,
abdominal aneurism, and subacute and chronic appendicitis.
(3) Intermittent Limping (disbasia angiosclerotica or
intermittent claudication) may be classified here and is
a curious limping gait which develops in arteriosclerosis
of the lower extremities. There are pain and fatigue on
walking, which disappear after a short rest, to reappear
again soon after walking is resumed. The pulse is weak
or absent below the knee.
(4) The Waddling or Goose Gait. The pelvis and head
of femur are jerked forward at each step, knee advanced
and extended only after foot is flat upon the ground. There
is more lordosis and swinging of the body from side to
side at each step, than in the pompous gait. It resembles
the gait of a goose. The patient cannot stand on tiptoe.
It is seen in: congenital dislocation of both hip joints and
in pseudo-hypertrophic muscular paralysis, a hereditary
disease seen mostly in boys under ten years of age, and
characterized by inability to get up from the floor.
(5) The Wobbly Gait. Resembles the above and is due
to atrophy or paralysis of the three glutei muscles and prevents
the patient from climbing. This inability to climb is
also seen in those exhibiting the waddling gait.
(6) The Tottering Gait. Seen in those who have taken
large doses of bromides for long periods; also in hydrocephalus,
in Korsakoff’s disease (psychosis polyneuritica)
and in idiopathic muscular atrophy.
(7) The Shuffling Gait is the gait seen in normal old age
or senility and is associated with slowly progressive loss of
strength and mentality. It is also seen in general paresis
and is the “normal” gait of the long-term prison inmate.
[Pg 349]The patient gives the impression of being too lazy to lift
his feet and instead pushes them along with his legs.
(8) The “Charlie Chaplin” Gait has been erroneously
described as an ataxic gait. It is rather a combination of
the “funny part” of several gaits in which the waddling,
shuffling, tottering paretic gaits predominate and to which
some elements of the spastic paretic, as well as the ataxic
gaits, have been added. The inspiration must have come
originally to the celebrated movie star from some waddling
cripple whom he proceeded to imitate and later burlesqued.
B.—The Moderate or Flaccid Paretic Gait. In this
form of the paretic gait there is commonly a paresis of a
certain group of muscles, usually the extensors of the foot
or the peronei, causing “toe drop” and apparent lengthening
of the affected extremity. It corresponds to the “wrist
drop” of the upper extremity. To compensate for the
lengthening of the limb, overflexion at the hip or knee, or at
both joints, takes place. The limb is flaccid or flabby.
The foot is lifted high up with each step in order to
raise it clear off the ground and avoid tripping. As the
foot is brought down, heel first, this gait may sometimes
be confused with tabes and is therefore sometimes referred
to as the pseudo-tabetic gait. It is, however, easily differentiated
from the true tabetic gait by its characteristic
“high action” or “high stepping” quality which made
Charcot compare it to the gait of a horse and hence called
it:
(1) The Steppage Gait, mostly seen in the chronic intoxications
producing neuritis. It resembles the gait of a
man walking through thick grass or brushwood and stepping
over constantly recurring but non-existent obstacles. The
typical steppage gait is seen in arsenical neuritis with
ankle drop, also in alcoholic neuritis, polyneuritis potatorum
(ataxia of drunkards) and in lead neuritis (lead
palsy, plumbism, saturnism), in which first the peroneal
muscles are affected, later the extensor communis digitorum
and finally the extensor proprius hallucis. Phosphorus,
[Pg 350]copper and grain (ergotism) poisoning may give rise to
a neuritis in the lower extremities and produce the characteristic
steppage gait. Tuberculosis, malaria, diabetes and
diphtheria (motor form) may sometimes produce this gait.
It may also develop as a sequel of sunstroke (thermic fever,
insolation) and in fact following any disease which will
cause peripheral neuritis of the anterior tibial nerve.
(2) The Prancing Gait is an exaggeration of the preceding
gait. It is seen in epidemic anterior poliomyelitis
(infantile paralysis) when the disease affects the anterior
horn cells of the lumbar cord, causing atrophy of the extensor
muscles of the foot, resulting in “foot drop.” It is also
seen in acute ascending paralysis (Landry’s disease), which
is probably a form of poliomyelitis, and in progressive
hereditary muscular atrophy of the leg (Charcot-Marie-Tooth
type) where the muscles of the leg, not the
foot, are primarily affected, i.e., first the peronei become
atrophied, later the extensors of the toes and finally the calcaneal
muscles. Finally the prancing may be seen in connection
with certain tumors of the cord, unilateral hip disease,
dislocation or injury and in multiple neuritis and beriberi
(epidemic multiple neuritis).
C.—The Spastic or Severe Paretic Gait. The spastic gait
is due to the hypertonicity of the weakened muscles, the
resulting stiffness causing a slowing of locomotion and
diminished excursion of the affected limb. The hypertonicity
is produced either by direct stimulation of the motor
cells in the anterior horn of the spinal cord, as in traumatic
myelitis, or by impulses coming down from the cerebral
cortex. The limb is spastic or rigid, due to the tonic spasm.
When the tonic spasm is of long standing, it is termed a
contracture. The lower extremity moves as a whole, the
toes clinging to the ground, scraping it and very often
“catching.” Contrary to the moderate paretic gait, this
group presents difficulty in flexion which is partly overcome
by the elevation of the pelvis on the side of the swinging
leg.
[Pg 351]
(1) The Mowing or Hemiplegic Gait. This is the prototype
of all spastic gaits and is encountered in its simplest
form in all hemiplegias, i.e., in paralysis of one side of the
body, which may be caused by cerebral hemorrhage,
embolism, thrombosis, syphilis, brain tumor, multiple
sclerosis of a cerebral hemisphere, meningeal hemorrhage
or suppuration, Raynaud’s disease, general paresis of the
insane; sometimes it may be due to hysteria (functional
hemiplegia) or to uremia (transient hemiplegia). No matter
what the cause of the hemiplegia, there is always the
typical mowing gait. This mowing movement is due to the
fact that the spastic limb swings lateralward, describing an
arc of a circle (outward), and strikes the ground in a flail-like
manner. Technically speaking, circumduction takes
place by tilting of the pelvis and the swinging of the foot
outward and around to the front. The patient afflicted with
hemiplegia makes the same movement with his limb as does
the reaper with the hand in which he holds the scythe.
Exception: the only paralytic gait in which there is no mowing
movement occurs in hysterical (functional) paraplegia,
which is very rare. In this condition the leg is dragged
forward instead of outward.
Important shoe sign in paraplegia. The sole of the
shoe is worn down on the inner side.
(2) The Small-step Gait (la marche à petits pas). This
gait is seen in cerebral softening following an apoplectic
stroke, especially in pseudo-bulbar paralysis; the steps are
very short and the feet are lifted from the ground with
difficulty, the patient seeming to count his steps.
(3) The Cross-legged Gait. This gait is due to a
spasm of the adductors of the thigh causing the knees to
rub against each other, resulting in cross-legged progression,
the lower limbs having a tendency to cross during
locomotion. It is seen in both Little’s congenital and Erb’s
syphilitic form of lateral spinal sclerosis. In the syphilitic
form, a dragging and shuffling gait is often associated with
the cross-legged type.
[Pg 352]
(4) The Ill-defined Spastic Gaits. Ill-defined spastic
gaits are seen in tetany (paroxysmal tonic spasm) from any
cause, and in amyotrophic lateral sclerosis, which is the
spastic form of progressive muscular atrophy (Charcot’s
disease). This involution disease, due probably to developmental
defects of the lateral pyramidal tracts, has the combined
symptoms of spastic spinal paralysis, anterior poliomyelitis
and bulbar palsy, hence the difficulty in classifying
it. Myelitis (inflammation of the spinal cord) may be due to
trauma, alcoholism, syphilis, vertebral caries (compression
myelitis), tumors, aneurism, hemorrhages into the cord, etc.,
and will exhibit various gaits according to the stage and
severity of the disease. It may begin with a mild paretic
gait passing through several stages of the spastic gait or
to complete paraplegia (paralysis of both lower extremities).
In complete paraplegia there is of course no gait,
as the patient cannot walk, there being a loss of the power
of locomotion but not of progression (a patient so afflicted
may still move from place to place on his hands).
(5) The Dragging Gait. In hemiplegia one foot only
is dragged. Dragging of both feet is seen in multiple neuritis,
hereditary peroneal atrophy, spasmodic spinal paralysis
and spinal and syphilitic spinal paralyses.
(6) The Dromedary Gait, so called on account of its
resemblance to the gait of a camel, is seen in children suffering
with progressive torsion spasm (Flatau-Sterling disease).
Finally, spastic paretic gaits are often observed in
pellagra (maidism, Italian leprosy, Alpine scurvy) and in
lathyrism (lupinosis), where the slow toxic spinal sclerosis
finally leads to spastic paraplegia and loss of the power
of locomotion; also in caisson disease (divers’ paralysis).
II.—The Ataxic Gait. The ataxic gait may be either:
A—The Static ataxic gait, or
B—The Functional ataxic gait
and these are termed either (1) spinal or (2) cerebellar,
according to the location of the lesion.
[Pg 353]
A.—The Static Spinal Ataxic Gait is the most easily
recognized gait, and once seen, is never forgotten. There
is an exaggeration of all the movements of locomotion. The
hips are overflexed and rotated laterally, the foot is raised
suddenly and too high, the toes are lifted and the whole limb
is thrown suddenly forward with unnecessary vehemence
and is then brought down heel first or flat-footed, with a
stamping sound. The feet are kept wide apart and while in
the air they move in an undecided manner, as if the patient
was doubtful where to put them. The eyes of the afflicted
person are glued to the ground or fixed to the limbs so as to
supplement the lack of muscular and articular sensation by
the sense of sight.
In the cerebellar type of this gait the movement excursion
is not as extensive as in the spinal type. A sudden
turning movement or an abrupt sitting posture is difficult
or impossible to assume in this type of locomotion.
In order to test static ataxia, the patient is made to
stand heels and toes together, whereupon marked swaying
takes place. The swaying is increased when the eyes are
closed and the patient looks like a “chicken on a clothes
line.” If there is more than one inch forward swaying and
more than three-quarters of an inch lateral swaying, the
patient is considered ataxic.
In the disease known as tabes dorsalis, or locomotor
ataxia of syphilis, the swaying may be so pronounced as to
produce absolute incapability to stand or to walk.
B.—The Cerebellar (functional) Ataxic Gaits. These
gaits are produced by a disturbance of the equilibrium
accompanied by vertigo resulting in a very irregular swaying
from side to side, resembling the gait of an intoxicated
person.
The patient makes short steps, keeps his feet wide
apart, staggers, rolls, sways to and fro and reaches a set
point by zigzagging toward it. The swaying is relieved when
support is given under the armpits.
(1) The Titubating Gait is a form of functional cerebellar
[Pg 354]ataxic gait seen in the following affections: Friedreich’s
(disease) ataxia; hereditary cerebellar ataxia;
dementia paralytica; ataxic paraplegia; labyrinthine disease
and to some extent in vertigo; syringomyelia; and in
some cases of general paresis, and various chronic intoxications
like lead or arsenic or alcohol poisoning affecting the
cerebrospinal system.
(2) The Reeling or Staggering Gait is seen in acute
alcoholic intoxication and Mésnière’s disease (disease of the
middle cerebellar lobe).
III.—The Choreic Gait. The choreic gait, sometimes
called tremor gait, spasmodic or hysterical gait, is very
variable in quality depending on the cause of the tremor.
It consists of a series of quivering or trembling movements
of varying intensity, but nearly all due to clonic spasm
and disappearing during sleep or passive motion. This
distinguishes it from the spastic or paraplegic gait in which
the spasm is tonic in quality, lasting from one minute to
one month. The clonic spasm, on the other hand, consists in
rapidly alternating contractions and relaxations of the
muscle.
(1) The Stumbling Gait is seen in chorea (St. Vitus’
dance) and Huntington’s (hereditary) chorea, in Friedreich’s
paramyoclonus multiplex (which is not to be confounded
with Friedreich’s ataxia), in Unverricht’s progressive
myoclonus, and in multiple sclerosis of the spinal cord.
The gait resembles that of a schoolboy, who clownishly
stumbles or trips over his heel to attract attention. Technically
it consists of spasmodic adduction, extension and outward
rotation of the legs which soon renders locomotion
impossible. When these abrupt twitchings and jerking
movements, which are involuntary and purposeless, affect
only one-half of the body, we speak of the condition as hemichorea.
The patient appears restless, unsettled and fidgety.
(2) The Festination Gait is typical of the disease
known as paralysis agitans (Parkinson’s disease, shaking
palsy) and is an advanced choreic gait in which there may
[Pg 355]be observed the curious phenomena of propulsion and retropulsion,
i.e., the impossibility of stopping, once the patient
is pushed either forward or backward. In some instances,
when pulled suddenly backward, the patient will take a few
backward steps with increasing rapidity, also the body
remains in the characteristic posture of paralysis agitans;
namely, in the forward-leaning attitude. In festination
“the body tries to overtake its centre of gravity” (Trousseau).
(3) The Saltatory Gait (“The jumpers”), is a very
rare condition occurring the instant the weight of the body
is put upon the feet. It consists in strong and rapid contractions
of the muscles of the thigh and leg causing the
patient to jump up violently. It is probably a hysterical
spasm.
(4) The Myotonia Gait occurs in Thomsen’s disease
and consists of tonic, painless spasms whenever a certain
group of muscles begin to functionate. The steps are first
checked and delayed; but this gradually wears off. This
curious condition returns again when the same group of
muscles are called into action. Owing to the tonic spasms,
this gait might have been properly classified as a spastic paretic
gait, were it not for the fleeting and irregular
character of the spasticity.
(5) The Hysteria Gait, known also as astasia-abasia,
is notable by the ease with which it may simulate any and
all of the gaits described above, the spastic as well as the
flaccid types of paralyses,—even the cross-legged gait, ending
in complete inability to stand or walk. It differs from
all of them, however, in the ability of the patient to perform
all the nervous functions of the limb when lying in bed. The
hysterical gait may also end in:
Catalepsy which is a state of muscular rigidity enabling
a limb to maintain a posture in opposition to gravity for
one hour or more (waxy flexibility). This curious phenomenon
of retaining the leg or any other part of the body in
a fixed attitude (given to it by the operator) is sometimes
[Pg 356]seen in catatonia, general paresis, brain tumors and,
(rarely) in meningitis.
(The above chapter was especially prepared for “Practical
Podiatry” by Paul Luttinger, M.D., Professor of Bacteriology in
The First Institute of Podiatry. It is the first compilation of its
kind ever published and should prove a valuable aid to both practitioners
of medicine and of podiatry—Editor).
[Pg 357]
CHAPTER XXIV
MISCELLANEOUS FOOT LESIONS
TRENCH FOOT
A foot lesion has arisen during the present war, which,
because of the fact that it appears on the feet of those who
have been subjected to long sieges of service in the trenches,
has been called “Trench Foot.”
The condition has been and is being investigated by
many medical men of note, and although the literature available
has been rather meagre, several facts have been established
and some of the data has been classified.
This chapter has been compiled from various papers
upon the subject written by those who are now serving their
respective countries in France, and who have had experience
in dealing with the lesion. Articles by the following writers
have been used, and all of the statements contained therein
have been verified: B. Sherwood Dunn, M.D., of Paris, in
The Medical Record; “Anonymous,” in the same publication;
H. Oswald Smith, in The Lennox, a journal devoted to
dentistry, and several articles in the Journal of the American
Medical Association.
Trench foot is a lesion found in the lower extremity and
is a result of exposure to cold and dampness in the trenches.
It has been likened to frost bite, but cases reported during
the summer months show that the parallel is not justified.
There are several stages to the disease, and they are classified
by Smith into four groups: (1) Neuritic—producing
acute pain and preventing the patient from walking or
sleeping. There is no swelling or discoloration of the foot.
(2) Edematous—without discoloration, but acute pain is
[Pg 358]present, produced by the pressure on the nerve endings.
(3) Edematous—with blisters and varying discoloration of
the skin, short of gangrene. (4) Gangrenous—partial or
circumscribed, with edema and blisters and reddening of the
skin involving the lower leg.
Etiology. The lesion is found chiefly among men of
from twenty to thirty years of age who have been in continuous
service in the trenches for a minimum of three days.
That it is truly the result of trench life is proven by the fact
that men in the artillery, who do not see trench service, are
not thus afflicted.
The constriction of the foot in ill-fitting shoes and
stockings with lack of cleanliness are also etiologic factors.
Cold is not accepted as the cause of trench foot, as the
trouble occurs in weather above freezing and some cases
have developed in the summer time. Neuritis, produced by
humidity, is the cause of the lancinating pain.
Raymond and Parisot have stated that the disease is
caused by bacterial invasion. They have isolated the
microbe, from the mud of the trenches, and have reproduced
in animals the various symptoms manifested in trench foot.
The microbe was found in the purulent layer of the vesicles
and the injection of these germs into the epidermis of the
rabbit and guinea pig caused the same lesion as is found in
man. They have reached the conclusion that the disease is
similar to mycetoma, the fungus foot of Madura and misnamed
by English surgeons “tuberculosis foot.”
The disease is prevalent among those standing in the
soft, slushy mud or in the muddy water of the trench. The
skin of the feet becomes soft and macerated, and while in
such condition offers easy ingress for the microorganism,
especially along the nail grooves or through abrasions
caused by shoe friction.
A committee of United States army surgeons in France,
headed by Major R. P. Strong, are making extensive tests
in order to ascertain the cause of trench fever. Their unfinished
report (they are still investigating) shows as follows:
[Pg 359](a) the organism causing trench fever is present in
the plasma of the blood; (b) the organism is not filtrable;
(c) the disease is transmitted naturally by the body louse
(pediculis corporis); (d) this method is apparently the important
and common means of the transmission of the disease[7].
Symptomatology. The symptoms of trench foot are
always the same. The ball of the great and second toe
are swollen and edematous, the skin is distended and glossy
and there are occasional blisters or vesicles. The
edema may extend to the remaining toes and to the ball
of the foot, and, from being white, may become rose-colored
or even red and violet. In grave cases the liquid in the
vesicles changes from citron color to a hemorrhagic hue,
the skin becomes blue-black, then livid and gangrenous.
Some of these vesicles may dry and the scab fall off, leaving
no scar; the base of the vesicle may change in color from
brown to black, and this change may extend beyond the borders
and cover the entire area affected by the edema. This
change is the forerunner of gangrene; the vesicle becomes a
crust; when it falls off it leaves a putrid base which may
gradually eat into the tendons and articulations and periosteum.
It is not infrequent to have the first crust followed
by a second and third, and when the disease has progressed
to this stage, no medication seems to avail and the member
has to be amputated at a healthy point beyond the parts
affected.
There is little if any fever accompanying the lighter
forms, but a temperature of 104 degrees F. may attend the
graver forms, with general disturbances of the nerve trunks.
Albuminuria is not infrequent.
The patient complains of lancinating pains which interrupt
sleep and cause difficult locomotion. Walking is accomplished
on the heels, with the toes elevated. The pain is
excited at several points, chiefly by pressure on the heads of
the metatarsals. In the lighter forms, the patient complains
of numbness (but only in the affected members) which at
[Pg 360]times extends to a condition of anesthesia. The mildest
form is characterized simply by pain and paresthesia.
The trouble appears, as a rule, after the patient has
spent his assigned period in the trenches and manifests
itself when he has retired to the sector for repose and removes
his shoes for the first time in several days.
In the very worst cases there is gangrene accompanied
by all of the dangers of infection, by destruction of tissue
and loss of limbs. There is a tendency to contracture of the
foot, usually described as a turning under of the foot.
Prognosis. Trench foot has a duration of from two to
three weeks, in the lighter forms, and from six weeks to
three months in the severe cases. The simpler lesions respond
well to treatment, and in the type in which vesicles
have formed, these latter dry and fall off, leaving no scar.
A cure is effected in about one month. In more advanced
types, in which extensive ulceration is present, the toes
alone are lost and the rest of the tissues are saved under
proper treatment. When general septicemia develops, and
according to statistics of two thousand cases treated from
October, 1916, to January, 1917, there have been only two
such cases, the patients have immediately succumbed.
Complications are frequent accompaniments of the malady—abscess,
neuritis, lymphangitis, etc. Tetanus has been
observed with sufficient frequency to cause all patients to be
injected with antitetanic serum upon admission for treatment.
Treatment. The prophylactic measures that have been
adopted since trench foot has been more thoroughly understood,
have eliminated it to a great extent, and the disability
that it caused at that time is gradually being controlled.
The perfection of general sanitary methods and the construction
of better trenches have helped to diminish the incidence
of the condition as well as to reduce disease and disability
in general. The smaller sectors and the greater reserve
of men, allowing for more frequent change, have of
themselves, without the actual preventive methods instituted,
[Pg 361]reduced both the severity and the occurrence of
trench foot. Where previously the men had to stay in the
trenches for long periods, at present there is a change every
few days.
As a general preventive measure against the lesion, it
was found that the wearing of looser boots, perhaps a size
too large, was of great help. This measure prevents the
restriction of the circulation, which is so large a factor in
the causation of trench foot. The general circulation of the
body can be maintained by warmth and by appropriate
movements and exercises. Socks must be changed very frequently
and must be kept dry. Torn socks are especially
liable to constrict the blood vessels and to produce injury to
the foot. Foot rags, well paraffined, have been tried, with
more or less success, to obviate the difficulty of keeping socks
whole. If these foot rags are well applied, they are found
to be far more comfortable than socks. Puttees must be
loosely applied. Boots must be thoroughly greased before
being put on. Rubber boots have been extensively used and
are looked upon with favor. Thorough greasing of the feet
was tried at the beginning, but was found to be offensive to
the men, and consequently was not conscientiously carried
out.
The newest and apparently most successful method of
preventing trench foot is by means of the so-called “trench-foot
washhouses.” Immediately before returning to the
trenches the men go to these washhouses for treatment.
Here they have their feet soaked in warm, not hot, water
and washed with a special soap composed of soft potash
soap 1000 parts, powdered camphor 25 parts and borate of
soda 100 parts. The feet are then carefully dried and
treated by the regimental surgeon or podiatrist, and are
finally dusted with a mixture of powdered camphor, talc and
borate of soda. In the trenches, the soldiers must be served
with hot food in order to maintain warmth and keep up the
general circulation. No amount of attention to the feet of
the soldier can be too painstaking as regards cleanliness,
[Pg 362]shoeing and physical condition. To escape disability as the
result of actual war violence and to acquire it as the result
of preventable sanitary conditions, would be indefensible.
The treatment of the lesion itself, depends upon the
severity and the extent of the condition.
1. Simple Edematous Form. In the beginning, the
erroneous diagnosis, and the subsequent treatment directed
along the lines of frost bite, and the taking of potassium
iodide, salversan-methylene blue, and the application of
tincture of iodine and copper sulphate, did more harm than
good in some cases, and the results, at best, were irregular.
The statistics of Raymond and Parisot, who have treated
more than 2000 cases in a short time, are the best compiled,
and as their results have been excellent they are here given.
At the earliest moment possible the feet of the patient
should be thoroughly soaked in warm water and washed with
liberal quantities of the soap, previously mentioned, and
composed of soft soap, camphor and sodium borate. The
cleansing should be thorough, but with care not to break the
skin or to open any existing vesicles. The skin must be
dried carefully with a soft towel and the following applied:
cover a layer of absorbent cotton of the thickness of the hand
with gauze; soak this in a solution of camphor, 1.1; borate
of soda, 15, boiled water, 1000, and apply while still thoroughly
wet (being careful to cover the ends of the toes) to
all the edematous surface as far up the leg as it extends.
Cover the whole with oiled silk or rubber sheeting, and fit
by adhesive strips. If a roller bandage is used, it must be
applied loosely. The dressing should be damp when
changed the following day.
Renew this dressing daily, until the edema disappears,
which should be from the second to the sixth day; after this,
continue the same dressing for two or three days without
the impermeable covering; following this, camphorated oil
is to be applied without rubbing.
When the disease proves obstinate and is accompanied
by persistent pain, some relief is afforded by bathing the
[Pg 363]feet at the time of the daily dressing in warm water, using
the same liquid soap as at first.
2. Vesicular Form. The small vesicles, not larger than
a ten cent piece, should be left undisturbed and will dry up
without scar with the above-described treatment. When
they are extensive, and especially when the contents are
hemorrhagic, they should be completely denuded and the
gelatinous base should be carefully removed by aid of a
sterile tampon, and then these denuded surfaces should be
covered with compresses soaked in a solution of camphor,
30, ether, 1000. These compresses and the whole affected
surface are covered by the fomentation previously described,
and should be changed daily.
When the edema subsides, omit the fomentations and
continue the application of camphorated ether solution, and
as the denuded surfaces show improvement, dust them with
camphor powder or with boric acid powder.
3. The Formation of Crusts. The foregoing treatment
will ordinarily prevent the formation of crusts or scabs;
when these do form, steps must be at once taken for their
removal without undue force or surgical aid, as they cover
the most virulent germ collections, which are liable to produce
a general infection if permitted to contaminate freshly
cut surfaces. On the other hand, if permitted to remain, the
germs thus protected have a tendency to burrow profoundly,
involving the tendons and articulations.
The crusts must be softened and carefully removed from
their borders daily, little by little, by aid of the forceps, the
operator being careful to cause no bleeding. To soften the
crusts, the following are recommended: (1) liberal dressings
soaked in camphorated ether and covered with oiled silk or
rubber sheeting; (2) collodial silver dressings; (3) camphorated
oil and borated vaseline. As the crusts are gradually
removed each day, the uncovered surfaces should be
treated with the camphorated ether.
Not infrequently the crusts will re-form, in which event
it is well to treat them with pomade of Reclus, made as
[Pg 364]follows: vaseline, 200; boric acid, 3; iodoform, 1; antipyrine,
5; salol, 3; carbolic acid (crystals), 1; bichloride of
mercury, 0.1.
4. Extensive Invasion. Where the processes have
progressed and involve a considerable amount of tissue,
evidenced by a congested, violet-red surface, but with little
or no erosion or vesicles, we recognize the presence of the
malady in its worst form, and prompt measures must be
taken to save the member. In these cases the germs have
penetrated beyond the surfaces, and in order that they can
be subjected to contact treatment and destroyed, we must
reach the hidden centres of their activity.
After surgical preparation of the surfaces, they are
incised by a sharp pointed bistoury in the long axis of the
foot and down to the level of the infection, indicated by a
purulent layer of fetid edema. If a collection of pus is
found, a free and extensive incision is made and the tissues
thus exposed are thoroughly washed out with an antiseptic
solution, by aid of a syringe. The thermocautery should
not be applied, as the results of its use in such cases have
been very bad.
When the infected parts are opened they are treated
with the previously mentioned camphorated ether, or with
collodial silver dressings or, in the presence of purulent
infiltration, with collodial gold, which can be varied by the
following: eucalyptol, balsam of Peru, guaiacol, gomenol,
camphor, of each 10, in ether, 1,000. Under the influence of
these dressings, the hardened infiltrated surfaces soften
and can be removed little by little by the aid of the forceps,
in measure as the sloughing continues, until the destroyed
and contaminated tissues are eliminated.
In so far as possible, surgical intervention should be
avoided; where the bone is attacked, it is better to permit it
to be eliminated by the progressive destructive action of the
disease. Tentative or conservative operations upon the
bone have been followed by extensive destructive osteitis. If
[Pg 365]an amputation becomes necessary, it should be made at a
healthy point beyond the infected area.
5. Reparation Stage. When the necrosis has been arrested
and the granulations show that the affected parts are
disinfected, the usual emollient applications can be employed
to aid the repair; but here, a treatment brought into
use by Rathery and Bauzil is recommended. This forms an
impermeable covering easily applied and changed, and possesses
self-evident advantages. It is composed of naptholate
of soda, 2; essence of thyme, essence of origanum, essence
of geranium, of each 3; vaseline 1,000; paraffin (45°-50°),
5,000. Melt and thoroughly mix by aid of heat and put aside
in pots holding 125 grams each; sterilize for twenty minutes
at 120°.
At the time of the daily change of dressings, place the
number of pots necessary in a bath of boiling water to melt
the wax, cover the affected parts with a single layer of sterile
gauze and paint thoroughly with the melted wax. This
dressing hardens as fast as it is applied. Apply a second
and third layer in the same manner, to form a perfectly
occlusive dressing. Cover with cotton and bandage. Dressing
comes off easily and completely without pain, and gives
remarkable results in healing and repair and renewal of the
skin to the parts.
6. General Treatment. In the cases complicated by
septicemia, subcutaneous injections of camphorated oil in
doses of from 5 to 15 c.c. per day, or intramuscular injections
of collodial camphor in doses of 2 c.c. per day, are
advisable.
7. Complications. The most frequent is tetanus. Every
patient should at once be injected with antitetanic serum,
and this should be repeated every eight days during the
period of ulceration and sloughing. It is even prudent to
augment the second injection in those gravely afflicted (20
c.c. of the Pasteur Institute serum, or 3000 units of the
American).
Gaseous gangrene is infrequent with the treatment here
[Pg 366]indicated. If present, it can be treated in the usual way.
Smith has employed subcutaneous injections of oxygen
in cases of this condition which have been neuritic, or
edematous without discoloration, edematous with blisters,
gangrenous, partial or circumscribed. The technic of the
oxygen treatment is as follows: a Woulfe bottle is required,
with two glass tubes bent at an angle and inserted into a
tightly-fitting cork. To the end of one glass tube is fitted
three yards of red rubber tubing connected with the usual
oxygen cylinder; to the end of the other glass tube is fitted
two yards of a finer rubber tube, and the distal end of the
tube has fitted on it a salvarsan needle. The bottle contains
a saturated solution of sodium carbonate. The needle
should be sterilized in boiling oil for each individual case.
The operator, having sterilized his hands, uses iodine on the
proposed sites of the puncture. The needle is inserted into
the subcutaneous tissue at a point midway between the heel
and the external malleolus. The oxygen is allowed to enter
slowly until the foot is filled up. The needle is then withdrawn
and inserted midway between the internal malleolus
and the heel. If the toes are black and cold the needle is
inserted in the mid line at the base of the toes. It is important
that the oxygen should be injected slowly. If the
part is almost gangrenous, injection into the deeper tissues
is of advantage.
The treatment is based on the conclusion that trench
foot is akin to Raynaud’s disease. The edema produces
stasis in the veins of the foot, impeding or stopping circulation,
and the venous blood, if oxygenated, will help to keep
the tissues alive until the serum can be drained away, while
the oxygen helps to drive out the serum, slowly but steadily,
through the puncture holes. Mere puncturing has been
found useless in relieving the edema. The oxygen balloons
the subcutaneous tissue, thus relieving pressure on the blood
vessels and lymphatics. When the oxygen is absorbed and
the serum drained away, circulation is quickly restored to
the limb.
[Pg 367]
There is marked relief to pain at once, and under the
eye of the observer certain changes can be seen taking place.
The reddish blue appearance changes to pink; the redness
which often extends up the leg disappears, and where
blackened areas exist, a white line makes its appearance and
any living tissue is noticeable by its pink color. The white
line indicates what would ultimately be the line of demarcation
of gangrene, and it is noted that healthy granulations
start from this white line after injections of oxygen. The
destruction of parts is greatly lessened, and is often confined
to the tips of the toes. Areas of black blood on the dorsum
of the foot rapidly undergo change, becoming grayish white
and pink, and more nearly resembling healthy tissue. In
many of the severe cases, recovery of the whole foot has
taken place, and in some the loss of but a single digit has
had to be recorded.
A minor but important point is the treatment of all
blisters. They should be drained by sterilized thread
passed through by means of a straight surgical needle and
the ends cut short. The dead skin should be left in situ as a
protective, unless pus is present.
The oxygen causes an increase in the pulse of the
posterior tibial artery. There is no rise in temperature,
pain is relieved, and sleep promoted. Lint, wrung out in 1
per cent. solution of picric acid, is applied to the parts and
renewed every day. No cotton wool should be employed or
disastrous results will ensue. The lint and bedclothes next
day will be found saturated with serum, sometimes clear,
and sometimes blood-stained. The skin will have a peculiar
wrinkled appearance, pointing to the previous state of
edema. The foot is warm even at the toes, and movement
will have returned. At the end of the second day tingling
sensations arise. In cases which are semi-gangrenous and
where the edema still persists, a second injection may be
given. One injection is usually found to be sufficient, but
picric acid should be used once or twice a day to keep the
part dry and sweet. The effect of the oxygen on the deep
[Pg 368]layers of the true skin is notable; a rich red velvet color
persists for several days.
Smith advocates conservative treatment in all cases of
trench foot unless gas gangrene or grave toxemia be present.
Repair is slow but sure and many hopeless looking cases
have recovered with useful limbs and minor loss of structure.
The cost of the oxygen treatment is small, and oxygen
is usually available. There is no risk to the patient if this
treatment be intelligently used, but healthy tissue, as far as
possible, should be utilized for injection purposes. The
length of time for repair and recovery of the part is long in
the semi-gangrenous and in the gangrenous cases. The
granulation tissue is often indolent with the epithelial margin
heaped up, and here, again, oxygen has been found to
stimulate epithelial growth, a hypodermic needle being
utilized in place of the salvarsan needle.
The conclusion drawn is, that if the edema can be relieved
by withdrawing the serum, the circulation can be
re-established, and during this withdrawal the tissues are
supplied with oxygen to keep them nourished.
GROUND ITCH OR UNCINARIAL DERMATITIS
Prof. Paul Luttinger in addressing the students of his
class at The First Institute of Podiatry gave the following
outline of this disease: “this condition is known as water
itch, water pox, water sores, sore feet of coolies, panighao,
mazamorro (Porto Rico), tunnel-digger’s sore foot. It is an
erythematous or papulo-vesicular irritation of the feet, due
to infection with the larvae of the hookworm. These latter
gain entrance through the skin of the lower extremities and
cause the very grave tropical disease known as uncinariasis
(hookworm), or tropical chlorosis.
“The eruption, which is very itchy, appears first as
reddish spots between the toes and on the dorsum of the
foot. These spots become macules and later vesiculate. In
some cases blebs may be formed which, upon rupturing
[Pg 369]become raw, oozing surfaces accompanied by considerable
local swelling. Pustulation and ulceration may result if
these surfaces become infected with pus producing microorganisms.”
Treatment. Under proper treatment, this condition will
subside within a few weeks; otherwise it may take months
or until the systemic disease develops. Sometimes gangrene
of the part may result. Cleanliness, combined with mild
antiseptic lotions, is all that is necessary to cure the disease
in its early phase. A three per cent. alcoholic solution of
salicylic acid has been highly recommended by Barlow, who
opens the blebs and applies pledgets of cotton dipped in this
solution twice daily for five minutes.
The proper disposal of excreta in rural communities
and the avoidance of going barefoot in the warm and rainy
season, are the best methods of prevention.
GAS INFECTION AND GAS GANGRENE
Gas infection is a very common condition found in the
wounded in the present war. It is controlled successfully if
it is seen and treated early in its course, but when it has
progressively developed it causes a most dangerous condition
called gas gangrene.
Etiology. The infecting agent is called the bacillus of
Welch, the bacillus aërogenes capsulatus or the bacillus
perfringens. The bacillus is of the anærobic type, and being
lodged in deep wounds with ragged tissues, recesses and
pockets, and completely obstructed by fragments of broken-down
tissues, all of which prevents the air from reaching
them, they multiply rapidly with the formation of gas followed
by a great destruction of tissue.
The bacillus of Welch grows rapidly and it is on that
account that immediate and radical action is essential if loss
of life is to be prevented. Kenneth Taylor has obtained a
pure culture in a very short time as follows: a series of six
or more culture tubes are inoculated, each tube from its
[Pg 370]predecessor, at intervals of only half an hour. Even in this
short period bubbles of gas became evident in the successive
tubes. By the time the sixth or the seventh tube is reached,
one may obtain a pure culture, so far has the gas bacillus
outgrown the other germs.
Symptoms. The rapidity of the development of the
bacteria is responsible for early symptoms of the infection,
and Bowlby has observed well-marked infection with the
formation of gas within five hours, and death of an entire
limb has occurred from gas gangrene in sixteen hours.
The course of the disease varies somewhat, being at
first, a local condition; bubbles of gas appear in the discharges
from the wound, and crackling from gas may be felt
in the tissues immediately surrounding. Prompt and radical
treatment will prevent further development and will restrict
the lesion to a limited area. Certain muscles will be lost and
with them the corresponding motions, leaving the patient
crippled to that extent, but beyond this, recovery will follow.
A more serious and fatal form, is the diffuse or rapidly
spreading process. The skin is discolored, the limb is extremely
swollen and edematous, gas penetrates the cellular
tissues and advances rapidly, so pressing upon the muscles
as to render them useless, and obstructing vessels and
nerves; the pulse is small and rapid, the extremities are
cold; vomiting and hiccough may occur. The patient is profoundly
toxic but he may not feel very ill. If improvement
cannot be secured by thorough exposure of all pockets and
excision, death ensues, the gas spreading rapidly upward to
the abdomen, chest, and then to the neck, causing distressing
pressure and finally loss of life.
In other cases the whole limb is involved suddenly, beginning
within a few days of the initial injury. A wound
which is doing fairly well at night may reveal a condition
of gangrene—swollen, tense, and discolored in the morning;
the patient, already in collapse, succumbs before the gas itself
has apparently spread far enough to cause death.
Treatment. The paramount importance of the earliest
[Pg 371]possible treatment during the first stage of rapidly spreading
infection, before the production of gas in any serious
quantity has occurred, is self-evident. Every hour counts
against the patient.
Taylor points out clearly what is to be done:
1. Destruction of the bacillus.
2. Removal of the tissues especially favoring its
growth, which are the necrotic muscles.
3. Measures to prevent the destruction of the muscles
as a result of mechanical pressure.
For the destruction of the bacilli, Taylor recommends a
one per cent. solution of chlorhydrate of quinine. Others
have found Dakin’s fluid effective.
All foreign bodies (clothing, etc.) in the wound, must
be removed as they will keep up the anærobic infection; all
dead tissue must be removed, the wounds kept open, and
frequent antiseptic dressings used. Dakin’s fluid or Taylor’s
quinine chlorhydrate, when properly used in connection
with the above absolutely necessary means, will enable the
surgeon to conquer the infection at the start if he sees the
patient as early as possible—certainly within the first
twenty-four hours.
The muscles should be opened by numerous longitudinal
incisions, incisions of the muscular sheaths, and the excision
of all necrosed tissue. Sometimes single muscles or a group
of muscles may need to be excised. The dead muscle can
be distinguished from the living by its dirty brick-red color,
in contrast to the normal purple-brown. The dead muscles
also lose their contractility. The focus of infection, if
known, should be excised. The wound should be dressed with
the chosen antiseptic solution. The incisions should be kept
open by light gauze compresses, wet with this solution. No
circular bandages which can exert the least compression,
and so hinder the escape of the gas, are allowable. Nothing
should obstruct the free escape of the gas. Everything
should be done to promote it.
If gas gangrene occurs or has already set in, the same
[Pg 372]free incision should be made, unless this has already been
done.
Bacteriologic diagnosis in the early stage is most important.
Soon the discoloration of the skin, blebs, and crepitation
make the diagnosis positive, but crepitation often
appears late rather than early. The X-rays may disclose the
bubbles of gas in the tissues. On incision, if the muscular
tissue is bloodless, pale, dry, of a brick-red color, gangrene
already exists. The best judgment then will be required to
decide whether free excision of this gangrenous tissue, with
suitable subsequent dressing, or immediate amputation
should be done. If the limb is amputated, it should be by the
so-called “guillotine” method, i.e., without flaps. The wound
should be dressed with the end of the stump entirely uncovered
until the infection has been conquered. Then the
skin may be drawn down by lacing or by weights, and sutured
as soon as feasible. The bone may have to be shortened.
Antitoxin Treatment. One of the most important contributions
to surgery as a result of the war has recently
appeared in the form of a paper by Carrol G. Bull and Miss
Ida Pritchett, of the Rockefeller Institute. This paper
describes a lengthy series of experiments with the bacilli
Welchii, which were cultured from wounds caused by the
war. A very powerful, soluble toxin, produced by the bacilli
has been found, which has killed animals almost instantly.
The most important result of the experiments is that they
give promise of an antitoxin which may be as potent in the
prevention of gas gangrene and gas infection as other antitoxins
have been effective in their respective spheres.
Among these are antitetanic, antityphoid and other antitoxins.
(The above material has largely been taken from “The Treatment
of War Wounds,” by Dr. W. W. Keen, and from “Surgical
Nursing in War,” by Dr. Elizabeth R. Bundy).
[Pg 373]
SYPHILIS
Although syphilis is a disease that is usually considered
as of a systemic nature and manifests itself in every part of
the body, the skin is a very common place for its appearance
(syphiloderma), and the foot is often involved. It then becomes
the function of the podiatrist to diagnose the lesion,
and as this necessitates a knowledge of the general characteristics
of the disease, the following should prove of
interest:
Derivation. From the Greek sus and philos, “a companion
of swine.”
Synonyms. Syphilis cutanea, lues, syphilis of the
skin.
Definition. Syphilis is a chronic, specific, contagious,
sometimes hereditary disease, caused by a germ, the spirochaeta
pallida, involving the skin and nervous system, but
capable of affecting any organ or tissue. Inoculation occurs
usually at some part of the genitalia, the first evidence of the
disease being the initial lesion or “chancre,” but inoculation
may occur at any other part of the body forming the so-called
“extra-genital chancre.”
Etiology. Syphilis may be hereditary, i.e., transmitted
by the parent. In the majority of adults it is acquired
directly from an existing chancre or other lesion, the spirochaeta
pallida being conveyed directly from one to another.
Extra-genital chancres are caused by kissing, by towels, by
drinking cups, or by infected instruments, bites, etc. The
extra-genital chancre may occur on the mucous membrane
or at the site of any skin abrasion. It is essential that
infected persons be informed of the danger of transmitting
it to others. The contagious period exists to the end of the
second year and any secretion, from the possible presence of
mucous patches, may be infective.
Pathology. Syphilitic deposits are new growths and
consist of round cell infiltration, especially about the vessels,
generally endothelial proliferation, and in the tubercular
[Pg 374]and some other lesions, a variable number of giant cells.
The initial changes are noted in the upper part of the
corium. The rete, the corium, and, in the deeper lesions, the
subcutaneous tissues, are involved, the retrogressive steps
being by involution, through fatty degeneration and absorption,
or by necrosis and ulceration.
All the various syphilitic lesions are structurally the
same, amounting to an endarteritis of a special kind, slowly
obliterating and tending to the production of hypertrophy of
the tissues about it. The coppery ham-color in syphilitic
lesions is due to blood coloring matter from the extravasated
red blood corpuscles and to the sluggish nature of the inflammation.
These exudation processes are found for months
after the process has healed clinically.
Diagnosis. Syphilis usually runs a mild course, but
occasionally it is malignant. In some instances its cutaneous
symptoms resemble other skin lesions, and it is on that
account that diagnosis is often difficult. The general points
to be observed are the distribution, color, form, course and
duration.
Distribution. The secondary lesions are more or less
general and symmetric in distribution. The lesions vary
in duration and may show a preference for certain locations,
such as the upper part of the forehead, anus, palms and
soles. The late secondary lesions, and particularly those
of the tertiary period, are usually confined to one region,
are grouped, and are not bilateral in distribution.
Color. Syphilodermata are dull coppery-red or ham-color.
Exposure to cold air often makes the eruptions on
the body more distinct. Color alone cannot be depended
upon to make certain a diagnosis.
Form. The earliest lesions are round or oval, showing
no tendency to grouping. In the late secondary, and in the
tertiary stages, grouping occurs and the lesions may be
serpiginous and circinate. This is an important point in
diagnosis.
Early ulcers are superficial and the scars are insignificant.
[Pg 375]Later ulcers are deeper, and the scars, often pigmented,
are sometimes diagnostic.
There are many and various forms of syphilis, all of
which have characteristic symptoms, but for the podiatrist,
who usually sees the later lesions, and who cannot make an
examination of the entire body, it will be necessary to recognize
those that appear
on the foot only.
The nails are occasionally
involved in syphilis.
Onychia and paronychia
are found in the
active secondary stage
of the disease. The inflammation
starts in the
matrix or in the nail
folds, followed by nutritive
disturbances, and
subsequent thickening,
friability and opacity,
furrows and depressions.
The nail is lifted up, as a
rule, and if there is much
ulceration, the nail falls
off. Such lost nails are
generally replaced by
new nails which are ill-formed
at first, or they
may remain deformed
permanently. The skin
surrounding the nail is swollen and infiltrated. In infants,
the ends of the toes become club-like (syphilitic dactylitis).
This condition is rarely seen in adults. The pain is not
severe unless accompanied by further pyogenic infection or
by mechanical disturbance.
PLANTAR SYPHILID
Plantar Syphilid. The plantar surface of the foot is a
common site for dry syphilids. The palm of the hand, and
[Pg 376]the sole of the foot are the most common locations for the
papulosquamous lesions of the late secondary stages of the
disease. The lesions are not so elevated and their
edges are not so well defined, papules looking more like
macules; infiltration, however, is distinct. The shape may
be irregular and the usual ham-color does not appear on the
surface on account of the scaliness or dry heaped-up epidermis.
There is usually a central brownish, gray, callous-like
thickening, surrounded by a partly visible band of
brownish-red, underlying, papular infiltration. The color is
disclosed by removal of the scale. Surrounding the lesion is
an encircling edge of partially detached epidermis with its
loose, ragged edge directed toward the centre. This semi-detached
edge is of extreme value in the diagnosis of plantar
syphilids.
The plantar lesions come on slowly and spread gradually.
They are usually limited to one sole, but may be found
on both feet. There is no itching, but they may be painful
if fissures are present. If the plantar lesions are a part of
a generalized eruption of the second stage of the disease,
they yield readily to treatment, but if they are a recurrence
of a generalized eruption, they are more obstinate. Occurring
as a late manifestation, they may be extremely rebellious.
Papulosquamous syphilis is the most common lesion of
syphilis found on the foot, and is most apt to be confused
with eczema. The latter often occurs on the soles of the
feet; the following table will show the differential diagnostic
points:
[Pg 377]
PAPULOSQUAMOUS
SYPHILODERM
ECZEMA
1.
History of syphilis.
1.
History of previous outbreaks.
2.
Concomitant signs present.
2.
No associated signs.
3.
Favorite seats, palms and
soles.
3.
Favorite seats, flexor surfaces.
4.
Itching usually absent.
4.
Itching present.
5.
Edge of lesion surrounded
by detached scales.
5.
Scales completely detached.
6.
Scales scanty and dirty-grayish.
6.
Scales abundant, and granular.
7.
Infiltrated, dull red papules
beneath the scales.
7.
Flat, reddish patches beneath
the scales.
Eczema can also be differentiated by the more inflammatory
aspect, the involvement of the toes and toe-ends,
by its appearance on the dorsum of the foot as well as on
the plantar surface, by the itching, and by the presence of
inflammatory exudation. There is no attempt at configuration
in eczema, while this is characteristic of syphilis. In
addition, some of the elemental lesions of eczema will usually
be found around one of a doubtful nature.
Blood Tests. Testing the blood is practised to a
great extent for determining the presence of syphilis, but
this method of diagnosis is not absolute. The Wassermann
complement fixation test and the later modification by
Noguchi are of value when they are positive. A negative
reaction is no absolute proof of the absence of the disease.
They are positive during the active secondary stages, but
in the first week or two they are usually negative. In the
late stages, when the bacteria may be encapsulated in a
lesion, the reaction may be negative. This may be made
positive by the administration of potassium iodide, which
causes the germs to enter the blood or lymph stream. One
[Pg 378]should be able to make a diagnosis without the aid of the
blood tests in cases of syphilis in which there are skin
lesions.
The luetin test, a vaccine test, is of most value in the
late stage of the disease.
Course and Duration. Secondary lesions appear rapidly
and are fully developed at the end of two weeks, and in time
disappear spontaneously. Palmar and plantar lesions are
apt to be more persistent. There is little tendency to spontaneous
disappearance of the tertiary eruption.
Treatment. The treatment of syphilis is entirely out
of the domain of the podiatrist, and when such a case is
discovered, it should be turned over to the dermatologist or
to the general medical practitioner at once. Plantar syphilids
should be treated with soap and warm water so as to
remove the scales and thickened epidermis, and this may be
followed by an application of salicylic acid ointment, 5 to
10%. Thereafter ointment containing mercury, the white
precipitate (ammoniated mercury) preferred, should be
used twice a day.
Constitutional treatment is absolutely essential if the
disease is to be cured, and this should be vigorous during
the first few months after inoculation. The general health
must be maintained and nutritious, plain diet, rest, moderate
exercise and abstinence from alcohol and tobacco must be
urged upon the patient. With all of the above precautions,
accompanied by the proper use of remedies, recovery is
usually prompt and the symptoms are limited.
Mercury is the one drug that is used almost exclusively.
It is very dependable, and should be employed freely, up to
the limit of tolerance, during the active stages of the disease.
In the tertiary stage, potassium or sodium iodide, in
addition to the mercury, is administered. These drugs are
used in various forms and in various doses, all of which are
of no interest to the practitioner of podiatry.
Recently many practitioners of medicine have been
using a complex compound of arsenic, viz., arsphenamine,
[Pg 379](salvarsan). This drug is injected into the muscles or the
veins. Although many have taken up the use of salvarsan
and like chemicals, most practitioners still rely upon
mercury. The newer preparations are used more as adjuvants
than as specifics. Lesions of the mucous membranes
disappear rapidly under treatments with these drugs.
Formerly it was difficult to tell when a case of syphilis had
been cured; however, with the advent of the various blood
tests, this has become a less doubtful matter. When the
various reactions of these tests are negative in uncomplicated
cases, toward the end of the second year, it is safe to
say that the disease is cured.
(The above is largely compiled from the lectures of Dr.
Andrew H. Montgomery, Prof. of Dermatology at The First Institute
of Podiatry).
FOCAL INFECTION
Focal infection is the name given to a pathologic condition
in the human body, which manifests itself in a part
remote from the original focus of infection, or from the
original lesion.
Up to a few years ago, focal infections were not recognized
by even the most advanced members of the medical
profession, and many thousands of people have suffered and
died, due to the fact that lesions of this type remained
undiagnosed.
Thanks to the efforts of Dr. M. L. Rhein, of New York
City, and Prof. Gies, of Columbia University, who drew the
attention of the scientific world to the intimate relationship
between tooth infections and indefinite ailments in the body,
including those of the feet, a large quantity of material has
been accumulated on this subject, which throws an interesting
light upon it.
It has now been firmly established that the teeth, the
tonsils, the adenoids, the male and female urethra, the
uterus and the gall bladder, in fact, any part of the body
which serves as a portal of entrance to any infection, may
[Pg 380]become the reservoir of a chronic pathologic condition, and
cause disease in any other part of the body. So the teeth,
harboring certain microorganisms, have been shown to be
directly responsible for heart, stomach and kidney lesions,
as well as arthritis and other joint and bone diseases.
Mode of Infection. The bacteria responsible for focal
infections thrive best upon dead or necrotic tissue. These
bacteria, when they locate in a place where such necrotic
tissue is available, such as a tooth in which some of the
dead pulp remains, or in a diseased tonsil or urethra,
develop so that they throw off toxins or poisons without
causing any visible signs of inflammation. These toxins circulate
in the blood stream, and locate in various parts of the
body, especially in those which offer the least resistance to
the invasion.
Relationship Between the Foot and Focal Infection.
The most common lesion of the foot due to focal infection,
is arthritis or inflammation of the joints. This is due to
infection of the teeth, tonsils, nose or adenoids with the
common microorganisms such as the staphylococci, streptococci,
influenza bacilli, etc., that infest the cavity of the
mouth. It may also be due to an infection of the valves
of the heart with the streptococcus viridans, or of the gall
bladder with typhoid bacilli, or of the genital organs with
the gonococcus. In some instances, arthritis of the foot may
be traced to an auto-intoxication of the intestinal tract or
of the bladder by the colon bacillus.
Osteomyelitis, or inflammation of the bone marrow,
periostitis or inflammation of the bone covering, and less
often, osteitis or inflammation of the bone proper, may be
caused by the typhoid bacillus or its toxin, which originally
manifests itself in the intestinal tract. These diseases may
develop during an acute attack of typhoid, but usually
appear after the acute symptoms have subsided.
Gonorrheal Heel is a well defined type of focal infection
due to original invasion of the urethral tract by the gonococcus.
The microorganism, or its toxin, reaches the
[Pg 381]inferior surface of the os calcis, at the point where the flexor
brevis digitorum muscle arises, lodges there and causes a
chronic inflammation of the periosteum and the bursa. The
process is a mild and slow one, and gradually the periosteum
is absorbed. With their covering removed, the bone cells
increase in number, causing the formation of a spur or
exostosis. Walking upon this growth causes the characteristic
pain referred to as “painful heel.”
Painful Feet in Women. Dr. Henry Frauenthal, of
New York City, has recorded a large number of cases of
painful heel in women, in which the foot manifests no signs
that would warrant such pains. Investigation has shown
that these women were suffering with leucorrhea. Such
cases often come to the podiatrist’s office, where they
may be mistreated for flat and weak foot by means of
mechanical appliances which do no good and often cause
additional pain. Discreet questioning will reveal the
fact that the patient is a sufferer from leucorrhea, and she
should be sent to a physician for treatment.
Treatment. Focal infections of all types require treatment
at the initial source of infection and therefore are out
of the domain of the podiatrist. These cases should be
referred to the physician or dentist, as the circumstances
warrant. Attempts at local treatment will prove futile, and
bring the podiatrist into bad repute. His duty ceases when
he has recognized such an infection and sends his patient to
the proper person for professional care.
It is a well known fact that the removal of an infected
tooth or of a diseased tonsil has often given immediate
relief to one suffering from foot pains, due to focal infection.
It is equally well known that heel pains, due to gonorrheal
causes, have disappeared contemporaneously with the cure
of an old venereal lesion. So fully satisfied are the
authorities in charge of the Clinics of The First Institute of
Podiatry of the utility of such a procedure, that means are
now being devised whereby there shall be in nightly attendance,
physicians and dentists, to whom are to be referred
[Pg 382]all cases of foot pains, in which, by exclusion, a diagnosis
has been reached that focal infection may be the cause of
the same.
MORTON’S TOE AND METATARSALGIA
Morton’s toe and metatarsalgia are conditions, so common
in the practice of the podiatrist that it is deemed best
to discuss them briefly in this volume, although they will be
treated most exhaustively in “Podiatry Orthopedics,” the
next volume of this series.
Morton’s Toe or Morton’s Neuralgia. When the foot is
kept in a narrow shoe, the strain placed upon the forefoot
is so great, that the fifth metatarsal bone is forced upward
and the fourth one downward, and the latter bone is
made to act as the pillar of the arch. In consequence, a
severe pain is produced, caused by pressure upon one
of the plantar nerves, between the head of the bone and the
skin. This condition is called Morton’s toe, or Morton’s
neuralgia, after Morton, of Philadelphia, who was the first
to call attention to it.
Treatment. The pain induced by Morton’s toe, as
stated, is caused by direct pinching of a branch of the
external plantar nerve, and it is therefore necessary to
relieve the pressure on the head of the bone which causes
this condition. This is accomplished by the application
of a felt pad about one inch long, three-fourths of an inch
wide and three-eighths of an inch thick, properly skived and
fastened by some adhesive substance, reinforced with adhesive
plaster strips, well behind the head of the affected bone.
This will raise the head of the bone so that pressure on the
nerve will cease, thus relieving the pain. It is essential to
remember that the pad must be placed behind the head of
the bone, for if it is put too far forward, increased suffering
will result. If the case is one in which it becomes necessary
to use a pressure of this kind for any length of time, the
felt should be discarded, and a plate of metal or some other
[Pg 383]stable substance should be substituted, with an elevation at
the point at which the pressure is desired.
In addition to the device for raising the arch to its
normal position, exercises and massage should be prescribed.
The exercises should be those which will strengthen
the flexor muscles of the toes. Attempting to pick up a
pencil or other cylindrical object with the toes, if practised
daily for ten or fifteen minutes will ultimately prove effective.
Massage, to help develop these muscles and to
stretch the shortened extensors, will also be of benefit.
The patient should be instructed to wear shoes that are
wide enough to allow for the normal spreading of the
anterior part of the foot in walking. The waist of the
shoe, the portion behind the ball of the foot, should be
snug.
Metatarsalgia. The name applied to this lesion is,
literally, a pain in the metatarsal region, but is particularly
relevant to the condition in which there is a painful depression
of the heads of the second, third and fourth metatarsal
bones, the bones that make up the anterior arch. This condition
is readily recognized by the fact that the heads of the
bones are in a straight line instead of forming a concave
arc, when the foot is at rest. Upon weight bearing, the
normal anterior arch is obliterated.
Treatment. Metatarsalgia is treated much the same as
Morton’s toe, except that the pad is made large enough to
support the three middle metatarsal bones. The pad should
be so shaped that it conforms to the contour of the normal
arch. Metal or other devices may be worn, if properly
fitted, in cases where the pressure is desired for a period of
time. Exercises and massage should be used in these cases
as well as in Morton’s toe, especially the former, for stretching
the extensor muscles.
A tight bandage around the foot just behind the heads
of the metatarsal bones will often give relief in metatarsalgia
and Morton’s toe; it acts beneficially by preventing
the heads of the bones from being forced below their normal
[Pg 384]level. Adhesive plaster and rubber bands may also be used
for this purpose.
The shoe should have a very low heel and a broad toe,
so that only a little weight is borne at the metatarsophalangeal
joints, thus affording the extensor muscles of the
toes a chance to stretch. This type of shoe will cause the
patient to experience a feeling of falling backwards, particularly
in the case of a woman who has been accustomed to
wearing high heels; but this feeling and the strain that is
caused on the calf muscles, will soon pass off.
[Pg 385]
CHAPTER XXV
X-RAYS IN PODIATRY
Roentgenology is the science that deals with the use
of the Roentgen, or X-rays, in all their applications. The
subject is divided into three parts, each distinct from the
other, and with special required study for each part. The
first branch of roentgenology is known as roentgenotherapy
or actinotherapy, and comprehends the treatment of disease
by the use of the X-rays or by other radiant energy.
Roentgenotherapy, to be intelligently applied by the
practitioner, requires a thorough knowledge of pathology
and is strictly within the province of the licensed doctor of
medicine. The second branch variously styled fluoroscopy,
skiascopy, radioscopy or roentgenoscopy, is utilized for
examining the various parts of the body by projecting the
X-rays through the body and fixating the shadows cast on
the fluoroscope. This branch of the science of light is of
great assistance in diagnosis and is used extensively in
surgery for the location of foreign bodies in the tissues.
The third division of roentgenology is called radiography,
skiagraphy or roentgenography, and consists of the making
of X-ray photographs by passing the ray through the body
in front of a photographic plate. This branch is of great
importance to the podiatrist because of the value it possesses
in the diagnosis of foot lesions, involving the bony structures;
it often clears up a doubt as to the true state of a
lesion when other means have failed. The soft tissues
through which the ray passes readily appear in light
shadow, while the bones, because they are solid, cast a
darker shadow on the plate.
Experiments with electricity and with the modifications
[Pg 386]of the various currents of electricity, have been responsible
for all of the new discoveries and inventions along these
lines, and the same may be said of the X-rays.
The two divisions of electric current are the direct and
the alternating, named after the direction in which they
flow. The direct current moves in one direction and may
be likened to the flow of water from a faucet, while the
alternating current does not maintain a steady pressure
nor does it flow in the same direction continuously. The
alternating current, which is commonly used for lighting
purposes, reverses its direction of flow and pressure 120
times per second. It is therefore called 60 cycle current,
in that it makes 60 complete cycles per second. The alternating
current may be likened to the tide, which rises and
falls every twelve hours. Instead of passing from ebb to
flood and back again each twelve hours, the alternating current,
used for illuminating purposes, does so in one-sixtieth
of a second.
The alternating current, is of most value to the sciences,
because its voltage or pressure may be easily changed.
Thus it can be raised or lowered by passing it through
special apparatus. One particular form of alternating current
has a voltage of from 30,000 to 120,000 and can be used
for the production of Roentgen rays, if it be transformed
into a so-called pulsative or unidirectional high tension current.
This transformation is easily brought about by
modern Roentgen ray apparatus.
The discovery of the X-rays was preceded by an
improvement in the knowledge of alternating currents.
Many scientists were experimenting and looking for new
rays and currents, and after the invention of the air pump
and the production of glass globes, from which the air was
removed by means of the pump, Geissler invented the process
of sealing platinum into glass and produced the Geissler
air pump, which is used to the present day. This made
it possible to seal electric conductors into vacuum tubes.
Following this, Faraday and Maxwell developed the
[Pg 387]electro-magnetic theory of light and laid the foundation for
a theory of the Roentgen ray, which, although later considerably
changed, has proven one of the most useful adjuvants
to the science of physics. The period between 1840
and the discovery of the X-rays was an active one in electric
experimenting. Many men were interested in this work, and
their observations and discoveries were important in the
final discovery of the rays. In fact, Roentgen’s discovery
was fully expected, inasmuch as several investigators,
including Sir William Crookes and Roentgen himself, were
convinced that rays existed of which they knew nothing.
The earlier of the two workers, Crookes, had probably produced
X-rays, but overlooked them and it fell to Roentgen
to become aware of the conditions under which they were
produced. He called them X-rays or unknown rays, but
after a time, they were named after him, and are known in
science as Roentgen rays. Roentgen wrote and published
three papers on the subject and these have become classics
on this topic. All of the facts announced by him at that time
continue to be accepted, because, notwithstanding all the
work done along these lines, they have never been disproven.
Experiments have been continuous, and gradually the
types of generators and tubes have changed, always
improving. Where at first only simple work could be accomplished,
the most wonderful things in this art are now being
done, with probably many more wonderful things still to
come. The dangers to which the earlier workers were subjected
have been gradually eliminated, and today with
proper care, the danger from the X-rays has been reduced
to a minor factor. This danger came about from lack of
knowledge of what occurred in the tube when the ray was
being generated. There are three rays produced, one of
which causes destruction of the human tissues, when
exposed for a prolonged period of time. By preventing the
passage of this ray, by the use of lead and lead glass, as
protective mediums, the danger has been practically controlled.
[Pg 388]
X-RAY APPARATUS
The apparatus used in the generation of the X-rays
consists of a generator, a vacuum tube and an appliance for
holding the tube in a fixed position, called the tube stand.
The Generator. The generators used in X-ray work
are of three types, the motor generator, the interrupterless
type and the coil generator with a chemical interrupter.
The function of the Roentgen ray apparatus is to produce
high potential electric discharges in one and the same
direction, or what is known as a unidirectional current.
Dependent upon the kind of current used to start with, distinction
can be made between the types of apparatus previously
mentioned. These types are operated by either
direct or alternating current.
Direct current apparatus requires an interrupting
device for the purpose of producing the necessary change
of flux of magnetic lines in the inductive part of the apparatus.
Interrupting devices, which are used in connection
with such apparatus, are of three kinds: first, the hammer
interrupter; second, the mercury interrupter; third, the
electrolytic interrupter. The function of any one of these
interrupters is to break up the continuous flow of direct
current into small fragments. Each one of these fragments
then produces one impulse of high potentiality, which is
then directed through the tube.
The alternating current, as its name implies, is already
interrupted, but the impulses are alternately changing direction,
passing first in one direction and then in the opposite
direction. Hence, if the alternating current is used as a
primary source of electric energy, then the secondary or
high potential impulses will also be changing their direction
alternately. Two methods are used in employing the alternating
current as a primary source of energy. The first
consists of the suppression of one phase (that which would
pass in the negative direction) by means of the so-called
rectifier cell. The second consists of producing high potential
[Pg 390]impulses which flow in alternate directions, and to then
redirect these impulses so that all of those passing through
the tube are in the one and the same direction.
INTERRUPTERLESS TYPE GENERATOR
Accordingly, X-ray apparatus can be divided into the
three classes previously mentioned. The coil, consisting of
an induction coil activated by direct current, which is broken
into small sections by the interrupter; or the induction coil
which is energized by the alternating current of which one
phase is suppressed through a liquid rectifier cell, and in
which the proper interruptions are again produced by some
interrupting device. The most extensively used type of
apparatus is known as the “interrupterless machine.” This
machine operates on either the direct or the alternating current,
but, if the direct current is used as a primary source,
it is transformed into an alternating current by means of
a rotary converter or motor generator set. The alternating
current, therefore, either produced or already available,
passes into the primary coil of a transformer which changes
it into alternating impulses of high potentiality. In order
to transform them into impulses, all of which shall pass in
the same direction, a so-called rectifying system is
employed. This consists of either a disk or of cross-sticks,
which are so arranged that they produce contact with both
terminals of the transformer in such a way that current
of the same polarity, the unidirectional current, is always
delivered to the tube. The name “interrupterless machine”
merely implies that the devices used for interrupting the
primary current have been eliminated.
There is one other type of apparatus which is built on
the principle of an electrically oscillating system. Here
again a start is made with the alternating current, obtained
either from the line or by changing the direct current by
means of an interrupter. The current is transformed
through a so-called step-up transformer into one of high
potentiality which is then still alternating. This current
oscillates over a spark gap. Parallel to this spark gap a
resonator is connected in which impulses are produced that
[Pg 391]correspond to the discharges over the gap and which, if
applied to a specially built, so-called high frequency Roentgen
ray tube, will produce X-rays. Since the principle of
electric oscillations of a high frequency is used in this type
of apparatus, it is generally called the high frequency
Roentgen ray apparatus.
TUNGSTEN TARGET TUBE
Roentgen Ray Tubes. The various types of apparatus
previously described require special forms of Roentgen
ray tubes. For the coils by virtue of their relatively small
capacity, platinum target tubes are generally employed.
The capacity of the interrupterless type being considerably
higher, the use of a material of greater resistance as a target
is necessitated. For this purpose tungsten is generally
employed. For the high frequency, or Tesla coils, a tube
which embodies a rectifying or valve action device is necessary.
The mechanism of the production of Roentgen rays can
be described in the following way: the cathode, or negative
terminal of the tube, consists of a hollow spherical surface
of aluminum. When this electrode is attached to a negative
potential, a stream of negative ions or cathode rays
[Pg 392]is projected perpendicular to the surface of the electrode.
By reason of its curvature, the electrode is therefore focused
to produce a converging beam of cathode rays, the area of
which is smallest where, in the centre of the tube, the tungsten
block or anticathode is placed.
According to whether the area selected for the location
of the anticathode is small or large, the possibility to distinguish
between fine, medium or broad focused tubes arises.
The discharge from the negative electrode takes place,
dependent upon conditions which give to the discharge
either a high or a low velocity. If the velocity is high, the
change from kinetic energy to Roentgen ray energy will be
greater than if the velocity of the cathode ray stream is
decreased. In the latter case, the radiations will have less
penetrating power. The velocity of the discharge must
therefore depend upon the magnitude of the charge on the
negative electrode, and also upon the number of gas particles
present in the tube at that time. If there is a large
quantity of gas present, there will be a reduction in the
speed of the ray, due to collision and impact with the gas.
The penetration of the Roentgen rays depends therefore
directly upon the potential produced by the apparatus and
inversely on the gas pressure (or directly on the vacuum)
of the tube.
For the purpose of controlling the state of vacuum in
the tube, a regulating system has been improvised which,
when an electric current is passed through it, liberates a
certain amount of gas which passes into the tube proper.
This is a convenient device for reducing the vacuum of the
tube. Up to the present time, no one has succeeded in
inventing an efficient method or device for removing gas
from the tube, or a means which would help to increase the
vacuum. It is for that reason that operators should guard
against reducing the tube unduly. It is a simple matter to
reduce the vacuum but difficult to increase it. When a tube
becomes low (when the gas content is high), resting the tube
[Pg 394]by allowing it to remain in its bracket for a period of time,
will usually suffice to increase the vacuum.
The proper care of the tube is essential for good radiograms.
It should be kept free from dust, and before being
used the degree of vacuum should be determined by the
testing apparatus on the generator. If the tube is dusty or
dirty, the passage of the rays through the glass will be
hampered, as these particles tend to deflect the rays from
their straight course. If the vacuum of the tube is too high,
it will affect the quality of the plate, and if it is too low there
will be no penetration and therefore a blank plate.
TUBE STAND
The Tube Stand. The tubes used in Roentgenology are
delicate structures and great care must be exercised so as
to prevent breakage. To guard against such damage it is necessary
to securely hold the tube in a proper device while it
is being used. The tube stand should be so arranged that it is
possible to raise or lower the tube, with its connections,
without being compelled to touch the tube itself, to swing it
from side to side, to tilt it forward or backward, or in or
out. This is best accomplished by the modern tube stand
which is so arranged that after having set the tube in its
proper place, it is no longer necessary to touch the apparatus
in order to secure all of the above named motions. A
careful study of the accompanying photograph will make
this clear.
The Roentgen or X-rays. The rays generated in the
apparatus heretofore described, and named after their discoverer,
are of a peculiar character, and although they have
proven a boon to mankind, serious trouble and even death
has come to those who in their ignorance used the X-rays
promiscuously. It has been discovered that there are three
distinct rays generated when the high potential current is
passed through the vacuum tube and they have been named
after the first three letters of the Greek alphabet, namely:
the alpha, the beta and the gamma rays. The alpha ray
is the ray that is seen in the tube and is of no consequence.
The beta and gamma rays are invisible and it is these rays
[Pg 395]that penetrate the tissues of the body. To the gamma ray
is attributed the harmful effects of Roentgen’s discovery.
Although the X-ray is used as a therapeutic measure it
should only be applied by those who have a thorough
knowledge of its properties. Prolonged exposure will cause
severe burns, and in some cases continued contact with the
ray has caused cancer. Their action in this respect is due
to the actinic quality of the gamma rays. The symptoms
of a burn do not manifest themselves until a minimum of
a week or ten days after exposure and, when they do appear,
they are usually severe. Sloughing of the tissues takes
place, and the wounds produced do not heal readily and, in
consequence, ugly disfiguring scars remain.
Radiography. This branch of Roentgenology is of most
interest to the podiatrist. By means of photographic plates,
properly exposed and well developed, it is often possible to
make diagnoses where other means have failed. It is essential
for one who would be correct in diagnosing X-ray plates,
to have a thorough knowledge of the structure of the bones
of the foot and to understand the meaning of the various
shadows cast upon the plate.
When the X-rays penetrate the foot they pass through
the tissues, and when they strike a tissue of great density
they cannot penetrate it as readily as the rays passing
through a tissue of less density. The result is that as the
rays pass through the foot they cast a series of shadows
on the sensitized photographic plate beneath, the density
of which depends upon the tissues through which the rays
have passed. So, in reality, the plate when finished is not
a photograph, as most laymen imagine, but a shadowgraph
or, as it is variously termed, a radiogram or skiagram.
For the purposes of producing radiographs that are
clear and easily interpreted, it is necessary to have good
materials and to follow the technic of developing and fixing
the plate in every detail. The photographic plates used in
general photography do not, as a rule, give satisfactory
results. Plates, with specially prepared emulsions that are
[Pg 396]adapted for radiography, are preferred. These plates are
sensitized with a gelatinous substance containing bromide
of silver. When this substance is exposed to the action of
the rays it undergoes chemical decomposition, the degree
of which varies with the amount of exposure. It is upon
this decomposition of the salt that the art of photography
depends and so, too, the science of radiography. The plate
is then developed.
Developing of a photographic plate consists of making
visible the metallic silver which is produced by the decomposition
of the silver bromide. This is accomplished by
the use of a mixture of chemicals called the developer. The
plate is put into a tray about two inches deep and large
enough to allow for its easy removal, and the developing
solution is poured over the emulsion. Gradually the exposed
portions of the negative will appear and developing must
continue until every such exposed part has been brought
out in its fullest detail. The unexposed portions are then
dissolved by placing the plate in a solution of sodium hyposulphite,
sometimes called the fixer or the fixing bath. As
its name implies, this solution permanently fixes the exposed
silver, and if the plate were not treated in this manner the
entire mass would become blackened upon exposure to light.
The preparation of radiographic plates is carried on in
a room that is protected from light with the exception of a
dull, red glow from a “ruby lamp” which has no effect upon
the plate. The plate is placed into an envelope made of
black paper, and this in turn is placed, flap down, into a
second envelope of red paper. This insures protection from
light rays when the plate is brought out of the dark room.
After exposure, the negative must be taken back to the
dark room before it is removed from the envelope. After
it has been developed and fixed it may be brought into the
light with safety.
The length of time required in making exposures
varies with the different types of apparatus. When the
flow of rays is great, it will require a proportionately shorter
[Pg 397]exposure. So, too, the length of exposure with a certain
type of generator varies with the part being exposed. The
bones of the fingers would require less time than those of
the leg, while the bones of the head would require more time
than either of the above for the production of a clear radiograph.
It is essential in all branches of radiography to
remember that the part to be skiagraphed be parallel to
and in close proximity to the plate. This will prevent elongations
and foreshortenings of the shadows cast.
SPUR ON THE UNDER SURFACE OF THE HEEL
DIAGNOSIS OF RADIOGRAPHS
There are several lesions of the foot commonly arising
in the practice of the podiatrist, which are easily recognized
by radiographic examination but which otherwise are difficult
of diagnosis. Some of these cases are shown in the accompanying
pictures, which were selected from a large collection
at The First Institute of Podiatry of New York City.
They are characteristic of the lesions they depict, and it is
needless to emphasize their value as an aid to diagnosis. If
a condition involves the bony structure of the foot, clinical
symptoms are never so certain that an absolutely positive
diagnosis can be made, but the X-ray plate readily reveals
such disturbances so that there is no doubt left in the minds
of the practitioner as to the exact nature of the trouble.
Periostitis, exostosis, fractures, arthritis, bone abscesses,
bone ulcers, etc., are thus easily distinguished.
Periostitis. Periostitis is an inflammation of the periosteum,
the outer covering of the bone. There are two types,
the acute and the chronic, both of which are not really
diseases themselves, but are indications of the reaction of
the periosteum to some irritant. In acute periostitis the
X-ray plate shows a slight destruction of the outer portion
of the bone, and a slight thickening of the periosteum, and
if suppuration is present, the lesion is a mild osteomyelitis
rather than a periostitis.
Chronic periostitis causes an increase in the osteogenetic
[Pg 399]cells of the periosteum and is common in a great many
lesions. Trauma, blows or contusions cause a chronic
thickening of the bone covering with additional bone formation,
as do syphilis and superficial abscesses in the soft
tissues, in the immediate vicinity of long bones. Thus
chronic ulcer of the leg over the shaft of the tibia will
produce this condition. The picture shows that the even
line of the bone surface is lost, and there is a rough, uneven
edge, with or without an increase in the bone cells. The
entire shaft of the bone is often thicker than normal, especially
in the metatarsals, and it is quite common to find one
of these bones greatly increased in size. The fourth metatarsal
is the one most usually affected.
Exostosis. This lesion is common in the foot, and is a
source of great pain and annoyance. It is usually the result
of a chronic bursitis which has affected the periosteum over
a localized area. Due to the destructive changes brought
about by the inflammatory processes, the periosteum is
absorbed and the bone cells beneath protrude in the form
of a spur which shows on the plate. The most common site
of exostosis of the foot is on the inferior surface of the
os calcis, under the calcaneo bursa. The part is somewhat
swollen and is extremely painful when pressure is brought
to bear directly over the growth. The heads of the metatarsal
bones on their lateral surfaces are occasionally
affected, especially the outer side of the head of the first
metatarsal. Lateral pressure gives rise to pain in this type
of exostosis. The treatment for all exostoses is purely
surgical.
Fractures. There are several kinds of fracture, and
they are classified variously, but for the purposes of the
podiatrist, the following types, with the description of each,
will prove sufficient:
Incomplete Fractures, among which are the greenstick
and the fissured fractures, are those in which there is not
a complete separation of the fragments. The greenstick is
really a bending rather than a breaking of the bone, and is
[Pg 400]found mostly in children under fifteen and then only rarely
affects the bones of the leg. Fissured fractures are splits
or cracks in the bone which do not separate it into two parts
and occur occasionally in the fibula or in the metatarsals.
They are easily seen in the radiograph by the dark shadow
they produce in the region that would ordinarily appear
light. This shadow extends over the entire length of the
break.
Complete Fractures are the most common type found
in the lower extremity and are divided according to the line
and the seat of the breach of continuity. Thus we have
transverse, longitudinal, oblique and spiral fractures. The
radiograph will reveal the nature of the break, and a dark
shadow will be cast between the fragments of bone. The
most common of these found in the leg are the oblique and
the spiral fractures.
Comminuted Fractures are those in which there is extensive
splintering of the bone adjoining the fracture or one
of the fragments. This class of fracture does not occur in
the foot.
Impacted Fractures are those in which the fragments
are driven into each other, forming a wedge, thus preventing
abnormal motion, so common in other types. This occurs
mostly in the neck of the femur.
Crushing or Compression Fractures are those in which
the bones are crushed. The spongy portion and the cortical
layer are both involved and in some cases the bones may be
pulpified. The tarsal bones are subject to this type of
fractures as the result of falls from heights, upon the soles
of the feet. (See accompanying picture of fracture of the
os calcis.)
A simple fracture is one in which a wound of the skin
is absent, or if present, there is no connection between it
and the broken bone.
If the bone is broken in two or more places or if two or
more non-adjacent bones are simultaneously broken, the
condition is called a multiple fracture.
[Pg 401]
FRACTURE OF THE OS CALCIS
[Pg 402]
A compound fracture is one in which the fragments of
bone pierce the soft tissues and protrude beyond the skin.
It is essential in examining a patient who has suffered
from a recent fracture, to obtain a history of the case as
well as a description of the accident. An examination of
the part should be made, and the various symptoms such
as deformity, abnormal mobility and crepitus should be
noted. The X-ray picture is then taken and if a fracture is
found, the case should be put in the hands of a competent
surgeon for immediate and proper treatment.
Sesamoid Bones. The sesamoid bones which are found
in the flexor tendons under the head of the first metatarsal
bones, are subjected to injury in those who follow vocations
in which the ball of the foot is put to great strains. Among
such may be mentioned dancers and acrobats. The normal
position of these bones is directly beneath the head of the
first metatarsal bone, and when this part is put to a great
strain, the bones may become fractured, or they may become
displaced. The outer sesamoid is usually forced outward
and the X-ray picture shows it in the first interosseous
space. The inner sesamoid is not affected, but may also be
forced outward, and is then found under the outer side of
the first metatarsal, in the normal position of the outer sesamoid
bone.
Fracture of these bones is not unusual and is a result
of a severe injury. The line of division is shown by a dark
shadow, much the same as in other fractures. One or both
of the bones may be involved. It is essential to remember
that if the bone is broken, the opposite sides will fit into
each other perfectly, whereas, in cases of a freakish nature,
in which there are four sesamoid bones, this will not be
the case.
Arthritis. Arthritis, or inflammation of the joints, may
involve any one or all of the structures which make up
joints, viz., bone, cartilage, ligaments, synovial membrane
and fibro-cartilage. The acute forms of inflammation are
not detected by the radiogram, but the chronic type leaves
[Pg 404]its characteristic marks which, when present, are easily
seen. The synovial covering of the ends of the bones is
destroyed, and shows a rough, uneven surface. In cases of
long standing, there is complete bony ankylosis, and the
shadows of the joint line are completely obliterated. This
is particularly true in the tarsal joints, in which the joint
lines between the bones can hardly be seen. There is no
motion in such joints, and in milder cases, in which no union
has occurred, the sensation of crepitus is conveyed to the
hand if the joints are moved passively. Tubercular arthritis
shows a rarification of the bone with a thickening of
the periosteum.
Arteriosclerosis, or hardening of the arteries, is often
detected by means of the X-ray picture. Light shadows
cast in the normal dark shade produced by the soft tissues,
which appear over the course of the arteries, are indications
of this condition.
This disease of the arteries causes a change in the
vessels whereby there are calcareous salts deposited in the
middle coat. These salts, containing the metal calcium, are
not readily penetrated by the ray, and thus a difference
between the artery and other soft tissues is established.
There are many other conditions in which the X-rays
are a valuable aid in making diagnosis, but these are of no
interest to the podiatrist, being within the exclusive
province of the physician and surgeon. The reader is
referred to books which deal with the subject of Roentgenology
exclusively, for further information upon the subject.
[Pg 405]
HALLUX VALGUS
CHAPTER XXVI
THE PODIATRIST’S OFFICE
The equipment of an office of a professional man or
woman, whether it be the surgeon, the dentist, the podiatrist
or any other of the practitioners of the allied branches
of medicine, cannot be set to an absolute standard. There
are several factors that govern variations, one from the
other, among which are considerations of finance and the
amount of available space. Regardless of these differences,
however, certain fundamental principles must be observed
in equipping such an office, and these depend upon two cardinal
requirements: (1) cleanliness, and (2) the comfort of
the patient. Such an office must be fitted out with the laws of
asepsis and antisepsis ever in mind, otherwise it will prove
unsafe for the treatment of patients whose feet require
surgical attention. Again, the patient must feel at ease
while being treated, or revisits will be scarce.
There are other and secondary standards which should
be considered among which is the appeal to the eye. First
impressions often are lasting ones, and an office which
makes a favorable impression will help attract patients.
One often hears the thoughtless layman express himself,
“Go to Dr. Blank for treatment, he has a beautiful office.”
So it often occurs that a professional person is judged by
the equipment in his office, and the effects of such an impression
should be considered.
The Waiting Room. The waiting or reception room
should be furnished with chairs upholstered in leather or
made of solid wood. In waiting rooms in which many
patients must wait at the same time, and space is valuable,
smaller chairs with cane seats are very useful. The table
[Pg 406]should be of polished wood, covered with a plate glass top.
The wood work of the room itself should be white, and the
walls should be painted in preference to being papered.
Buff is a pleasing color to the eye, and readily matches all
kinds of furniture. The floor should be of hard wood, and
may be covered by linoleum or rugs. Carpets should not
be tolerated, as they are dirty; and even though frequently
swept, they become the repositories of dust and of germs.
The Operating Room. The operating room must be
scrupulously clean. As a white background best shows dirt
spots, that should prevail in furniture and in decorations.
A door, either of glass and wood or entirely of wood, should
separate the reception room and the operating room; if
hangings must be used, they should be of some washable,
white material, that can be readily changed. The floor
should be of tile, marble or stone; if these materials are not
available, hard wood floors, well polished, are permissible.
No covering of any kind should be used for the floor of this
room. The ceilings and walls should be painted white, and
the wood work should be enameled the same color. Tile or
marble walls are preferable to plaster or wood. No curtains
should be used on windows or doors, and if necessary the
glass can be frosted to secure privacy. A wash basin, with
running hot and cold water, should be in the operating room,
and the valves should be controlled by foot levers in preference
to hand faucets.
To summarize, everything in the operating room should
be of such a character as to make it possible to wash it
daily with soap and water. Nooks and corners that tend to
collect dust and dirt must be thoroughly cleaned, bearing in
mind that disease-producing bacteria will not grow, unless
a breeding place be provided for them. Wall pictures and
their frames should be selected with a view to having them
equally sanitary.
The Equipment. The equipment of a modern office is
divided into three classes: (1) the furniture, which, when
bought, is permanent; (2) the instruments; and (3) the
[Pg 407]supplies, which are replenished from time to time as they
are exhausted.
Furniture should consist of the following in the order
of their importance:
Sterilizer
Operating Chair and Stool
Cabinet
Glass-Top Table
Drill
High Frequency Machine
Air Compressor
Galvanic Machine
Wall Cabinet and Extra Accessories.
The authors are not interested in the wares of any
manufacturer, and any equipment that is efficient and well
made will answer the purposes of the podiatrist. There
are many styles of chairs, cabinets, electric machines, etc.,
on the market and the selection of such furniture and equipment
rests with the finances and the taste of the individual.
Chairs should be roomy and have a suitable rest for the
patient’s back and head. The foot rest should be adjustable
and so arranged that the patient’s foot is made comfortable,
regardless of the position in which it is held.
This part of the chair is very important, as upon it often
depends the result of the podiatrist’s work. If the foot
and leg are held so that the patient is uncomfortable or so
that muscular cramps are the result, both patient and operator
are at a disadvantage which it is difficult to overcome.
There are two types of foot-rests on the market which
have proven efficient. One gives support along the entire
length of the leg and allows the foot to hang free at the end,
and the other gives support at the foot proper and is so
arranged that it gives this support no matter in what position
the foot be held. The chair itself should be so constructed
that no matter how the weight of the patient’s
body may be distributed, the chair will remain firm, with
[Pg 408]no danger of spilling its occupant. It is on this account that
a chair with a heavy metal base or with heavy spreading
legs is best. When the chair is placed in a horizontal position
so that the patient is prone, it should be as firm as
with the patient in a sitting posture. The stool should
match the chair and should be adjustable.
The cabinet is the most important part of the podiatrist’s
equipment from an aseptic standpoint, for therein
are kept the instruments, dressings, drugs, etc. There are
many styles and shapes from which to select, but only those
that afford proper protection from dust and dirt should be
considered. Drawers should be provided for bandages and
dressings, and one drawer should be divided into compartments
for the various sized shields. This adds to the neatness
as well as to the efficiency of the cabinet. Special
movable racks which fit into shallow drawers should be provided
for the instruments, so that, if necessary, they may
be collectively removed, thus avoiding the need for handling
each instrument separately. Instrument compartments of
this type should be so made that the blades of the various
instruments are suspended in the air; moreover such racks
and drawers are easily cleaned. Drugs should be kept in
special compartments provided with glass doors, or, if the
cabinet has no such provision, the bottles should fit in
metallic clamps arranged in the rear of the top of the
cabinet. Glass tops on the cabinets are best for they are
easily cleaned, but white enameled metal tops are quite as
good. The towels should be kept in a compartment of the
sterilizer, otherwise in a special compartment in the cabinet,
one having a glass door being preferred.
Sterilizers may be heated by gas or electricity and
when boiling water is not available, even formaldehyde gas
is better than nothing for sterilizing purposes. The sterilizer,
a necessity and not an ornament, should be cleaned
and polished and the water should be changed daily.
Unfortunately in the past, practitioners of podiatry did
not use the sterilizer with regularity, and one could
[Pg 409]enter many of these offices and not even find such a contrivance.
This state of affairs, however, is becoming a memory
because the practitioner, as well as the public, has learned
the importance of asepsis and antisepsis. The podiatrist
who fails to observe the needs of this dispensation is unworthy
of the title he bears.
The sterilizer should be kept on a white enameled table
with a detachable metal top, so that boiling water or hot
instruments will cause no damage to it, as might occur on a
glass-topped table. This table should have a glass shelf
below, on which may be kept additional remedial agents
for which there is no room in the cabinet.
The surgical drill or rotary file is a valuable asset to
the podiatrist in treating the nails, and should be a part
of the equipment. There are several makes of rotary files,
all with the same fundamental structure. The motors and
cables are of one type, and are held either by a wall bracket
or suspended upon a metal hook, resting on a metal pedestal.
When the instrument is kept in only one operating room,
the former type is sufficient, but when the drill is moved
from one room to another, the latter style is necessary.
Other accessories in the office, such as an air compressor,
high frequency coil, galvanic machine, wall cabinet,
etc., should be selected with care as to quality, and with
judgment as to their harmonizing with the other equipment.
If space allows, all of these accessories are desirable because
useful, but when quarters are contracted, care must
be taken in arranging the paraphernalia that the effect is
not such as to give the patient the impression that he is
in a podiatry supply shop.
“Cleanliness is next to Godliness,” should be the
slogan of every practitioner of medicine in any and in all
of its collateral branches and the manner in which he conducts
his office should be evidence that such is the belief
and the practice of every podiatrist.
[Pg 411]
FOOTNOTES:
[1] The District of Columbia has now a similar law, passed since the above was
written. Ernest Stanaback, former President of the N. A. C., and Harry P. Kenison, the
present President of the N. A. C., were potent factors in procuring most of the legislation
in the above states.
[2] Podiatrists are advised to refrain from using cocaine on account of its dangers.
[3] Hypodermic and hypodermatic are synonymous terms although medical lexicographers,
as a rule, give preference to the latter.
[4]Apothesine (Parke Davis & Co.) is a new synthetic preparation of definite chemical
composition. It is ¹⁄₈ as toxic as cocaine, is very soluble in water and alcohol, and may be
sterilized by boiling for five or ten minutes. It is used in a one per cent. solution and
came into favor during the war, by reason of the scarcity of cocaine and novocaine.
Apothesine is not a habit-forming drug and is therefore easily obtainable. At The First
Institute of Podiatry this preparation and novocaine are almost exclusively used for producing
local anesthesias.
[5] Apothesine, lately introduced, is proving efficacious and reliable (see page 148).
[6] These experiments were carried on at The First Institute of Podiatry under the
direction of Monroe Redell and W. H. A. Fletcher, clinicians, and on the suggestion of
Dr. F. Oefele.
[7] (Capt. V. N. Sorapure, R. A. M. C., who has lectured to the students of The First
Institute of Podiatry, has contributed to the literature on this subject; see Journal of the
A. M. A., July 6, 1918).
GLOSSARY
A
a-, an. A prefix conveying a negative
meaning—without, not, away from.
aa. A sign used in prescription writing
to indicate equal parts of each ingredient
so designated.
ab. A prefix signifying from, away
from, off.
abdominal. Relating to the abdomen or
belly.
abduction. Rotation of the foot outward.
abnormal. Not normal, contrary to the
rule or type; irregular.
aboriginal. Primitive, existing from the
beginning.
abrasion. A circumscribed removal of
the epidermis of skin or mucous membrane.
abscess. A circumscribed cavity in the
tissues containing pus.
absorption. The taking into the tissues,
through the medium of the lymphatics
or blood vessels, of any material in
suitable form.
acetanilid. An analgesic made from aniline
by treating it with acetyl chloride.
acetic. Relating to vinegar; acid.
acid. A chemical compound containing
replacible hydrogen, having a sour
taste, and neutralizing a base to form
a salt and water.
acidum. Acid.
a. Aceticum, acetic acid; useful as a
counter-irritant.
a. aceticum glaciale, glacial acetic
acid; employed externally as a
caustic.
a. boricum, boric acid; dusting powder,
antiseptic.
a. carbolicum, carbolic acid, phenol;
antiseptic.
a. chromicum, chromic acid; caustic.
a. dichloraceticum, dichloracetic acid;
caustic.
a. hydrochloricum, hydrochloric acid;
escharotic.
a. iodicum, a white crystalline powder;
antiseptic and deodorant.
a. monochloraceticum, a white deliquescent
powder; caustic.
a. nitricum, nitric acid; caustic.
a. nitricum fumans, fuming nitric
acid; caustic.
a. nitrohydrochloricum; a fusing corrosive
liquid; caustic.
a. salicylicum, salicylic acid; disintegrant.
a. sulphocarbolicum, sozolic acid;
antiseptic and disinfectant.
a. sulphuricum, sulphuric acid, oil of
vitriol; caustic.
a. tannicicum, tannic acid, astringent.
a. trichloraceticum, trichloracetic acid;
caustic.
acquired. Noting a disease which is not
congenital but has taken possession of
one at some period after birth.
actinic. Relating to chemically active
rays.
actinotherapy. The treatment of disease
by radiant energy.
acute. Of short and sharp duration, not
chronic; said of a disease.
adduction. Rotation of the foot inward.
adhesive. Sticky; causing adhesion.
adipose. Fatty; relating to fat.
adjacent. Next to; along side of.
adjuvants. Agents added to a prescription
to assist or increase the action of
the main ingredient.
adolescents. Youths, those between the
ages of puberty and the attainment of
full growth.
adrenalin. A principle obtained from the
suprarenal glands having marked
astringent and hemostatic powers.
agar. A gelatinous substance prepared
from seaweed, and used as a base for
culture media.
agent. Anything which produces an
effect upon the organism.
agnail. Hangnail, whitlow.
albumin. A protein contained in the
tissues of plants and animals.
albuminous. Containing or consisting of
albumin.
albuminuria. The presence of albumin
in the urine as voided.
alcohol. One of a series of organic compounds,
especially one whose formula
is C2H5OH, and called ethyl alcohol.
algia. A suffix indicating pain. (Exam.
metatarsalgia—pain in the metatarsals).
alignment. Alinement; the act of bringing
into line.
alkaline. Relating to an alkali; having
the reaction of an alkali.
alkaloid. A basic substance found in
plants, usually constituting the active
principle of the crude drug.
alum. A double sulphate of aluminum;
burnt a. alumen exsiccatum.
aluminum chloride. A substance used as
an astringent in hyperidrosis and bromidrosis.
alypin. A crystalline powder used as a
local anesthetic.
ammoniated mercury. See unguentum,
hydrarg, amm.
ampere. The unit of strength of an
electric current.
amyotrophic lateral sclerosis. A form of
progressive muscular atrophy with increased
reflexes due to hardening of
the lateral columns of the spinal cord.
anærobe. A microorganism which
thrives best or only when deprived of
oxygen.
analgesic. An agent which causes analgesia
or freedom from pain.
anastomose. To open one into the other
directly or by connecting channels;
said of blood vessels and nerves.
anatomy. The science devoted to the
study of the structure of organized
bodies, more especially the human
body.
[Pg 412]
anemia. A condition in which the blood
is reduced in amount, or is deficient in
red blood cells or in hemoglobin.
anesthesia. Loss of sensation, especially
of tactile sensibility.
anesthetic. 1. Insensible to touch or to
pain or to other stimuli. 2. A drug
which produces local or general anesthesia.
anesthetize. To induce anesthesia; to
render anesthetic.
aneurism. A blood-containing tumor
connecting directly with the lumen of
an artery.
angioma. A swelling or tumor due to
dilatation of a blood vessel.
ankylosis. Stiffening or fixation of a
joint.
anterior. In front of, or, in the front
part of.
anterior poliomyelitis. Inflammation of
the anterior horns of the spine; infantile
spinal paralysis.
antheloticum or remedium heloticum.
Remedy for helomata.
anti. A prefix signifying against, opposing.
(Exam. antifebrile—against
fever).
anticathode. The platinum or other
plate in a Crookes tube on which the
cathode rays impinge, giving origin to
the X-rays.
antiphlogistic. An agent which subdues
or allays inflammation.
antisepsis. The destruction of germs
causing disease, fermentation or putrefaction.
antiseptic. 1. Destructive to the germs
of disease, fermentation or putrefaction.
2. A substance which prevents
the action of the germs of fermentation,
decomposition, or disease.
aperture. An opening, orifice.
apex. The summit or tip.
apodal. Without feet.
apodia. Congenital absence of feet.
apoplectic. Relating to, predisposed to
or suffering from apoplexy.
apoplexy. A sudden loss of consciousness
followed by paralysis, due to cerebral
hemorrhage or blocking of an
artery of the brain.
apothesine. A synthetic product used to
produce local anesthesia, which came
into popular favor at a time when the
usually employed local anesthetics were
unobtainable because of war conditions.
apparatus. A collection of instruments
adapted for a special purpose.
appendage. Any part, subordinate in
size, attached to a main structure.
appendicitis. Inflammation of the vermiform
appendix.
applicator. A slender rod of wood or
metal by means of which with cotton,
local applications may be made to a
part.
apus. A monster without feet.
aqua. Water.
aqua cinnamomi. Cinnamon water.
aqua fortis. Nitric acid; see acidum
nitricum.
aqueous. Watery.
arch. In anatomy, any vaulted or arch-like
structure.
argentum. The metal, silver.
aristol. Trade name of thymol iodide,
a local antiseptic.
armamentarium. In podiatry, all the
means (drugs, instruments, etc.) at
the disposal of the podiatrist to fit him
for the practice of his profession.
arsenic. A steel-gray metal, one of the
elements; arsenic trioxide, white arsenic.
arteria. Artery: a blood vessel conveying
blood away from the heart.
arteries of the foot:
a. communicans; communicating
branch of dorsalis pedis (to plantar
surface to join plantar arch).
a. digitales dorsales; digital branches
of dorsalis pedis (dorsal surface of
the toes).
a. dorsalis pedis; dorsalis pedis artery
(dorsum of foot).
a. metatarsae dorsales; metatarsal
branch of dorsalis pedis (dorsum of
foot to metatarsus).
a. plantaris lateralis; external plantar
artery (plantar surface, joining
communicating branch of dorsalis
pedis, completing the plantar arch).
a. plantaris medialis; internal plantar
artery (plantar surface of foot).
a. tarsae lateralis; tarsal branch of
dorsalis pedis (dorsum of foot to
the tarsus).
arteriosclerosis. Hardening of the arteries.
areolar. A tissue made up of loose connective
tissue, with many interspaces
and found under the skin.
arsenical. Relating to or containing any
of the salts of arsenic.
arthritis. Inflammation of the joints.
articulation. A joining or connecting
together loosely so as to allow of
motion between the parts.
articular. Relating to a joint.
ascites. An accumulation of serous fluid
in the peritoneal cavity.
asepsis. A condition in which living
bacteria are absent.
astasia-abasia. Inability through muscular
incoordination, to walk or stand,
although the muscles functionate normally
when the patient is lying down.
astragalus. The ankle bone.
astringent. An agent which causes contraction
of the tissues or arrest of the
secretions.
ataxia. A loss of the power of muscular
coordination.
ataxic. Relating to ataxia.
atony. Lack of tone or tension.
atrophy. A wasting of the tissues of a
part or of the entire body.
atypical. Not typical.
auto. A prefix denoting self. (Exam.
autogenesis—self-production).
auto-serotherapic. Relating to the treatment
of certain conditions by the injection
of the patient’s own blood serum.
axilla. The armpit (pl. axillae).
axis. A straight line passing through a
spherical body between its two poles
and about which the body may revolve.
B
bacillus. A bacterium; more especially,
a rod-shaped or elongated variety.
bacillus aërogenes capsulatus. The
specific organism causing gas infection
and gas gangrene. b. of Welch, the
same; b. perfringens, the same.
[Pg 413]
bacteria. Unicellular vegetable microorganisms,
usually those which produce
disease.
bactericidal. Causing the death of bacteria.
bacterium fetidum. A microorganism
producing a stench. b. prodigiosus.
A microorganism found on food, but
not pathogenic.
bandage. A piece of cloth or other
material applied to any part of the
body, to make compression, prevent
motion and to retain surgical dressings.
base. The lower part or bottom. In
pharmacy, the chief ingredient of a
compound. In chemistry, a compound
which neutralizes an acid to form a
salt.
belladonna. Deadly nightshade. A perennial
herb, the leaves and roots of
which are used in medicine.
beneficent. The disposition to do good;
of help to.
benign. Mild in character, said of an
illness; not malignant.
benzine. A purified distillate of American
petroleum.
beriberi. Endemic neuritis; a specific
polyneuritis occurring in eastern and
southern Asia. It prevails especially
in armies, prisons, ships, etc., wherever
large numbers of men are kept
together.
bi. A prefix denoting two, twice, or
double. (Exam. bicuspid—having two
prongs).
bichloride of mercury. A chemical compound,
HgCl2, called corrosive sublimate
and mercuric chloride. It is
used as an antiseptic.
bifid. Split or cleft bilateral. Having
two sides, biped. Two-footed.
bismuth subgallate. A yellowish dusting
powder; trade name, dermatol.
bismuth subnitrate. A white dusting
powder with astringent properties.
bistoury. A long, narrow-bladed knife,
straight or curved on the edge, sharp
or blunt pointed; employed for opening
abscesses, slitting up sinuses, etc.
bleb. A circumscribed area of separation
of the epidermis due to the
presence of a clear non-purulent fluid.
blister. A bleb.
blood. Sanguis, cruor; the red fluid circulating
in the arteries, capillaries and
veins. b. plasma, the fluid portion of
the blood as it is contained in the
vessels. b. serum, the fluid which is
squeezed out by shrinkage of a blood clot.
bones. The hard substances that make
up the framework of the body.
bones of the foot:
astragalus. Ankle bone.
cuboid. In front of the os calcis.
internal, middle and external cuneiforms.
In front of the scaphoid.
metatarsals. Five; in front of the
tarsal bones.
os calcis. Heel bone.
phalanges. Fourteen; in front of the
metatarsals, two in the great toe and
three in each of the four lesser toes.
scaphoid. In front of the astragalus.
boric acid. A powder, soluble in water
used as an antiseptic dusting powder.
bromidrosis. Foul-smelling perspiration.
buckskin. A leather made from the skin
of the buck.
buffing. Polishing by means of some soft
material, attached to a rapidly revolving
motor.
bulb. Any globular or fusiform structure.
bulbar palsy. Paralysis of the tongue
and larynx.
bulla. A bleb.
bullous. Relating to or of the nature
of bullae.
bunion. An inflammatory swelling of
the bursa over the metatarsophalangeal
joint of the great toe.
bur. A small disc or bulb, made to revolve
rapidly and used by podiatrists in
connection with their employment of
the rotary drill, or file.
Burow’s solution. A solution of alum
and lead acetate.
bursa (plural, bursae). A closed sac
or pouch containing synovial fluid,
found over joints and where tendons
play over bones.
bursitis. Inflammation of a bursa.
C
caisson disease. The bends, divers’
paralysis, tunnel disease; a symptom-complex,
occurring in tunnel workers
and others working in places under
high air pressure when they return
too suddenly to the normal atmosphere.
calamine. Zinc carbonate; a pink powder
used as an astringent.
calcaneoastragaloid. Relating to the
os calcis and the astragalus.
calcareous. Chalky.
calcified. Hardened by the deposition of
lime salts in a part.
calcium. A metallic element having a
yellow color.
calibre. The diameter of a canal or
vessel.
callositas. Callous, tyloma, a circumscribed
thickening of the epidermic
layers of the skin.
callous. Callositas.
callus. Callosity. The bone-like substance
thrown out between and around
the ends of a fractured bone.
calomel. Hydrargyrum chloride mite.
calor. Heat.
camphorated soap liniment. Soap liniment,
camphorated tincture of soap.
capillary. One of the microscopic blood
vessels forming the capillary system,
intermediate between the arteries and
the veins.
capsicum. The dried fruit of Cayenne,
African or red pepper.
capsule. A membranous structure enveloping
an organ or any other part.
carbolic acid. Phenol.
carbon. An element, occurring in the
form of the diamond, graphite and coal.
carbon dioxide pencil. A mass of solidified
carbon dioxide used for the
destruction of verruca, etc.
carborundum. A very hard substance
(carbide of silicon) used to sharpen instruments.
caries. Molecular decay of a bone.
carpal. Relating to the wrist.
carpus. The wrist.
cartilage. A connective tissue substance.
[Pg 414]
cashmere. A woolen fabric made from
goat hair.
cast. An object formed by the solidification
of a liquid poured into a mold.
castor oil. Oleum ricini; a fixed oil from
the seeds of Ricinus communis.
catalepsy. A morbid state in which
there is rigidity of the limbs.
cataplasma. A poultice, a soft magma
or mush, prepared by wetting or
heating various powders or other
absorbent substances.
catatonia. Stupor.
cathode. The negative pole of an electric
current.
caustic. Corrosive.
cautery. An agent used for scarring or
burning the skin or tissues by means
of heat or of caustic chemicals.
c.c. Abbreviation for cubic centimeter.
cell. A minute structure, the living
active basis of all plant and animal
organization, composed of a mass of
protoplasm and containing a nucleus.
cellulitis. Inflammation of the cellular
or connective tissue.
centigrade scale. A thermometer scale,
in which there are 100 degrees between
the freezing point and the boiling point
of water.
centimeter. The hundredth part of a
meter or .3937 (²⁄₅) of an inch.
cerate (Lat. ceratum). An unctuous
solid preparation, containing sufficient
wax to prevent it from liquefying
when applied to the skin.
cerebellar. Relating to the cerebellum
or hind-brain.
cerebral. Referring to the brain.
cerebral cortex. The external layer of
gray matter covering the hemispheres
of the brain.
cerebral hemisphere. The large mass of
brain substance on either side of the
great longitudinal fissure.
cerebrospinal. Relating to the brain and
the spinal cord.
cerebrospinal meningitis. An acute infectious
inflammation of the brain and
spinal cord caused by the meningococcus.
chamois. The skin of the goat family,
prepared for purposes of utility.
chancre. The initial sore of syphilis.
characteristics. The traits which mark
a substance or condition, and differentiate
it from others.
Charcot’s disease. Amyotrophic lateral
sclerosis.
chauffeur’s foot. A painful condition of
the anterior part of the foot.
chilblain. An inflammation of the skin
due to exposure to cold and dampness.
chimatlon. Chilblains, an inflammation
of the skin due to exposure to cold
and dampness.
chiropodical. Relating to chiropody
(podiatry).
chiropodist. One who treats the minor
lesions of the foot. Originally probably,
chirurg-podist, a surgeon of the
foot.
chiropody. The study of the minor
lesions of the foot. Podiatry.
chisel. The podiatrist’s instrument; helotomon.
chlorine. An element in nature; an irritating,
greenish, gaseous element used
for disinfectant and bleaching purposes.
cholesterin. A monatomic alcohol.
chorea. A disorder of childhood characterized
by spasmodic, involuntary
movements of the limbs and facial
muscles; St. Vitus’ dance.
chromidrosis. A disease of the sweat
glands in which the perspiration is
colored.
chromium. A very hard steel-gray
element.
chronic. Of long duration; noting a
disease of slow progress and long continuance.
cicatricial. Referring to scars or scar
tissue.
cicatrix. A scar.
circinate. Circular, ring-shaped.
circum. A prefix denoting a circular
movement. (Exam. circumcision—to
cut around).
circumduction. Movement of a part in
a circular direction.
circumscribed. A definitely limited area.
claudication. Limping.
claw-foot. Muscular atrophy with caval
contraction of the foot.
clavus. Heloma, corn.
clinic. An institution in which medical
attention is given to patients who live
elsewhere and do not require hospital
care.
clonic. Marked by alternate contraction
and relaxation of muscle.
clot. Coagulated blood.
club-foot. Talipes.
coagulation. Clotting, the process of
changing from a liquid state to that
of a soft, jelly-like solid.
coalesce. To grow together, to become
one.
coaptation. The joining together of two
surfaces, as in sewing up a wound or
setting a fracture.
cocaine. An alkaloid derived from coca
and used for producing local anesthesia.
cocoon dressing. A dressing made of
absorbent cotton covered with collodion.
cohesion. The power of attraction between
the molecules of any substance,
keeping the mass from falling apart.
collateral. Secondary or subordinate.
collodial. Glue-like. A substance which
remains permanently suspended in a
liquid, but does not dissolve.
collodion (Collodium). A solution of
guncotton in ether and alcohol.
coma. A state of profound unconsciousness
from which one cannot be roused.
comatose. A state of coma.
comminuted. Broken into a number of
fragments, as in a multiple fractured
bone.
compound. Not simple but made up of
two or more parts. In chemistry, a
substance formed by the chemical
union of two or more elements.
compress. A pad of gauze or other
material placed over a part to make
compression.
concave. A surface which is evenly
curved inward.
concentrated. Referring to a solution
which has been made strong by evaporation
or other means.
concentric. Having a common centre.
concomitant. Accompanying; occurring
at the same time.
concrete. Hardened; solidified into a
mass.
[Pg 415]
condyle. A rounded articular surface at
the extremity of a long bone.
configuration. External form.
congelation. Freezing.
congenital. Existing at birth.
congestion. The presence of an abnormal
amount of blood in the vessels of
a part.
connective. Binding, joining.
c. tissue. The general supporting or
uniting tissue of the body.
constitutional. Relating to the system
as a whole; not local.
contact. The touching or apposition of
two bodies.
contagion. Transmission of an infectious
disease.
contamination. Pollution, soiling with
infectious matter.
continuity. Without a break; absence of
interruption.
contour. The outline of a part, the
surface configuration.
contra. A prefix signifying against or
opposite. (Exam. contra-lateral—relating
to the other side).
contra-indicated. Not indicated, as in the
purposed use of a remedy or in the
consideration of a surgical procedure.
contract. To shorten.
contracture. A permanent muscular contraction,
due to tonic spasm or to loss
of muscular equilibrium, the antagonists
being paralyzed.
contused. Bruised.
convex. A surface which is evenly
curved outward.
coordination. The harmonious working
together of several muscles or groups
of muscles.
core. The central mass of necrotic tissue
in a boil.
corium. Cutis vera, true skin; the
deeper or connective tissue layers of
the skin.
corn. Heloma, an overgrowth of the
epidermic layers of the skin, containing
a radix, or nucleus.
cornification. Conversion into a horny
substance.
corpuscle. A primary atom.
corrode. To wear away gradually.
corrosive sublimate. Bichloride of mercury.
cortex. The outer portion of an organ.
cosmetic. Relating to the care of a person
with a view to improving the
appearance.
cotton. The white fluffy fibrous covering
of the seeds of the plant, genus gossypium,
used in surgical dressings.
counterextension. The resistance, or
back-pull, made to extension on a
limb.
counter-irritant. An agent which causes
counter-irritation.
counter-irritation. Inflammation or irritation
of the skin excited for the purpose
of relieving an inflammation of
the deeper structures.
coup de fouet. Rupture of the plantaris
muscle; lawn tennis leg.
c. p. Abbreviation for chemically pure.
cramp. A painful tonic muscular contraction;
spasm.
creosote. A substance obtained from
beechwood tar.
crepitus. The sensation (a crackling)
felt when the hands are placed over
the seat of a fracture, and the broken
ends of the bones are moved against
each other.
cretinism. A disease occurring in the
first three years of life, and resulting
in the arrest of bodily growth and
of mental development.
crinoline. A stiff material with a coarser
mesh, and heavier than gauze or
cheesecloth.
criss-cross. Referring to plaster applied
to a part, each strip when applied being
at an angle to the strip previously applied.
Crookes tube. See Chapter, “X-rays in
Podiatry.”
croupous. Marked by a fibrinous exudation.
crural. Relating to the leg or thigh.
crystalline. Clear, transparent.
cuboid. A bone of the tarsus.
cuneiform. Three bones of the tarsus.
curettage. Scraping the interior of a
cavity for the removal of the abnormal
tissues, with the curette.
cutaneous. Relating to the skin.
cuticle. Epidermis or outer horny layer
of the skin.
cutis. The skin.
cylinder. A geometric figure formed by
the revolution of a rectangle around
one of its sides.
cylindrical. Relating to or the shape of
a cylinder.
cyst. An abnormal sac containing gas,
fluid or a semi-solid material.
cytoplasm. Protoplasm, the substance
of the cell, exclusive of the nucleus.
It is composed of spongioplasm and
hyaloplasm.
D
D. Abbreviation in prescription writing
for da, give, detur, let there be given.
dactyl. A finger or toe.
Dakin Solution. A solution compounded
by Dr. Dakin for the treatment of
wounds by means of chlorine gas in
solution, applied directly to the parts
affected or injured.
dancer’s foot. A painful condition of the
great toe joint.
decay. Slow destruction of an organic
substance.
débris. Fragments; broken rubbish.
deformity. A deviation from the normal
shape or size, resulting in disfigurement.
degeneration. Deterioration; sinking from
a higher to a lower level of a type.
dehydrating. Losing water; being deprived
of water.
deliquesce. To become damp or liquid
by absorbing water from the atmosphere.
delirium. A condition of extreme mental
excitement, marked by confused
ideas.
demarcation. A setting of limits, determining
a boundary. Line of d., a
zone of inflammatory reaction separating
a gangrenous area from healthy
tissue.
dementia paralytica. General paresis, or
paralysis, of the insane.
denuded. Deprived of a covering; bared.
[Pg 416]
deodorant. An agent which destroys
odors, especially disagreeable odors.
depressed. Flattened from above downward.
as in fractures of that type.
derma. The connective tissue layer of
the skin; the true skin.
dermatalgia. Skin pain.
dermatitis. Inflammation of the skin.
dermatitis calorica. Inflammation of the
skin resulting from the action of cold
or heat.
dermatol. Trade name of bismuth subgallate.
dermatorrhea. Excessive skin secretion.
dermosynovitis. Perforating ulcer of the
foot.
desiccant. A skin-drying agent.
desiccation. Drying.
desquamation. The shedding of the
cuticle in scales or shreds.
developer. A solution of chemicals used
to develop photographic and X-ray
plates.
devitalized. Deprived of vitality or
energy.
dexter. Right, in contradistinction to
sinister, left.
diabetes. A disease in which sugar is
excreted in the urine, and is also
present in the blood. There are two
types, insipidus and mellitus. The
latter is the diabetes in which sugar
is excreted. In the former, large
quantities of pale urine are excreted.
diachylon. Lead plaster.
diagnosis. The determination of the
nature of a disease.
diapedesis. The passage of the blood cells
through the unruptured walls of
the blood vessels.
diathesis. A constitutional state predisposing
to any disease or group of
diseases.
digit. A finger or toe.
diet. Food and drink in general. A prescribed
course of eating and drinking.
dietetics. The therapeutics of food and
drink in relation to health and disease.
diffuse. Spread about; not confined.
dioxygen. Trade name for hydrogen
peroxide.
diphtheria. A specific infectious disease
caused by the Klebs-Loeffler bacillus.
direct cautery. Actual fire or heat
applied to a part to destroy it.
disbasia angiosclerotica. A disease characterized
by intermittent limping.
disease. Illness, sickness; an interruption
of the function of any part of the
body.
disintegration. Separation of the component
parts of a substance.
dislocation. A disturbance of the relation
of the bones entering into a joint.
dissection. The act of cutting apart or
separating the tissues of the body in
the study of anatomy. In an operation,
to separate the structures along
natural lines. In podiatry, to remove
a growth in its entirety and as a
whole.
disseminatum. Widely scattered, referring
to heloma d., which is so scattered.
distal. Farthest from the centre or
median line. Opposed to proximal.
distension. The act of stretching.
dorsal. Referring to the upper or posterior
surface, or the back of any part.
douche. A current of water or other
fluid, directed against the surface or
projected in a cavity.
drain. To draw off the fluid from a
cavity.
dressings. The materials applied to a
wound for the purpose of excluding
the air, stimulating repair, etc.
drop-foot. Paralysis of the dorsal flexor
muscles of the foot.
dropsy. An excessive accumulation of
clear watery fluid in any of the tissues
or cavities of the body. (Latin—hydrops).
duck shield. A dressing for heloma
molle, devised by Alfred Ahrens.
duct. A tubular structure giving exit to
the secretion of a gland, or conducting
any fluid.
ductility. The quality possessed by some
metals to spread and elongate without
breaking.
dys. A prefix meaning bad or difficult.
(Exam. dysphasia—an impairment in
the sense of touch).
dyspnea. Shortness of breath, difficult
respiration.
E
ebullition. Boiling.
ecchymosis. A purplish patch of the
skin caused by extravasation of blood.
ectrodactylia. A congenital malformation
in which one or more fingers or
toes are absent.
eczema. Salt rheum, tetter; an inflammation
of the skin, characterized by
weeping and itching.
edema. An abnormal amount of clear
watery fluid in the lymph spaces of
the tissues.
edematous. Dropsical, marked by edema.
effusion. Escape of fluid from the blood vessels
or lymphatics into the tissues
or a cavity.
electrode. One of the two poles of an
electric battery or of the ends of the
conductors connected therewith.
electrolysis. Decomposition of the tissues
by means of electricity.
eleidin. A deeply staining substance
forming the granules of the stratum
granulosum of the epidermis.
element. A simple substance which has
not been subdivided.
elephantiasis. Barbados leg. Hypertrophy
of the skin and subcutaneous tissues.
eliminants. Agents promoting the removal
of waste.
emaciation. Extreme loss of flesh.
embolism. Obstruction of a vessel due
to a clot or foreign matter, which has
been transported to it, usually from a
thrombus.
emollient. Soothing to the skin.
emphysema. The presence of air in the
spaces of the connective tissues of a
part.
empiric. Founded on experience; the
treatment of disease based on experience;
opposed to rational.
encapsulated. Inclosed in a sheath or
capsule.
encysted. Encapsuled; surrounded by a
closed membrane.
endarteritis. Inflammation of the inner
coat of an artery.
[Pg 417]
endemic. Noting a disease common to a
region.
endo. A prefix signifying within. (Exam.
endotoscope—a form of ear speculum).
endosmosis. Osmosis in a direction
towards the interior of a cavity.
endothelium. A layer of flat cells lining
serous cavities, blood vessels, etc., and
cavities not exposed to the air.
enervation. Failure of nerve force.
engorgement. Distension with fluid or
other material; congested.
enucleate. To remove in its entirety.
epidemic. Noting a disease which attacks,
nearly simultaneously, a large
number of people in a community.
epidermis. The epithelial layer of the
skin; the scarf skin or outer skin.
epithelioid. Resembling epithelium.
epithelioma. A cancerous growth originating
from squamous epithelium.
epithelium. The purely cellular, non-vascular
layer covering all cavities and
surfaces exposed to the air, such as the
epidermis, mucous membrane, etc.
eponychium. The skin adherent to the
nail at its root; the nail skin.
eradicated. Removed.
ergot. Spurred rye, rye smut; a drug
made from rye.
erosion. A wearing away.
erysipelas. An acute spreading inflammation
of the skin and subcutaneous
tissues.
erythema. A redness of the skin; rose-rash.
erythematous. Relating to or marked by
redness.
eschar. A slough following a burn or
cauterization of the skin.
escharotic. Caustic, corrosive; an agent
producing an eschar.
Esmarch’s bandage. A rubber bandage
wound tightly about a limb in order
to exsanguinate the member preparatory
to offering a bloodless field for
operation.
essence of geranium. A solution of the
volatile oil of geranium.
essence of thyme. A solution of the
volatile oil of thyme.
ether. An organic oxide, more especially
ethyl ether (C2H5)2O.
ethics. The principles of correct professional
conduct as they relate to the
public, to the practitioner, and to
his fellow-practitioners.
ethyl bromide. A colorless liquid employed
as a local anesthetic.
ethyl chloride. A colorless liquid employed
as a local anesthetic, by spraying.
ethylate of soda. A reddish yellow
powder, employed in aqueous solution
in the treatment of lupus and other
skin diseases.
etiology. The causes of disease.
eucalyptol oil. Oleum eucalypti; an oil
distilled from the leaves of the Eucalyptus
globulus.
evaporate. To change from liquid to
vapor form.
evaporation. A change from liquid to
vapor form.
eversion. A turning outward.
ex. A prefix denoting out of, from, away
from. (Exam. excision—to cut out).
excavator. A spoon-shaped instrument
used to scrape out pathologic tissue.
excision. The operative removal of a
limb, organ or other part.
excrementitious. Relating to any cast-out
waste material.
excrescence. Any outgrowth from the
surface, especially a pathologic growth.
excretion. The process whereby the
waste material is thrown out of the
body.
excretory. Relating to excretion.
exfoliate. To strip off in layers or sheets,
noting especially a form of desquamation.
exostosis. A bony tumor springing from
the surface of a bone.
expansion. Spreading out; an increase in
size.
exsanguinate. To make bloodless.
exsiccant. A dusting or drying powder.
extension. The act of extending a limb;
the position of a limb that is extended.
extr. cannabis indica. A soft solid (Indian
hemp) of blackish-green color.
extravasated. Exuded from, or passed
out of a vessel into the tissues.
exuberant. Copious, plentiful, as exuberant
granulations.
exudate. To exude; a fluid, or formed
elements of the blood, which enters the
tissues or any cavity.
F
F. Abbreviation for Fahrenheit temperature.
fabella. One of two small fibro-cartilages
or sesamoid bones in the tendons of
the gastrocnemius muscle.
fabric. The structure of anything.
fabrics. Materials constructed for manufacturing
purposes.
facet. A small smooth area on a bone
or other firm structure.
Fahrenheit scale. The degree markings
on the F. thermometer in which the
freezing point is 32° and the point of
boiling water is 212°.
faradic. Relating to induced electricity.
fasciculi. Small bands or bundles of
fibres, usually of muscle or nerve tissue.
fascia. A sheet of fibrous tissue enveloping
the body beneath the skin and also
enclosing the muscles.
fatty degeneration. A retrogressive
change associated with the appearance
of fat in the cells and formed within
them. f. infiltration. A deposit of fat
in abnormal quantity between and in
the cells, and not formed within them.
felon. Paronychia, inflammation around
the nail. Whitlow.
felt. Matted wool, unwoven. Used for
podiatry dressings.
femur. The thigh bone.
fermentation. A chemical change induced
in an organic compound by the
action of a ferment.
ferrum. The metal iron; the basic ingredient
of tincture of the subsulphate
of iron.
festination. The peculiar acceleration of
gait noted in paralysis agitans and
some other nervous affections.
fetid. Foul-smelling; having a rank
odor.
fibre. A filamentous element; an
elongated cell or cell process.
fibrillae. Minute fibres.
[Pg 418]
fibrin. An elastic filamentous substance
derived from the blood after coagulation.
fibroblast. A cell produced by the connective
tissue in the formation of
fibrous tissue.
fibula. The external and smaller of the
two bones of the leg.
filament. A fibril, a fine fibre, or thread-like
structure.
fish skin. A preparation used as a covering
to wounds, etc.; a substitute for
oil-silk.
fissure. A furrow, cleft or slit.
fistula. A sinus leading from an abscess
cavity to the surface.
flaccid. Relaxed; flabby; without bone.
flail-like. Resembling an instrument
used for thrashing or beating.
flat foot. Pes planus; a foot in which
the arch is sunken.
flax-seed. Linseed. Used in making
poultices.
flexion. Bending; bending of a joint so
as to approximate the parts they connect.
fluctuation. A wave-like motion felt on
palpating a cavity containing fluid.
fluffy. Feathery.
fluoroscope. An apparatus for rendering
visible the effects of the X-rays.
fluoroscopy. Examination of the inner
parts of the body by means of the
fluoroscope.
flux. Flow of electricity or other substance.
focal infection. An infectious process
which starts at a point remote from
the part where the symptoms manifest
themselves.
follicle. A simple tubular gland.
fomentation. The application of warmth
and moisture in the treatment of disease;
poulticing.
foot. Pes; the lower, pedal, extremity of
the leg.
forceps. An instrument for seizing anything
and for making compression or
traction.
formaldehyde. An antiseptic gas with a
pungent odor. The water solution,
formalin, is used in podiatry.
fracture. A break, especially of a bone.
friction. Rubbing.
Friedreich’s ataxia. Hereditary spinal
ataxia.
frost bite. Inflammation of the skin and
deeper tissues due to exposure to severe
cold. Chimatlon severe.
fulguration. Lightning stroke. Treatment
of tumors by means of the sparks
of the high frequency current.
function. The special action or physiologic
property of a part.
fusiform. Spindle-shaped; tapering at
both ends.
fusion. Liquefaction by heat; melting.
G
G. Abbreviation for gram.
gait. Specific manner of walking; manner
of stepping.
gallic acid. A yellowish-white substance
used as an astringent.
gallstone. A concretion, chiefly of
cholesterin, formed in the gall bladder
or bile-duct.
galvanic. Constant current electricity
produced by chemical action.
gangrene. Death of the soft tissues, en
masse.
gas gangrene. Gangrene caused by the
bacillus of Welch; gaseous gangrene.
gastric. Relating to the stomach.
gastrocnemius. One of the calf muscles.
gastro-intestinal. Referring to the
stomach and the intestines.
gauze. A thin loose-meshed cloth employed
for dressings, bandages, etc.
genitalia. The genitals.
genu. The knee.
germ. A rudiment. A microbe.
germicide. An agent which destroys
germs or microorganisms.
ginglymus. A hinge joint.
glands. Secreting organs or excreting
organs, such as the sebaceous or sweat
glands.
gliomatous. Relating to a tumor formed
of the nerves of the brain and spinal
cord.
glucose. Grape sugar.
gluteal. Relating to the buttocks.
glycerin. Glycerinum; a sweet, oily fluid
obtained by the saponification of fats
and fixed oils.
golfer’s foot. A painful condition of the
dorsum of the foot.
gomenol. A germicidal, ethereal oil obtained
from a plant.
gonococcus. The specific organism causing
gonorrhea.
gonorrheal heel. A focal infection of the
heel caused by an original urethral
infection with the gonococcus.
Goulard’s extract. A solution of lead
subacetate.
gout. A disease of metabolism characterized
by recurrent attacks of arthritis,
particularly in the metatarsophalangeal
joint of the great toe, though any joint
may be attacked, by deposits of sodium
biuret in and around the affected
joints, and by inflammation of fibrous
structures elsewhere (Stedman).
grain. A unit of weight, ¹⁄₆₀ dram.
gram, gramme. A unit of weight equal
to 15.4 grains.
granulation. The formation of minute,
rounded, fleshy projections on the surface
of a wound in the process of healing.
gross. Large, coarse, macroscopic in contradistinction
to microscopic.
growth. The increase in size of a living
being or any of its parts.
gt. (plural gtt.). Abbreviation of drop
or drops.
gumma. An infectious granuloma, the
characteristic lesion of late or tertiary
syphilis.
guncotton. Pyroxylin.
gutta percha. The dried milky juice of
a Malay tree.
gypsum. Calcium sulphate. Dried g.
Calcii sulphas exsiccatus, plaster of
Paris.
H
hair follicle. A cylindrical pit dipping
down through the corium and containing
the root of the hair.
hallux. The great toe; the first digit of
the foot.
hallux dolorosus. Painful toe.
hallux flexus. Hammer toe.
[Pg 419]
hallux rigidus. Stiff toe.
hallux valgus. A deformity in which the
great toe is bent outwards.
hallux varus. Deviation of the great toe
to the inner side of the foot away from
its neighbor.
hammer toe. A condition of permanent
flexion of the mid-phalangeal joint of
one or more of the toes; hallux flexus.
heloma (plural, helomata). Corn; clavus;
an overgrowth of the epidermis, with
a central core or nucleus.
hematidrosis. The excretion of sweat
stained with blood.
hematocele. A blood cyst; hematocist.
hemi. A prefix signifying one-half.
(Exam. hemiplegia—half paralysis).
hemichorea. Chorea involving the
muscles of one side, only.
hemiplegia. Paralysis of one side of the
body.
hemoglobin. The coloring matter of the
blood.
hemorrhage. Bleeding; a flow of blood.
hemorrhoids. Piles; a varicose condition
of the external hemorrhoidal veins
causing painful swellings at the anus.
hemostatic. Arresting hemorrhage;
styptic.
hereditary. Transmitted from parent to
offspring.
hermetically. In an air-tight manner;
noting a vessel closed or sealed in such
a way that air can neither enter it nor
issue from it.
hidrosis. Sweating, especially heavy
sweating; hyperidrosis; sudoresis.
high frequency. An electric current with
a high voltage, and a rapid change in
direction from one pole to the other.
hirsute. Hairy; pertaining to hair.
histology. The branch of anatomy which
deals with the cells and the minute
structure of the tissues; microscopic
anatomy.
homogeneous. Of uniform structure or
composition throughout.
homo heloticus. The person having helomata.
hone. A flat stone or a piece of leather
used to sharpen knives.
hookworm. A worm of the genus ankylostoma
or uncinaria.
hornification. Conversion into horn;
cornification.
Huntington’s chorea. Hereditary chorea.
hydrocephalus. A condition, usually congenital,
marked by an extensive effusion
of serum into the cerebral ventricles.
hydrochloric acid. See acidum.
hydrogen. An odorless, colorless, tasteless
gaseous element, the lightest substance
known.
hydro-therapeutics. The treatment of
disease by the use of water, in a
scientific way; hydrotherapy.
hygiene. The science of health.
hyper. A prefix denoting excessive.
(Exam. hyperidrosis—excessive sweating).
hyperemia. The presence of an increased
amount of blood in a part; congestion.
hyperesthesia. Excessive sensibility to
touch, to pain or to other sensory
stimuli.
hyperidrosis. Hyperhidrosis; excessive
sweating.
hyperporosis. Excessive formation of
callus after fracture of a bone.
hypertonicity. A greater degree of tension.
hypertrophy. Overgrowth; general increase
in a part, not due to tumor
formation.
hypodermatic. Hypodermic; under the
skin.
hysteria. A chronic neurosis or psycho-neurosis,
characterized by disorders of
the will, and partial cessation or exaltation
of the individual functions of
the brain.
I
iasis. See osis.
ichnogram. An imprint of the soles of
the feet, showing a series of steps.
ichorous. Relating to a thin watery discharge
from an ulcer.
ichthyol. Ichthyolum; a brownish oil,
used in medicine and in podiatry because
of the sulphur (from fossil fish)
which it contains.
ichthyosis. A congenital rough skin due
to hypertrophy of the horny layer of
the epidermis with diminished sweat
and sebaceous secretion; fish-skin disease.
idiopathic. Noting a primary disease,
one originating without apparent extrinsic
cause.
idiosyncrasy. An individual mental or
physical characteristic or peculiarity.
immersion. The placing of a body under
water or other liquid.
immobility. Incapability of moving; the
fixed position of a part.
immune. Free from the possibility of
infection.
impacted. Pressed closely together so as
to be immovable as in impacted fracture.
impermeable. Impervious.
impervious. Impassable, impenetrable,
to fluids.
impingement. Used in podiatry to denote
the pinching of tissues between
two adjacent or opposite bones or
muscles.
incipient. Just beginning.
incision. A cut; a division of the soft
parts made with a knife.
incompatible. Not capable of being
mixed without undergoing radical
changes.
incoordination. Lack of harmonious
action, as of muscles.
indentation. The act of notching or
pitting.
indolent. Inactive; sluggish; painless, or
nearly so.
induction. Production or causation.
induction coil. An apparatus for the induction
of a secondary electric current.
induration. Hardening.
inert. Slow in action, sluggish.
[Pg 420]
infant. A child during the first two
years of life; a babe.
infection. Invasion by living pathogenic
bacteria of a part of the body where
conditions are favorable to their growth
and whence they act injuriously upon
the tissues.
infiltration. The act of passing into or
interpenetrating a cell or tissue; said
of gases and fluids.
inflammation. The reaction of the tissues
against injury or bacterial invasion,
characterized by heat, redness,
pain, swelling and impaired function.
inflation. Distension of a part by a gas
or a liquid.
inflection. An inward bending.
influenza. The grip; an acute infectious
disease caused by Pfeiffer’s bacillus.
in-footed. Pigeon-toed; standing or
walking with toes turned in.
ingrown toe nail. Onychocryptosis.
inhibition. The diminution or arrest of
function in an organ.
injection. The introduction of a substance
in fluid form into the tissues or
cavities of the body.
innervation. Distribution of the nerves
in a part.
innocuous. Harmless.
inoculate. To introduce the virus of a
disease into the tissues or blood vessels.
in situ. In position.
instep. The arch, or highest part of the
dorsum of the foot.
instrument. A tool or implement.
integument. The enveloping membrane
of the body; the skin.
inter. A prefix denoting between or
among. (Exam. interdigital—between
the fingers or toes).
intercellular. Between or among cells.
interosseous. Between bones.
interphalangeal. Between the phalanges.
intertrigo. Dermatitis occurring between
two folds of the skin.
intestinal. Relating to the intestine or
belly.
intima. The inner coat of a blood vessel.
intoe. Hallux valgus.
intoxication. Acute alcoholism; drunkenness.
inunction. The administration of a drug
in ointment form by rubbing it into the
skin.
inversion. Bending inward.
involuntary. Independent of the will;
not volitional.
involution. The return of an enlarged
organ to normal size.
iodine. A non-metallic element occurring
in lustrous steel-gray crystals, soluble
in water and alcohol and used externally
as a counter-irritant and antiseptic.
iodoform. Iodoformum; a yellow crystalline
powder having a strong, disagreeable
odor; employed as an antiseptic
dusting powder to wounds and syphilitic
sores.
ions. A group of atoms carrying an
electric charge.
irritation. Extreme reaction of the tissues
to an insult or injury; incipient
inflammation.
ischemia. Local anemia due to mechanical
obstruction of the blood supply.
ischidrosis. Suppression of the perspiration.
ist. An affix denoting an agent. (Exam.
podiatrist).
itis. A suffix grown to mean inflammation
of. (Exam. osteitis—inflammation
of bone).
J
jaborandi. See pilocarpin.
joint-capsule. Capsular ligament of a
joint.
joint-muscle. A muscle which causes
motion at a joint.
K
kakidrosis. Bromidrosis.
keloids. Lesions of a skin disease
marked by patches of a whitish color
surrounded by a purplish border.
keratin. A scleroprotein present in hair,
in nails, in horn, etc.
keratogenesis. The production of horny
cells or tissue.
keratohyalin. Eleidin.
keratoma. A horny tumor.
keratosis. Circumscribed overgrowth of
horny tissue.
kilogram. One thousand grams weight.
kinesiatrics. The therapeutic employment
of movements; movement-cure.
kinetic. Relation to motion or muscular
movements.
Kneipp method. The treatment of disease
by water; hydrotherapy.
knock-knee. Genu valgum.
kolionychia. Spoon-nail; a malformation
of the nails in which the outer surface
is concave.
Korsakoff’s disease. Polyneuritic psychosis.
kyllosis. Club-foot.
L
labyrinthine. Perplexing, intricate, involved.
laceration. A tear or torn wound.
laity. Non-professional persons.
lamb’s wool. A material used in shielding.
lamelia. In osteology, a thin sheet or
scale of bone.
lancet. A surgical knife with a short,
sharp pointed, two-edged blade.
lancinating. Noting a sharp cutting or
tearing pain.
Landry’s disease. Acute ascending paralysis.
Langerhans’ cells. Star-shaped cells in
the deeper part of the stratum germinativum
of the epidermis.
lanolin. An oily substance extracted
from the wool of sheep; adeps lanae.
larynx. The organ of voice production.
larvae. The worm-like forms of insects
on issuing from the egg.
Lassar’s paste. An ointment containing
salicylic acid, talcum, zinc oxide and
vaseline; it is used for eczema.
lateral. On the side, as distinguished
from medial.
lathyrism. Lupinosis; poisoning by flour
adulterated with chick-pea.
lead. A metallic element.
lead and opium wash. A solution of lead
acetate and tr. opium in water; used
to allay pain.
[Pg 421]
lead neuritis. Inflammation of the
nerves, due to poisoning by lead.
lead palsy. Paralysis of the extensor
muscles of the wrist, due to poisoning
by lead; wrist drop.
leprosy. A chronic disease believed to be
due to the presence of the bacillus
leprae, or Hansen’s bacillus. It occurs
in two forms; tubercular, affecting the
skin; anesthetic, affecting the nerves.
lesion. A more or less circumscribed
pathologic change in the tissues.
lethal. Fatal, mortal, causing death.
leucocyte. A white blood cell.
leuconychia. The occurrence of white
spots or patches under the nails.
leucorrhea. A discharge from the vagina
of a white, viscid fluid containing
mucous and pus cells.
leverage. The mechanical power gained
by using a lever.
lichen planus. A skin disease occurring
on the soles of the feet.
ligaments. Bands of fibrous tissue connecting
two or more bones.
ligation. The application of a ligature.
ligature. A thread, wire or piece of catgut,
tied tightly around a blood vessel,
a pedicle or a tumor in order to constrict
it.
limewater. A solution of calcium
hydroxide.
line of demarcation. A zone of inflammatory
reaction separating a healthy
from a gangrenous area.
liniment. A solution of a medicament in
mucilage, starch or other substance,
in combination with the white of egg.
linseed. Flaxseed; used in making
poultices.
lint. A soft, absorbent material used in
surgical dressings.
lipoma. A tumor of fatty tissue.
liquor ferri subsulphate. Monsel’s solution.
liquor potassae. A 5% solution of potassium
hydroxide.
lisle. A material woven from cotton and
silk.
liter. A measure of capacity equal to a
trifle over a quart; 1000 cubic centimeter.
lithemia. The presence of uric acid, in
excess, in the blood.
Lobstein’s disease. Constitutional fragility
of the bones, fractures being produced
by slight injuries.
locomotion. Movement from one place to
another.
longitudinal. Running lengthwise; in the
direction of the long axis of the body.
lordosis. Curvature of the spine with the
convexity looking anteriorally.
lues. A plague or pestilence; specifically,
syphilis.
luetin skin reaction. The reaction of the
skin in a specific test for syphilis.
lumen. The space in the interior of a
tubular structure, such as an artery.
lunula. The opaque whitish semi-lunar
area near the root of the nail.
lycopodium. Vegetable sulphur. A yellow
tasteless powder used as a dusting
powder.
lymphangitis. Inflammation of the
lymphatic vessels.
lymph. A clear light, straw-colored
fluid, which circulates in the lymph
spaces or lymphatic vessels of the
body.
lymphatics. A series of vessels acting as
auxiliaries to the venous system, and
containing the lymph.
lysis. The gradual subsidence of the
symptoms of an acute disease.
lysol. Trade name of a mixture of soaps
and phenols, used as a disinfectant
dressing and hand-wash.
M
M. Abbreviation for (1) mille, a thousand;
(2) in prescriptions, for misce,
mix; (3) minim, a drop; (4) meter,
French measure.
macerate. To soften by soaking or steeping.
maceration. Softening by the action of
a liquid.
mackintosh. A waterproof cloth or tissue
used for surgical dressings.
macrodactylism. Abnormal size of a
finger or of a toe.
macroscopic. Observable to the naked
eye, in contradistinction to microscopic.
maculae. Small spots or patches on the
skin, not elevated above the general
surface.
Madura foot. Mycetoma; a disease occurring
in the East Indies, characterized
by large subcutaneous tubercles
and nodules which break down and
discharge pus.
mal. A prefix meaning bad. (Exam.
malposition—bad position).
malalignment. Not in normal position.
malaria. A disease caused by the presence
of a protozoan parasite (plasmodium)
of the red blood cells.
malignant. Resistant to treatment; occurring
in severe form; tending to grow
worse, and (in the case of a tumor) to
recur after removal. Not benign.
malingerer. One who feigns disease.
malpractice. Mistreatment of a patient’s
ills through carelessness, ignorance or
criminal intent.
malleolus. One of the two rounded
prominences on either side of the
ankle joint.
manicure. To care for the hands and
finger-nails, cosmetically.
marasmus. Extreme emaciation occurring
in children.
massage. A scientific method of manipulation
of the body by rubbing, pinching,
kneading, tapping, etc.
masseur. A male who massages.
masseuse. A female who massages.
massotherapy. The therapeutic uses of
massage.
materia medica. The branch of medicine
which treats of the origin, preparation,
doses and modes of administration of
drugs.
matrix. The formative portion of a nail.
maximum. The highest limit, the greatest
amount possible in contradistinction
to minimum, the least limit.
M.Cp. Abbreviation of Master of Chiropody.
mechanotherapy. Treatment of disease
by means of apparatus or mechanical
appliances.
medicament. A medicine; a remedy.
medicine. The art of preventing or
curing disease. A drug.
medullated. Having a soft marrow-like
structure, especially in the centre of a
part.
[Pg 422]
megalodactylism. Abnormal size of a
finger or toe.
membrana propria. The basement layer
of the epidermis, and separating it
from the true skin.
membrane. A thin sheet or layer of
tissue serving as a covering or envelope
of a part.
meningeal. Relating to the meninges or
membranous envelope of the brain and
spinal cord.
menthol. A camphor obtained from oil
of peppermint.
mercuric chloride. Corrosive sublimate.
mercury. An element (quicksilver), compounds
of which are used in podiatry.
metabolism. Tissue change, the sum of
the chemical changes whereby the
function of nutrition is regulated.
metacarpal. Referring to the long bones
of the hand between the carpus and
the phalanges.
metacarpophalangeal. Relating to the
metacarpus and the phalanges.
metamorphosis. A change in form,
structure, or function.
metastasis. The shifting of a disease
from one part of the body to another.
metatarsal. Relating to the bones in
front of the tarsus, and called the
metatarsal bones; they are five in number.
metatarsalgia. Pain in the metatarsal
region.
metatarsophalangeal. Between the
metatarsal and phalanx.
meter. A measure of length the equivalent
of 39.4 inches.
methyl. The radical of wood alcohol.
methylene blue. A compound of methylene,
used as a caustic in treating
verruca.
microbe. A minute one-celled creation,
animal or vegetable; a microorganism.
microorganism. A microscopic plant or
animal, a bacterium or protozoan.
microscopic. Of minute size, visible only
through a microscope; the reverse of
macroscopic.
miliaria. An eruption of minute vesicles
due to retention of fluid at the mouth
of the sweat glands.
miliary. Representing a millet seed in
size.
milligram. One-thousandth of a gram—1-65
grain.
milliliter. One-thousandth of a liter—about
15 minims.
millimeter. One-thousandth of a meter
1-25 inch.
milliampere. An electric unit of current-strength,
the thousandth of an
ampere.
milliamperemeter. An instrument used
for measuring milliamperes of electric
current.
millet seed. A small seed of the millet
plant; a grain.
minim. One-sixtieth of a fluid drachm,
equivalent to about one drop of water.
misce. Mix; the character which directs
the druggist to mix the ingredients of
a prescription.
mistura. A pharmacal mixture.
mobility. The quality of being movable.
molecular. Relating to the smallest
possible unit of existence of any substance.
moleskin. An adhesive substance used
in shielding.
mollifying. Calming; softening.
mono. A prefix denoting the participation
of a single element or part. (Syn.
uni). (Exam. monodactyl—a single
finger or toe).
Monsel’s solution. Liquor ferri subsulphatis.
morbid. Diseased; pathologic.
morphine. The chief active principle of
opium.
morphologic. Relating to the structure
of the tissues of the body.
morphology. The science which treats
of the external configuration or the
structure of animals and plants.
Morton’s disease. Morton’s neuralgia.
Morton’s neuralgia. A pain in the metatarsophalangeal
joint of the fourth
toe; also called Morton’s toe.
motile. Having the power of spontaneous
movement.
mucous. Relating to mucous or to the
mucous membrane (m. membrane), a
membrane which secretes mucus, and
lines the cavities connected with the
outer air.
multiple. Occurring in several parts at
the same time.
mummification. Dry gangrene, shriveling.
muscle. One of the contractile organs
of the body, by which the movements
of the various organs and parts are
effected.
muscle-corpuscle. The nucleus of a
muscle-fiber.
muscle-fiber. One of the cylindrical
fibers, an inch or more in length and
about 1-500 inch in diameter, composing
voluntary muscle tissue.
muscle-plasma. The fluid portion of
muscle tissue.
musculature. The arrangement of the
muscles in a part or in the body as
a whole.
musculus. Muscle. Important muscles of
the foot.
m. Abductor hallucis.
m. Abductor obliquus hallucis.
m. Adductor transversis hallucis.
m. Extensor digitorum brevis.
m. Extensor digitorum longus.
m. Extensor hallucis longus.
m. Flexor accessorius.
m. Flexor brevis hallucis.
m. Flexor brevis minimi digiti.
m. Flexor digitorum brevis.
m. Flexor digitorum longus.
m. Flexor hallucis longus.
m. Gastrocnemius.
m. Interosseous dorsalis.
m. Interosseous plantaris.
m. Lumbricalis (4).
m. Peroneus brevis.
m. Peroneus longus.
m. Peroneus tertius.
m. Plantaris.
m. Soleus.
m. Tibialis anticus.
m. Tibialis posticus.
mustard. The dried, ripe seeds of the
white or black mustard plant.
mycetoma. Madura foot; a disease of
the foot occurring in the East Indies.
myelitis. Inflammation of the spinal
cord, or of the bone marrow (osteomyelitis).
[Pg 423]
myeloma. A tumor due to hyperplasia
of the bone marrow.
myocellulitis. Inflammation of muscle
and cellular tissue.
myoclonia. Any disorder characterized
by muscular twitching.
myocyte. A muscle cell.
myodynia. Muscle pain; myalgia.
myology. The branch of science which
deals with muscles and their accessory
parts.
myositis. Muscle inflammation.
myotonia. Any disorder characterized
by tonic spasm or temporary rigidity
of a muscle.
N
naevus. A congenital mark or discolored
patch of the skin; a mole.
nafalan. A proprietary remedy containing
Caucasian naphtha in a soap base.
nail. Unguis; the horny plate covering
the dorsal surface of the distal half
of the terminal phalanx of each finger
and toe.
nail bed. A portion of the distal phalanx
covered by the nail.
nail fold. A groove in the skin in which
lie the margins and the proximal edge
of the nail.
nail groove. A groove in the distal
phalanx in which the nail lies.
nail plate. The horny substance which
makes up the nail proper.
nanomelous. Having very small extremities.
narcosis. Stupor or general anesthesia
produced by some narcotic drug.
narcotic. Relating to or causing narcosis;
an agent which produces narcosis.
navicular. One of the bones of the
tarsus of the foot.
nebulizer. An atomizer; a vaporizer; an
apparatus for throwing a liquid in a
fine spray.
necrosis. Local death; the death of
more or less extensive groups of cells.
neo. A prefix noting new or recent.
(Exam. neoplasm—new growth).
neoplasm. A new growth; tumor.
nephritis. Inflammation of the kidney.
nerve. A collection of fibres in the form
of a whitish cord through which
stimuli are transmitted from the central
nervous system to the periphery,
or the reverse.
nervousness. A condition of unrest and
of irritability to the nervous system.
nervus. Nerve; a whitish cord made up
of nerve fibres.
nerves of the foot:
n. musculocutaneus; musculo-cutaneous
nerve (dorsal surface and in
front of leg).
n. plantaris externus; external plantar
nerve (plantar surface).
n. plantaris internus; internal plantar
nerve (plantar surface).
n. saphenus externus; external saphenous
nerve (dorsal surface and in
front of leg).
n. tibialis anticus; anterior tibial
nerve (dorsal surface and in front
of leg).
n. tibialis posticus; posterior tibial
nerve (back of leg).
neuralgia. Nerve-pain; pain of a severe,
throbbing or stabbing character in the
course of a nerve.
neurasthenics. Those suffering from
neurasthenia, or nervous exhaustion.
neuritis. Inflammation of the nerves.
neuro-fibrous. Containing nerve fibres;
said of an heloma.
neuroma (plural neuromata). A tumor
made up of nerve tissue.
N. F. Abbreviation for National Formulary,
a book issued by the American
Pharmaceutical Association containing
formulas of preparations not
official in the Pharmacopeia.
nitric acid. HNO3. Employed as a
caustic for verrucæ.
nodule. A small node or circumscribed
swelling.
Noguchi test. A test for tabes dorsalis
depending upon an albumin reaction of
the spinal fluid; a test for syphilis—a
modification of the Wassermann test.
non. A latin prefix denoting a negation
or absence of the quality or fact expressed
in the word to which it is prefixed.
non-medullated. Without a medulla or
medullary substance.
non-striated. Without stripes or bands.
normal. Typical; usual; healthy.
nostrum. A quack remedy.
novocaine. A synthetic local anesthetic.
noxious. Injurious; harmful.
nucleus. The centre of functional activity
of a cell; the central portion of an
heloma.
nutrient. Carrying nourishment.
O
obesity. An abnormal increase of fat in
the subcutaneous connective tissues;
corpulence; fatness; general adiposis.
obliterated. Destroyed by the effects of
time; effaced.
occlusive. Noting a dressing which excludes
the air.
official. Authoritative; noting a drug or
chemical found in the Pharmacopeia.
ohm. The unit of electric resistance.
oid. A suffix denoting resemblance to
the thing indicated by the other part
of the word. (Exam: osteoid—resembling
bone).
oil stone. A hone upon which oil is
used.
oiled silk. A waterproof substance used
in surgical dressings.
ointment. A medicated fatty mixture
with the consistency of butter, and
employed externally.
oligodactylia. A deformity marked by
fewer than five fingers or toes on each
hand or foot.
ology. A suffix denoting a special
branch of study. (Exam: podology—the
branch of medical science which
has to do with the feet in all their
relations).
oma. A suffix noting a tumor or neoplasm.
(Exam: neuroma—a nerve
tumor).
onychatrophia. Atrophy of the nails.
onychauxis. Hypertrophy of the nails.
onychia (onychitis). Inflammation of
the nail bed or matrix.
onychocryptosis. Ingrown toe nail.
[Pg 424]
onychogryphosis. Hypertrophy of the
nails with curvature or deformity.
onychoid. Resembling a nail in structure
or in form.
onycholysis. Loosening or shedding of
the nails.
onychoma. A tumor arising from the
nail bed.
onychomalacia. Absence of rigidity of
the nails; hapalonychia.
onychomycosis. Any parasitic disease of
the nails, such as tinea or favus.
onychotrophy. Nutrition of the nails.
onychopathy. Any disease of the nails;
onychosis.
onychophag. A victim of the nail-biting
habit.
onychophosis. Calloused nail groove.
onycophyma. Swelling or hypertrophy
of the nails.
onychoptosis. Falling off of the nails.
onychorrhexis. Brittle nails.
onyx. The greek word for finger-nail or
toe nail.
oozing. Flowing slowly; gradually
escaping.
operation. Any surgical procedure.
opisthotonos. A tetanic spasm in which
the spine and extremities are bent
with convexity forward, the body
resting on the head and heels.
organ. Any part of the body exercising
a specific function.
origin. The less movable of the points
of attachment of a muscle.
orthoform. A white crystalline powder
used as a local anesthetic and antiseptic.
orthopedics. A branch of surgery which
has to do with the treatment of
chronic diseases of the joints and
spine, and the correction of deformities.
orthopedist. One who practices orthopedics;
orthopaedist.
os. A bone.
os calcis. The calcaneus; the heel bone.
oscillate. To vibrate.
osis. A suffix noting an Increase. (Exam.
tuberculosis—an increase in tubercles).
osmidrosis. (See bromidrosis).
osmosis. The passage of certain fluids
through an animal membrane or other
porous substance.
ossification. The formation of bone.
ossiferous. Containing bone.
ostealgia. Bone pain.
osteanabrosis. Bone atrophy.
osteanaphysis. Bone reproduction.
osteotomy. Surgical removal of bone.
osteitis. Bone inflammation.
osteoarthritis. Inflammation of the
articular extremity of a bone involving
the contiguous joint structure.
osteochondritis. Inflammation of a bone
and its cartilage.
osteogenesis. The formation of bone.
osteoma. A bone tumor.
osteomyelitis. Inflammation of the bone
marrow.
osteopsathyrosis. Bone fragility; fragilitas
ossium.
osteotomy. Bone cutting, usually by
means of a saw or a chisel.
ounce (abr. oz.). A weight containing
48.0 grains, apothecaries’ weight.
oxidation. A combination with oxygen.
oxygen. A gaseous element, symbol, O.
ozone. A condensed form of oxygen,
containing three atoms in a molecule.
P
pachyacria. A bulbous thickening of the
extremities of the fingers or toes.
pachydactylous. Abnormal thickness of
fingers or of toes.
pachydermia. Elephantiasis.
pachypodous. Having large thick feet.
pacinian. Named after Filippo Pacini,
an Italian anatomist, and noting
especially the Pacinian body or corpuscle
found in the skin, and which is
a touch organ.
palliative. Mitigating; reducing the
severity of; noting a method of treatment
of a disease or of its symptoms.
pallor. Paleness.
palpate. Examining by feeling and
pressing with the palms of the hands
and with the fingers.
pan. A prefix implying all, entire.
(Exam: panhidrosis—perspiration of
the entire body).
panaris. Paronychia.
papilla. A conical elevation found beneath
the epidermis, and containing
capillary loops and nerve endings.
papillary layer. The outer connective
tissue layer of the true skin, and made
up of numbers of papillæ.
papilloma. A circumscribed overgrowth
or hypertrophy of the papillæ of a
cutaneous or mucous surface.
papoid. A digestive enzyme from the
fruit of the pawpaw, resembling
papain.
papule. A small circumscribed elevation
of the skin containing no fluid; a
pimple.
papulosquamous. Relating to both
papules and scales.
para. A prefix denoting (1) a departure
from normal; (2) an involvement of
like parts. (Exam: (1) parachroma—abnormal
coloration of the skin or
other parts; (2) paraplegia—paralysis
of both lower extremities).
paraffin. A white solid hydrocarbon,
having the consistency of wax.
paralysis. Palsy; loss of power of voluntary
movement in a muscle through
injury or disease of its nerve supply;
loss of any function.
paralysis agitans. Parkinson’s disease;
shaking palsy; a disorder marked by
muscular weakness, stiffness and
tremor.
paralysis, pseudo-bulbar. Paralysis of the
lips and tongue due to a cerebral
lesion.
paralyzant. Causing paralysis; any
agent causing paralysis.
paramyoclonus multiplex. An affection
characterized by sharp, frequently repeated
clonic, muscular contractions.
paraplegia. Paralysis of both lower extremities
and also of more or less of
the trunk.
parasite. An animal or vegetable organism
which lives on or in another
from which it draws its nourishment.
parasiticide. Destructive to parasites.
paresis. Cortical paralysis.
paresthesia. An abnormal sensation,
such as burning, pricking, numbness,
etc.
paretic. Relating to, or suffering from
paresis.
[Pg 425]
paronychia. Inflammation of the tissues
around the nail, felon; panaris; whitlow.
parresine. A paraffin preparation used
for burns.
passive. Not active.
pathogenic. Causing disease.
pathognomonic. Characteristic of a disease,
noting certain typical symptoms.
pathology. The science that deals with
the change in function or in structure
of an organ or tissue in a diseased
state.
pedal. Relating to the feet.
pedarthrocace. Joint disease in children.
pediculis corporis. The body louse.
pedicure. One who treats the feet cosmetically.
pedunculated. Stalked, having a
peduncle; not sessile.
pellagra. An affection characterized by
gastro-intestinal disturbances and mental
disorders.
pelma. The sole of the foot.
pelmatogram. An imprint of the sole of
the foot made by resting the inked
foot on a sheet of paper, or by pressing
the greased foot on a plaster of Paris
paste.
pelvis. Any basin-like or cup-shaped
cavity.
pemphigus. An infection of the skin
characterized by the production of
bullae.
per. A prefix denoting through. (Exam:
perennial—lasting through several
years).
perforating. Piercing with one or more
holes.
peri. A prefix denoting around or about.
(Exam: periosteum—around the bone).
periarthritis. Inflammation of the parts
surrounding a joint.
periodic. Recurring at regular intervals.
perionychia. (See paronychia.)
periosteum. The thick fibrous membrane
covering the entire surface of a bone
except its articular cartilage.
periphery. The outer part or surface;
away from the centre.
periphlebitis. Inflammation of the outer
coat of a vein or of the tissues surrounding
a vein.
pernio. Chilblains; chimatlon mild.
perodactylus. A monster with defective
fingers and toes.
peronei. Relating to the peroneus
muscles.
peropus. A monster with defective feet.
peroxide of hydrogen. Oxygenated water,
H2O2, used as an antiseptic and deodorant.
perspiration. The excretion of fluid by
the sweat glands. The fluid excreted
by the sweat glands; transpiration.
perverted. Turned from what is normal
or proper.
pes, gen. pedis, pl. pedes. The foot.
pes cavus. Hollow-foot.
pes planus. Flat foot.
petrogen. The proprietary name of refined
mineral oil, used as a base for
remedial agents. p. iodine. Iodine
mixed with petrogen.
petrolatum. Vaseline; a yellowish mixture
of the softer members of the
paraffin or methane series of the
hydrocarbons, obtained from petroleum
as an intermediate product in its distillation.
phadena. A sloughing ulcer.
phagocytosis. The process of ingestion
and digestion by the cells; the substances
ingested are other cells,
bacteria, bits of necrosed tissue,
foreign particles, etc.
phalanges. Long bones of the fingers or
toes, fourteen in number, two on each
great toe and three on each of the remaining
toes.
phenol. Carbolic acid.
phenomenon. A symptom; any unusual
fact or occurrence.
phlebitis. Inflammation of a vein.
phlegmon. Acute suppurative inflammation
of the subcutaneous connective
tissue.
phosphoridrosis. Phosphorescent sweating.
physical. Relating to the body as distinguished
from the mind.
physics. The branch of science which
deals with the phenomena of matter.
physiology. The science that treats of
the functions of the organs and tissues
of the human body.
picric acid. A yellowish, crystalline
powder used in burns and eczema.
pigment. Coloring matter; the coloring
matter found in the epidermis.
pilocarpin. An alkaloid obtained from
the leaves of pilocarpus; used externally
to stimulate the growth of hair.
pit. Any natural depression on the surface
of the body.
pityriasis. A dermatosis marked by
branny desquamation; p. rubra pilaris,
an eruption of papules surrounding the
hair follicles.
plantar. Relating to the sole of the foot.
plantar flexion. A term used to indicate
extension of the foot forward at the
ankle joint.
plaster. A solid preparation which can
be spread when heated and which becomes
adhesive at the temperature of
the body.
plaster of Paris. Gypsum, calcium sulphate;
used in podiatry for dressings
and to make casts.
plasticity. The capability of being
formed or moulded.
platinum. A silver white metal.
pledget. A small mass or tuft of wool,
cotton or lint.
plexiform. Resembling a plexus or network.
plexus. A network or interjoining of
structures in the body, especially of
veins, nerves or lymphatics.
pliability. The capability of being pliable
or flexible.
plumbism. Lead poisoning.
podagra. Gout, especially of the great
toe.
podalgia. Pain in the foot.
podarthritis. Inflammation of any of
the tarsal or metatarsal joints.
podiatrist. One who practises podiatry.
podiatry. The scientific care of the foot
in health and in disease.
poisoning. Administering of poison;
state of being poisoned.
policeman’s heel. A painful condition of
the inferior surface of the os calcis.
poliomyelitis. Inflammation of the grey
matter of the spinal cord.
[Pg 426]
poly. A prefix conveying the notion of
multiplicity. (Exam.: polyarthritis—simultaneous
inflammation of several
joints).
polydactylism. More than five digits on
either the hand or the foot.
polyneuritis. Multiple neuritis.
polynuclear. Multinuclear, having more
than one nucleus.
pompholyx. An inflammatory eruption
of the skin of the hands and feet,
accompanied by itching and burning.
popliteal. Relating to the posterior surface
of the knee.
positive pole. Anode; the chemically
active pole of an electric battery, the
one connected with the electronegative
element.
pore. One of the minute openings of the
sweat glands of the skin.
post. A prefix denoting after. (Exam.:
postmortem—after death).
posterior. Behind or after.
post-operative. Following a surgical
operation.
posture. The term applied to the position
of the body in space.
potassium hydroxide. Caustic potash, a
white crystalline mass used in solution
form to treat verruca.
potassium iodide. A white, crystalline
powder used in the internal treatment
of syphilis.
potassium permanganate. A violet substance
used as a deodorant in bromidrosis.
potential cautery. A caustic; an agent
such as potassium hydroxide which
forms an eschar without the agency
of actual fire.
potentiality. A state of tension in an
electric source.
poultice. Cataplasma; a soft mush prepared
by wetting absorbent substances
with fluids and usually applied hot to
the surface.
pre. A prefix to words formed from
Latin roots, denoting anterior or before.
(Exam.: prepatellar—in front of
the patella or knee cap).
precursor. Forerunner.
predisposing. Affecting the body in
such a way as to render it vulnerable
to the action of the exciting cause.
pregnancy. Gestation; the state of a
female after conception until the birth
of the child.
prescription. A written formula for the
preparation and administration of any
remedy or remedies.
process. A projection or outgrowth.
profuse. Exuberant; liberal to excess.
prognosis. The foretelling of the probable
course of a disease.
progression. Advance; the act of walking.
proliferation. Exuberant growth by reproduction
of similar cells.
prophylaxis. The prevention of disease.
propulsion. The tendency to fall forward
that causes festination in paralysis
agitans.
protonuclein. Trade name of a nuclein
preparation derived from lymphoid
tissue.
protoplasm. Living matter, of which
animal and vegetable tissues are
formed.
prototype. The primitive form.
proud flesh. Exuberant granulations; a
fungus growth from a granulating
surface which shows no tendency
toward cicatrization.
proximal. Nearest the trunk or point of
origin; opposed to distal.
pruritus. Itching.
pseudo. A prefix denoting a resemblance,
like. (Exam.: pseudomania—pretended
insanity).
psoriasis. A skin disease characterized
by the formation of white scales over
rounded, red patches. It appears
mostly on the extensor surfaces of the
elbows and knees.
psychosis. A disorder of the mind;
p. polyneuritica, psychosis associated
with polyneuritis characterized by
failure of memory, hallucinations, and
imaginary reminiscences.
pterygium. A forward growth of the
eponychium with adherence to the
surface of the nail.
puncture. To make a hole with a small
pointed object, such as a needle.
purpura. An affection characterized by
hemorrhage into the skin.
purulent. Suppurating, containing or
forming pus.
pus. A fluid product of inflammation,
consisting of exuded serum, leucocytes
and the débris of dead cells.
pustule. A small circumscribed elevation
on the skin, containing pus.
puttees. Leather leggings worn by
soldiers and others who ride horses.
putrefaction. Decomposition; the cleavage
or splitting up of the molecules of
a protein, resulting in the formation
of other substances of less complex
constitution, accompanied by the formation
of ammoniac and sulphur
gases.
pyemia. The presence of pus in the
blood.
pyogenic. Pus-forming; relating to pus
formation.
pyrogallic acid. A substance obtained
from gallic acid; used in podiatry in
the treatment of verruca.
pyrogallol. Pyrogallic acid.
pyroxylin. Gun cotton, an ethereal solution
of which makes collodion.
Q
quinine and urea hydrochloride. A mixture
of quinine, as its name indicates,
used as a local anesthetic.
R
radical. As a radical operation, one
which removes every trace of possibly
diseased tissue, or makes recurrence
impossible.
radiograph. An X-ray machine.
radiogram. An X-ray picture.
radiography. The science of obtaining
X-ray pictures.
[Pg 427]
radioscopy. Fluoroscopy.
radix. The hard, usually central portion
of a corn, root. r. unguis. The root
of the nail.
rancid. Characterizing an oil or other
fat which is decomposing.
rational. Reasonable; not delirious or
comatose.
rays. Lines of light, heat or other forms
of radioactivity. alpha rays. Rays
charged with positive electricity. beta
rays. Rays charged with negative electricity.
gamma rays. Waves of motion
not charged with electricity.
Raynaud’s disease. Symmetrical gangrene
of the extremities.
receptacle. A storage place.
R. The abbreviation of the latin word
recipe—take, used as the superscription
of a prescription.
recumbent. Lying down.
recurrent. Returning; applied to symptoms.
redintol. A paraffin preparation used
for burns.
reduce. To replace, as a fracture or a
dislocation.
redundant. Exuberant, more than normal.
reenforcement. Augmented enforcement,
as of a bandage or a dressing.
reflex. A reaction; an involuntary movement
or exercise of function in a part.
ankle r., ankle-jerk; a sudden contraction
of the calf muscles, extending
the foot when the tendo Achillis is
tapped, the subject kneeling on a
chair with the foot hanging loosely.
Babinski’s r.; extension of the toes
follows tickling of the sole; usually
a sign of organic disease of the
pyramidal tracts.
patellar r., a sudden contraction of the
anterior muscles of the thigh from a
tap on the patellar tendon, which
brings up the foot, the subject being
seated on the edge of a chair with
legs loosely crossed; knee-jerk.
plantar r.; a flexion of the toes following
scratching or tickling the sole of
the foot.
tarsophalangeal, r.; flexion of the 2nd
and 3rd (sometimes 2nd to 5th) toes
when the dorsum of the foot is
lightly tapped, indicating an organic
lesion of the motor nerve-centres.
tendo Achillis r.; a contraction of the
calf muscles when the tendo calcaneus
is sharply struck.
toe r.; strong passive flexion of the
great toe excites contraction of the
flexor muscles in the leg; sudden
passive extension causes rhythmical
contraction of the great toe—toe-clonus.
regeneration. Reproduction or repair of
lost or injured parts.
relapse. Return of a disease after it has
once spent its force.
relax. To loosen; to slacken.
remedy. An agent applied to cure a
disease or to alleviate its symptoms.
renal. Relating to the kidneys.
repair. Restoration after injury.
resect. To cut off, especially to cut off
the articular ends of a bone or bones
forming a joint.
resin. The residue after the distillation
of turpentine.
resolution. The arrest of an inflammatory
process without suppuration; the
absorption or breaking down and removal
of the products of inflammation.
resonator. An apparatus for producing
sounds.
resorcin. A phenol derivative used for
ulcers.
respiration. A function common to all
living plants or animals, consisting in
man in the taking in of oxygen and
the throwing off of the products of
oxidation.
resorption. Removal of an exudate, a
blood clot, pus, etc., by absorption.
rete Malpighii. Stratum germinativum,
the lowest layers of cells of the epidermis;
the reproducing cells of the epidermis.
reticular layer. The inner layer of the
corium, composed of connective tissue
bundles.
retrogressive. Degenerative; a reversal
of metabolic changes.
retropulsion. An involuntary backward
running or walking occurring in certain
nervous affections; a pushing back
of any part.
reversed. Turned backward or in an
opposite direction.
rheostat. A resistance coil; an instrument
used to regulate the degree of
resistance in an electric current.
rickets. Rachitis, a disease occurring in
infants and young children; it is characterized
by softening of the bones,
etc.
ridge. A linear bone elevation.
rigid. Stiff; inflexible.
rigor. Rigidity.
rigor mortis.; stiffening of the body from
one to seven hours after death.
Roentgen rays. X-rays.
roentgenography. Radiography.
roentgenoscopy. Fluoroscopy.
roentgenotherapy. The treatment of disease
by the X-rays.
root. In anatomy, the base, foundation
or beginning of any part; radix.
radix unguis; the root of the nail.
rotary file. An instrument used for
grinding nails.
rubefacient. A mild counter-irritant
which reddens the skin.
rubor. Redness; one of the classical
symptoms of inflammation.
ruby lamp. A lamp colored red, and
used in the dark room for developing
purposes. It does not affect the sensitized
plates.
runaround. A superficial paronychia.
rupture. A tear or solution of continuity.
S
S. Abbreviation of Latin, signa, remark,
the usual introduction to the directions
in a prescription.
sac. A pouch, a bursa; the capsule of a
tumor, the envelop of a cyst.
sacro-iliac disease. A disease occurring
in the region of the sacrum and ilium.
salicylic acid. An acid derived from the
oil of wintergreen. Largely used in
podiatry to remove helomata and
verrucæ.
saline solution. A solution of sodium
chloride and water in the proportion
in which it exists in the blood.
salol. Phenyl salicylate.
[Pg 428]
saltatory. Relating to or marked by
dancing or leaping.
salvarsan. Trade name of Ehrlich’s 606,
employed in the treatment of syphilis.
salve. An ointment, ceratum, unguentum.
sandal. An old form of footgear.
sanguineous. Relating to the blood.
sapo. Soap.
saponaceous. Soapy; resembling soap.
sapremia. Septicemia.
sarcoma. A malignant connective tissue
neoplasm.
saturated. Impregnated to the greatest
possible extent; said of a solution; a
liquid holding all of a given solute
that it can dissolve.
saturnism. Lead poisoning.
scab. A crust formed by the drying of
the pus on the surface of an ulcer or
excoriation.
scalloped. Cut in curves.
scalpel. A pointed knife with a convex
edge.
scarfskin. Epidermis.
scar tissue. White fibrous tissue formed
in the healing of wounds; cicatrix.
scarify. To make a number of superficial
incisions in the skin.
scarlet red. An organic dye-stuff used
in ointment form as an antiseptic and
as a stimulant in the treatment of
ulcers.
sciatic. Relating to sciatica.
sciatica. Sciatic neuritis. Neuralgia of
the sciatic nerve.
sclerodactylia. Scleroderma affecting the
digits of the hands or feet.
scleroderma. A hardening and thickening
of the skin with loss of elasticity.
scleronychia. Induration and thickening
of the nails.
sclerosis. Induration or hardening, of
chronic inflammatory origin.
scoliosis. Lateral curvature of the spine.
scorbutus. Scurvy.
scrofula. A constitutional state, occurring
in the young and marked by a lack
of tissue resisting power.
scurvy. A disease marked by inanition,
debility, anemia, edema of the dependent
parts; a spongy condition, sometimes
with ulceration of the gums and
hemorrhages into the skin and from
the mucous membranes.
sebaceous. Carrying or producing sebum.
sebum. The fluid excreted by the sebaceous
glands of the skin.
seborrhea. Overaction of the sebaceous
glands.
secondary. One of the symptoms of
syphilis, following the development of
the chancre.
secretion. The product (solid, liquid or
gaseous) of cellular or glandular activity.
A secretion is stored up in or
utilized by the animal or plant in
which it is produced, thereby differing
from an excretion which is intended to
be expelled from the body.
secretory. Relating to secretion or to
the secretions.
sedative. An agent which quiets nervous
excitement.
semi. A prefix denoting one-half or
partly. (Exam. semi-flexion—midway
between flexion and extension).
semis. One-half; noted in prescription
writing as ss.
senility. Old age.
sensitized. Rendered sensitive.
sensory. Relating to sensation.
septic. Unclean, contaminated with bacteria.
septicemia. A systemic disease caused
by the presence of microorganisms or
their toxins in the blood; sepsis.
septum. A thin wall dividing two cavities
or masses of softer tissue.
sequestrum. A piece of necrosed bone
which has become separated from the
surrounding healthy osseous tissue.
serofibrinous. Noting an exudate composed
of serum and fibrin.
sero-purulent. Containing both serum and
pus.
serous. Relating to, containing or producing
serum.
serpiginous. Noting an ulcer or other
cutaneous lesion which extends gradually
over the surface on one side while
usually healing on the other.
serrated. Notched, toothed.
serum. A clear, watery fluid that
moistens the surface of serous membranes.
The fluid portion of the blood
obtained after coagulation.
sesamoid. Resembling in size or shape a
grain of sesame; an oval nodule of
bone or fibro-cartilage in a tendon playing
over a joint surface; most common
in the metacarpo and metatarsophalangeal
articulations and other joints of
the fingers and toes.
sessile. Having a broad base of attachment,
not pedunculated.
sheath. Any enveloping structure, such
as the membranous covering of a
muscle, nerve or blood vessel.
sheepskin. Prepared skin of the sheep,
used for shields.
shield. An agent used in podiatry to
protect a part from friction or pressure.
shock. A sudden physical or mental disturbance.
silver. Argentum; a metal of lustrous
white color.
s. nitrate; largely used in podiatry as
a caustic, escharotic and stimulant.
s. stick; fused silver nitrate in stick
form.
sinew. Tendon.
sinister. Of evil import, of bad prognosis;
Latin for left, in contradistinction
to dexter, meaning right.
sinistrapodeal. Left footed.
sinuous. Tortuous, bending in several
directions.
sinus. A tortuous tract opening on a
free surface and leading down to an
abscess cavity.
sirenomelia. A monstrosity having two
lower limbs fused in one.
skiagram. A print made from a photographic
plate exposed to the action of
the X-rays.
skiagraphy. Radiography.
skiascopy. Fluoroscopy.
skin. The membranous covering of the
body, cutis, integumentum.
skin grafting. The placing of bits of
epidermis or larger strips of the entire
skin on a denuded surface in order to
supply defects or to stimulate a new
skin growth.
skiving. The process of thinning shields
at their borders.
skiving knife. An instrument used for
skiving.
slough. Necrosed tissue separated from
the living structure.
[Pg 429]
sodium. A metallic element. The following
salts of sodium are used in podiatry.
s. bicarbonate; used as a dusting
powder in acidity of the skin.
s. borate; (borax) used as an antiseptic.
s. chloride; (common salt) used as
an antiseptic.
s. ethylate; used as a caustic in
verruca.
s. hydroxide; (caustic soda) used as
a caustic.
s. sulphide; used to remove superfluous
hair.
soggy. Soaked; wet.
sole. The under part of the foot, the
plantar surface.
solution. The incorporation of a solid or
gas in a fluid.
spasm. An involuntary convulsive
muscular contraction; cramp.
spastic. Spasmodic, convulsive.
spatula. A flat blade used for spreading
plasters and ointments.
spatulate. Shaped like a spatula.
specific. Relating to an individual infectious
disease, one caused by a special
microorganism; in a special restricted
sense, syphilis.
sphacelous. Necrotic, gangrenous, sloughing.
spheroidal. Resembling a sphere.
spica. A form of bandage with overlapping
turns.
spinal. Relating to the vertebral column.
spiral. Coiled; winding around a center.
spiritus (spirit). An alcoholic solution of
a gaseous or volatile substance.
Spirochaeta pallida. The protozoan
which when present in the blood indicates
syphilis.
splay-foot. Flat foot, talipes valgus.
splint. An apparatus for rendering a
part immobile, as in fractures.
spontaneous. Occurring without external
stimulation.
sporadic. Occurring singly; neither endemic
nor epidemic.
spur. A dull spine or projection from a
bone.
staphylococcus. A group of cocci in
which the individuals are arranged in
irregular masses somewhat resembling
a bunch of grapes.
stasis. Stagnation of the blood or other
fluids.
static. In a state of equilibrium or rest;
not in action.
static ataxia. Inability to preserve
equilibrium in standing through loss of
the deep sensibility.
station. Power of standing more or less
firmly on one’s feet.
stereognosis. Ascertaining the form of
an object by means of touch.
sterile. Surgically clean; free from bacteria.
sterilization. The act of making a person
or thing sterile.
sterilizer. An apparatus for making
anything aseptic or germ free.
stimulant. An agent that arouses organic
activity.
stimulation. The arousing of the body
or any of its parts or organs to increased
functional activity.
stovaine. A local anesthetic, used especially
to induce spinal anesthesia.
stratum. Layer.
streptococcus. A group of cocci in which
the arrangement resembles chains.
streptococcus viridans. A form of streptococcus
which grows in green colonies
and is not hemolytic; the bacterium
responsible for most focal infections in
the teeth.
striated. Striped.
stroma. The framework made of connective
tissue.
strychnine. An alkaloid of nux vomica.
stump-foot. Club-foot.
styptic. Astringent, hemostatic.
sub. A prefix denoting beneath, less
than normal or typical; inferior; corresponds
to hypo. (Exam. subastragular—under
the astragalus).
subacute. Not frankly acute, yet not
chronic, noting the course of a disease.
subcutaneous. Beneath the skin.
subluxation. An incomplete luxation or
dislocation.
sudamina. Minute vesicles due to retention
of fluid at the mouth of a sweat
follicle.
sudoriferous. Carrying or producing
sweat.
sulphur. Brimstone; a chemical element;
used in ointment form as a stimulant.
super. A prefix signifying in excess,
above, superior, same as supra and
hyper. (Exam. supertension—extreme
tension).
superficial. Near the surface; cursory,
not thorough.
superfluous. More than sufficient.
supernumerary. More than normal in
number.
supersaturated. Said of a solution which
holds more than a normal quantity of
a solute, and caused by heating the
liquid.
suppurate. To form pus.
supra. A prefix denoting a position
above. (Exam. supracostal—above the
ribs).
surgery. The branch of medicine which
has to do with the treatment of disease
by means of operative procedures.
suture. The surgical uniting of two surfaces
by means of stitches, with silk
thread, catgut, wire, etc., the material
by which the two surfaces are held in
apposition.
swab. A tuft of cotton or other like
material attached to the end of a stick
or wire; used for cleansing cavities or
applying remedies.
sweat gland. One of the tubular coil-glands
in the corium and subcutaneous
connective tissue, secreting sweat.
swell-foot. Swelling and redness of the
metatarsus, with pain and disability,
due to sprain of the ligaments which
are frequently detached from the
bones.
symptomatology. The science of the
symptoms of disease.
symptoms. Any morbid phenomenon or
departure from the normal in function,
appearance or sensation experienced by
the patient and indicative of disease.
Objective s., one which is evident to
the observer. Subjective s., one apparent
only to the patient.
synarthrosis. A fixed articulation.
syndactylous. Having webbed fingers or
toes.
[Pg 430]
synonyms. Words having the same
meaning as others.
synovia. A clear fluid secreted by a
synovial membrane and used to lubricate
the joints.
synovial membrane. The lining membrane
of a joint, secreting the synovia.
synthetic. Relating to the formation of
chemical compounds by the union of
simpler compounds.
syphilide. Any skin lesion of syphilitic
origin.
syphilis. An infectious disease spread
by inoculation, usually by sexual intercourse,
and due to the spirochaeta
pallida.
syphiloderma. Syphilis of the skin.
syringe. An instrument for injecting
fluids.
syringomyelia. The presence of cavities
in the spinal cord due to the breaking
down of gliomatous new formations.
systemic. Relating to the entire organism
as distinguished from any of its
individual parts.
systremma. A muscular cramp in the
calf of the leg.
T
tabes dorsalis. Locomotor ataxia, a disease
of the spinal ganglia and roots
usually found in middle age and often
the sequel of syphilis.
tactile. Relating to touch or to the sense
of touch.
talipes. Kyllosis; club-foot in general.
t. calcaneovalgus; t. calcaneus and t.
valgus, combined;
t. calcaneovarus; t. calcaneus and t.
varus, combined;
t. calcaneus; permanent dorsal flexion
of the foot, so that the weight of the
body rests on the heel, only;
t. cavus; hollow-foot, an exaggeration
of the normal arch of the foot.
t. equinovalgus; t. equinus and t. valgus,
combined;
t. equinovarus; t. equinus and t. varus,
combined;
t. equinus; permanent extension of the
foot so that only the ball rests on
the ground;
t. percavus; an extreme degree of t.
vagus;
t. planovalgus; t. valgus;
t. planus; flat foot, splay-foot—a condition
in which the arch of the foot
is broken down, the entire sole touching
the ground;
t. spasmodicus; a temporary distortion
of the foot, usually t. equinus, due
to muscular spasm;
t. vagus; permanent eversion of the
foot, the inner side alone of the sole
resting on the ground;
t. varus; inversion of the foot, the
outer side of the foot only touching
the ground.
talus. Ankle bone, astragalus.
tampon. To plug a canal with gauze,
cotton wool or other substance; the
substance used for the above purpose is
also known by the same name.
tangent. A straight line that touches or
meets a circle or curve, but does not
cut it.
tannoform. Trade name of a compound
of tannin with ferric aldehyde.
tarsal. Relating to a tarsus in any sense.
tarsalgia. Podalgia; policeman’s disease;
pain in the tarsus usually due to incipient
flat foot or to a shortening of
the tendo Achillis.
tarsometatarsal. Relating to the tarsal
and metatarsal bones of the foot or
region.
tarsophalangeal. Relating to the tarsus
and the phalanges.
tarsus. The root of the foot, or instep.
T. B. C. (tuberculosis). A specific disease
caused by the presence of bacillus
tuberculosis; it may affect almost any
tissue or organ of the body, the most
common seats of the disease being the
lungs and joints.
teat. Any nipple-like protuberance.
technic. The manner of performance of
any surgical operation.
temper. Elasticity or hardness in steel.
tenalgia. Pain referred to a tendon.
tendo Achillis. The tendon of insertion
of the gastrocnemius and the soleus
muscles into the tuberosity of the os
calcis.
tendon. A fibrous cord or band which
connects the muscle to its bony attachment.
tenotomy. The surgical division of a
tendon.
tension. The act of stretching.
tepid. Lukewarm, for a bath, 86°F.
tertiary. The final stages of syphilis.
tetanus. An infectious disease marked
by painful tonic muscular contractions;
caused by the toxin of bacillus tetani
acting upon the central nervous system.
tetany. A disorder marked by intermittent
tonic muscular contractions.
tetradactyl. Having only four fingers or
toes on a hand or foot.
therapeutic. Relating to the treatment of
disease; curative.
thermal. Relating to warmth or heat.
thermocautery. The actual cautery;
destruction of tissue by heat.
Thiersch’s solution. An antiseptic solution
containing boric acid and salicylic
acid.
Thomsen’s disease. Myotonia congenita.
An hereditary disease marked by momentary
tonic spasms which occur
when a voluntary movement is attempted.
thrombosis. Formation or presence of a
thrombus.
thrombus. A plug more or less completely
occluding a blood vessel or one
of the cavities of the heart.
tibia. Shin-bone; the inner and larger
of the two bones of the leg.
tinctura. An alcoholic solution or extract
of a non-volatile vegetable substance;
a tincture.
t. arnicae; used for sprains and
bruises;
t. benzoini comp.; used for sunburn,
chimatlon, etc.;
t. calendulae; used for sprains and
bruises;
t. cresolis saponata; used as an antiseptic;
t. ferri chloridi;
t. iodi;
t. iodi (Churchill);
t. iodi decolorata;
t. saponis viridis.
tinea unguium. Ringworm of the nail.
tip-foot. Talipes equinus.
[Pg 431]
tissue. A collection of cells or of cell
derivatives forming a definite structure.
titubation. A staggering or stumbling in
trying to walk, due to spinal lesion;
restlessness.
toe. Digitus pedis, one of the digits of
the feet.
great t., the toe on the inner, tibial
side of the foot corresponding to the
thumb.
hammer t., permanent flexion at the
mid-phalangeal joint.
toe drop. A drooping of the anterior
portion of the foot, due to paralysis.
toe separator. An instrument used for
separating the toes.
toe webs. The skin at the base of the toes.
tonic. In a state of continuous, unremitting
action, noting especially a
muscular contraction. Increasing physical
or mental tone or strength, invigorating.
A remedy given or applied
to tone up the system.
touch corpuscles. Special bodies found in
the true skin, especially at the ends
of the fingers, and used for the sense
of touch.
tourniquet. An instrument for arresting
the flow of blood through a part.
toxemia. Blood-poisoning; the presence
of toxins in the blood.
toxic. Poisonous. Relating to a toxin.
toxin. A poisonous substance of undetermined
chemical nature, developed
during the growth of pathogenic bacteria.
transient. Not permanent; coming and
going.
transition. Passage from one condition
or one part to another.
trauma. A wound or injury.
traumatic. Relating to or caused by a
wound or injury.
tremor. Trembling, shaking; a disorder
of the muscular tonus or loss of equilibrium,
the normal inappreciable tonic
contractions being exaggerated.
trench foot. A disease of the present
war. See full description in the body
of the book as per index.
tropacocaine. An alkaloid obtained from
Java coca leaves; a local anesthetic.
trophic. Relating to or dependent upon
nutrition.
tuberculosis. A specific disease caused
by the bacillus tuberculosis; it may
affect any tissue of the body.
tumor. Neoplasm; a circumscribed
growth, not inflammatory in character.
tungsten. A metallic element, symbol
W, atomic weight 184, occurring as a
gray powder of metallic lustre. A
form of incandescent electric lamp is
made of a tungsten filament.
turpentine. Terebinthina. Prepared in
the form of oil and of spirit for external
applications.
tyloma. Callosity, tylosis.
tyroma. A caseous (cheese-like) tumor.
typhoid. Typhus-like; stuporous from
fever; same as typhoid fever.
U
ulcer. A circumscribed open sore which
shown no tendency to heal; ulcus.
uncinariasis. Hookworm disease.
undertoe. Displacement of the great toe
beneath the second toe.
ungual. Relating to the nail.
unguentum. Ointment, salve.
u. acidi borici, boric acid ointment;
used in burns and abrasions.
u. acidi salicylici, salicylic acid ointment;
used as a disintegrant.
u. acidi carbolici, carbolic acid or
phenol ointment; used in burns and
in superficial wounds.
u. balsam Peruvianum, balsam of
Peru ointment; stimulating.
u. camphorae, camphor ointment;
stimulating.
u. cantharidis, cantharidal ointment;
rubefacient.
u. capsici, capsicum ointment; rubefacient.
u. creosoti, creosote ointment; applied
to chilblains, indolent ulcers and
various skin affections.
u. diachylon, Hebra’s lead ointment;
employed in hyperidrosis.
u. hamamelidis, witch hazel ointment;
a soothing application.
u. hydrargyri ammoniati, white precipitate
ointment; applied in chronic
skin conditions and in tubercular
syphilides.
u. hydrargyri oxide rubri, red precipitate
ointment; used in the treatment
of indolent ulcers.
u. ichthyoli, ichthyol ointment; emollient.
u. iodi, iodine ointment; used in chilblains
and in glandular enlargements.
u. picus compositum, compound tar
ointment; employed in wounds and
in burns.
u. plumbi acetatis, lead acetate ointment;
astringent application to
burns and superficial inflammations.
u. resorcini compositum, “soothing
ointment”; astringent and antiseptic.
u. scarlet red, scarlet red ointment;
stimulating.
u. sulphuris, sulphur ointment; used
in scabies.
u. zinci oxidi, ointment of zinc oxide;
a soothing mild astringent application
in skin diseases, burns and
abrasions.
unguis. Nail; a thin, horny, transparent
plate covering the dorsal surface of the
distal end of each terminal phalanx of
fingers and toes.
Unverricht’s progressive myoclonus. See
Thomsen’s disease.
uric acidemia. See lithemia.
uridrosis. The excretion of urea or uric
acid in the sweat.
union. The joining together of the opposing
parts of a wound.
unofficial. Not official; said of a remedial
agent not described in the pharmacopeia.
uremia. An auto-intoxication occurring
in certain cases of nephritis or in
anuria from any cause.
U. S. P. Abbreviation for the United
States Pharmacopeia.
V
vacuum. A space from which the air
has been practically extracted.
valgus. Bending outward; noting a condition
of the great toe, in which it is
bent outward; knock-knees; see talipes
valgus.
[Pg 432]
vanadium chloride. A yellowish substance
used in bromidrosis.
varicose. Relating to or affected with
large and tortuous veins.
variola. Smallpox.
varix. An enlarged and tortuous vein,
artery or lymphatic vessel.
vascular. Relating to or containing
blood vessels.
vasoconstrictors. Agents which cause
narrowing of the blood vessels; nerves,
stimulation of which cause vascular
constriction.
vasodilators. Agents which cause dilatation
of the blood vessels; a nerve,
stimulation of which results in dilatation
of the blood vessels.
vasomotor. The nerves which have the
power of dilating or constricting the
blood vessels.
vein. A blood vessel conveying blood
towards the heart. Lat. vena.
veins of the foot:
v. plantaris interna; internal plantar
vein (plantar surface, deep).
v. plantaris externa; external plantar
vein (plantar surface, deep).
v. saphena brevis; external or short
saphenous vein (dorsal surface,
superficial).
v. saphena longa; internal or long
saphenous vein (dorsal surface,
superficial).
v. tibialis anticus; anterior tibial
vein (dorsal surface, deep).
No veins on the superficial plantar
surface.
verbatim. Word for word.
vermiform appendix. A blind sac of the
intestine, extending from the head of
the cecum.
verruca. A circumscribed overgrowth of
the layers of the skin, including those
of the derma (plural, verrucæ).
vertebral caries. Molecular death of the
bones of the spinal column.
vertigo. Dizziness, giddiness.
vesicant. An agent which when applied
to the skin produces a blister.
vesicle. A small circumscribed elevation
on the skin, containing non-purulent
fluid; a blister.
vesicular. Relating to a vesicle; containing
vesicles.
vibration. A shaking, oscillation.
vice versa. The terms in the case being
reversed.
virulent. Extremely poisonous.
vocational. Referring to occupation.
volatile. Not permanent; evaporating
spontaneously.
voltage. The electromotive force of a
current expressed in volts.
vulcanizing. Adhering rubber by means
of heat.
W
wart. A circumscribed hypertrophy of
the papillæ of the corium. (See
verruca).
Wassermann test. A diagnostic test for
syphilis, based upon the theory of
complement fixation.
web. The skin found at the base of the
fingers or toes.
wheal. An acute, circumscribed elevation
of the skin due to edema in the
derma.
whitlow. Felon, paronychia, inflammation
of the tissues around the nail.
whorl. A set of organs arranged in a
circle around an axis.
wick. A piece of gauze or other material
used for draining cavities.
wipe. A piece of gauze or cotton used
in wiping instruments.
wool fat. Adeps lanae. Used as an embrocation
in podiatry. Lanolin.
Woulfe’s bottle. A bottle with two or
three necks, for working with gases
(washing, drying, etc.).
wound. Loss in continuity upon the surfaces
of the body.
wrist drop. Paralysis of the extensors of
the wrist and fingers.
X
X-rays. Roentgen rays.
xystus. Scraped lint; lint made by
scraping linen with a sharp instrument.
Z
Zander’s system. Treatment by means
of mechanical apparatus giving passive
movements.
zinc oxide. A white powder used as an
astringent.
zinc stearate. A white powder used as
an antiseptic dusting powder.
zymotic. Relating to fermentation;
noting an infectious disease.
(We are obligated to Stedman’s Practical
Medical Dictionary for many of the
definitions of medical terms above noted—Editor).
[Pg 433]
CROSS REFERENCE INDEX
Practical Podiatry
is the second volume of a series of books known
as a complete System of Podiatry.
The first volume
Surgery
with
Special Reference to Podiatry
has proven of worth and will be found in the
libraries of all advanced podiatrists and of
many progressive physicians.
Podiatry Orthopedics
will be the next volume of the System to be
published and will be followed by other books
along special lines bearing upon a knowledge
of foot lesions and their care.
Transcriber’s Notes.
Evident typographical and punctuation errors have been corrected silently. Inconsistent spelling/hyphenation has been normalised.
A half-title page has been discarded, and a publishers blurb for a companion volume moved to the end of the book.
End of page footnotes have been sequentially numbered and relocated to the end of the text.
To improve text flow, illustrations have been relocated between paragraphs.
Cover art created for this eBook is granted to the public domain.