Document B8bb3gNgQxaRjMMe3agvJMqVL
M.V.S, - December, 1949,
3
THE PLACE OF ALUMINUM IN THE PROPHYLAXIS AND THERAPY OF SILICOSIS. '
l F* MURRAY, M.D. (S.A. Institute for Medical-Research)
It is an honour to me to speak to the members of this association, I say this in all sincerity because there is no doubt that, while medical science has contributed a very great deal to a knowledge of silicosis, the main factor in its diminishing incidence on the mines is the engineer's and ventilation officer's success in reducing dust concentrations in the working environment of the miner. But while the engineer and members of associations such as this have made immense strides in controlling dust, there is a minimum beyond'which it is probably impossible to go. Silicosis will, therefore, remain with us though in greatly reduced incidence, severity and rapidity of progress. It is the problem of the medical man to seek further measures which will prevent the onset, or delay the progress, of the disease. In common with many other workers in various parts of the world, numerous members of the staff of this Institute have worked on this problem over the last 25 years. It is my purpose this morning to attempt to show you briefly the work which is at present in progress and to outline to you the problems we are seeking to solve*
Before doing so, it might not b:e amiss for me briefly
to outline the anatomical background of silicosis. As you
already know the causative agent is free silica (SiOg) which
is inhaled with the inspired air into the lungs. The particulate
m&tter in the air varies very considerably in size but that
which is most important so far as silicosis is concerned is
the size below 10/W, and particularly that below 5ao. The
smaller the silica particles the more dangerous they are and
.
all particles below SyU are really dangerous particles.
Let us briefly follow the course of the inhaled air. It passes through- the mouth, larynx and trachea (or windpipe) to the bronchi, which constantly dividing, diminish into smaller and smaller air passages until at a diameter of 0,5mm, they become known as respiratory bronchioles. These small airways open into a group of airsacs called alveoli. At the point at which the bronchioles end and the airsacs begin the_cells lining the air passages change in type. Those lining the bronchioles are tall and palisided. Their free border next to the air stream is covered with constantly moving fine cilia which, moving in a layer of mucus, tend always to sweep foreign material up from the depths of the lung to the mouth whence it can be swallowed or expectorated. The cells lining the airsacs are flattened and lie more or less edge to edge like paving stones. Some of these flattened cells are capable, if properly stimulated,' e.g. by dust, of becoming rounded and motile. In this condition, they engulf any foreign material, such as dust, which they'encounter and carry it up to the bronchioles. As these phagocytes, as the
^motile.,,
-4
motile scavenging cells are called, reach the ciliated epithelium of the 'bronchi, they may take one of two routes. They may continue up the bronchial passages in the layer of mucus towards the mouth or they may penetrate the wall of the bronchiole and enter the tissue Just outside the
wall.
With'this brief superficial survey of the lung
structure, let us now consider the fate of an inhaled particle
of dust. If the particle is large, o,g, SOOA or so, it will
almost certainly be arrested by the protective mechanisms of
the nose and throat and will never enter the windpipe or
bronchi. If it is a smaller particle of 10/k or less it'may
continue in the air stream to the depths of the lung'and, if
it strikes no bronchial or airsae (alveolar) surface, be
returned in the expired air and so lost to the body without
having had any effect whatever, Or the particle may, at
some point in its passage down the bronchi, be caught in the
mucus covering the bronchial walls, In this case, it will
be slowly brought up the bronchial tree in the layer of mucus
and eventually expectorated in the sputum. Such a particle
may, of course, penetrate the bronchial wall or be taken up
by a phagocyte but we'will not pursue this possibility further.
Finally, the particle, particularly if it is a very small one,
may successfully negotiate the whole length of the bronchial
tree and enter the ultimate airsacs. Here it will eventually
be taken up by an alveolar phagocyte which, as already stated,
will carry it and many like it, to the bronchial tree
The
phagocyte, with its load of dust particles, may continue up
the mucus layer of the bronchi and eventually be expectorated
or it may penetrate the bronchiolar wall and enter the
connective tissue. At this'point in the tissues, Just
outside the bronchiolar wall, where the bronchioles and the
airsacs meet, the alveolar phagocytes, with their loads of
dust particles, tend to congregate. As the silica particles
increase in number at this point, they call forth a response
on the part of the tissues which' leads to the formation of
a nodule of dense fibrous tissue, not unlike scar tissue,
(Fig, l) This is the primary lesion of silicosis in the lung '
and this is the point, at the Junction of bronchiole and airsac,
where it always initially occurs. As time passes and as the
concentration of silica dust increases, the nodule grows larger,
'Fig, 2) Eventually it compresses and may completely close
the lumen of the bronchiole so that the airsacs distal to it
collapse. As the nodule grows larger, it tends to coalesco
with other neighbouring growing nodules and to form an area
of confluent or massive silicosis with closing off of still
more bronchioles- and collapse of still more airspaces, (Fig,3)
Some of the dust, however, does not remain in the nodule but
migrates, according to its position in the lung, in phagocytes,
to the pleural (covering) surface of the lung or to1 the lymph
glands at the root of the lung. In those situations the dust
again causes a tissue reaction with fibrosis (hardening) of
the tissues and various other complications.
So much for the way in which the dust reaches the lungs and the sites in which it causes its harmful effects.
/Mode of...
FIGURE I.
Earliest reaction to the accumulation of silicosis dust in the tissues at the entrance to the primary unit of the lung. A small collection of dust cells is seen in the walls and supporting tissue of the res piratory bronchiole and its continuation as the alveolar duct. As yet there is no sign of nodule formation. Examined under polarized light, birefringent mineral particles are always present, and are usually found to be numerous in this type of lesion.
Magnification of the order of 25 x .
RLE 40920,2,30
Mode of action of silica
Many theories have been postulated in attempts to
explain the mode of action of silica in the tissues.
Obviously the action must be complex and cannot be explained
on a simple physical or chemical basis. The environmental conditions in which the silica particles find themselves
in the pulmonary alveoli are extremely complex and are
subject to numerous variations. The dust itself varies in
size, age, constitution and many other factors. Brief
mention may, however, be made of some of the theories.
(a)Mechanical trauma, This theory fails to explain the
effect which silica dust has on the lung tissues and is
subject to numerous criticisms. (b) Chemical. In its broadest sense, this theory has much to be said for it.
The noxious substance is a specific chemical entity which
tends to be slowly dissolved in biological fluids. The
lung environment in which the silica slowly dissolves is
biochemically complex and could clearly be affected by the
release of an extraneous chemical substance. But while
this is true in its broad sense, the exact mechanism by
which such an- effect might be exercised is obscure. It .
is postulated, that in the solution of silica, silicic ions are slowly given out and that' those call forth the tissue
reaction, On the other hand, it has been suggested that
the silica slowly forms a colloid and that it is the colloid
which damages the surrounding tissues, (c) Exchange of
bases. During their presence in the lung, the silica
particles slowly MweatherM by giving up basic ions and
taking in OH ions. As a result, "the tissues become
'
alkalinised and the mineral particles hydrated and thereby,
according to Policard, inert. It is suggested that it is
this molecular exchange which leads to the tissue reaction.
(d) Electrical potential. Haffernan maintains that the
silica dust exercises its effect on the tissues by reason
of the electro-chemical energy existing at the freshly
'
fractured surfaces of the particles. These fresh surfaces,
according to Heffernan, are ionised and it is this factor
which leads to silicosis, (e) Piezoelectric force. Recently
it has been stated that the activity of mineral particles
In producing fibrosis of the lung is related to their piezo
electric properties and that It is the exercise of this force
which leads to silicosis in the presence of silica dust. By
placing animals in strong electro-magnetic fields and thus
deforming the crystals already placed in their tissues, the
degree of fibrosis was increased as a result of the piezo
electric force released.
Whichever is the correct the-ory, the action and reaction is exceedingly complex if for no other reason than that it occurs in a biological environment. Such being the case, it is not easy to devise experiments which will elucidate the mechanism of silicosis. In test-tube experiments, one factor at a time can bo carefully varied by a known degree. But in living tissues, it is very difficult and sometimes impossible to control all other factors while varying the one under investigation.
/Aluminium in.,*
FIGURE 2.
The fully formed single small simple silicotic nodule. The fibrotic islet is fairly sharply delimited from the surrounding area of pigmented dust-laden cells.
Magnification of the order of 300 x.
FIGURE 3.
Silicotic massive fibrosis of non-infective type.
This section shows numerous contiguous composite nodules which macroscopically formed a single massive area of fibrosis of non-infective type. The alveolar tissue is collapsed.
Magnification of the order of lOOx.
RLE 40920,2,SO
Aluminium in preventing silicosis.
.
Acting, however, on the assumption that the chemical solubility of silica was in some way associated with its harmful effects a group of Canadian workers commenced a search'for some non-toxic substance which would depress its' solubilitye At last they hit upon' aluminium. By an odd chance, Gardner, working independently, and by other methods, reached the same conclusion at almost the same time. It would appear that the aluminium forms a monomolecular layer around the silica particles which either by depressing their solubility, or by satisfying the unsatisfied ions of their freshly fractured surfaces, or by neutralising their electrical potential, or by some other method, prevents the occurrence of the usual fibrotic tissue reaction. The original investigations were carried out'with animals but from laboratory animals to man is but a step, albeit a large one, and inhalation of aluminium dust is now employed in many parts of Canada and the United States in an effort to prevent the onset or stay the progress of silicosis in miners and other workers exposed to silica dust.
The methods of administering the aluminium dust are numerous but in all of them the essential object is to get the dust into the lung alveoli where it can come into contact with inhaled silica particles and inhibit their action on the tissues.
Present experiments.
At the Institute here we are trying to obtain further information on this vital subject. A series of dust chambers has been constructed in which animals can be exposed to dust clouds day' after day and the effect upon their lungs observed. To this end,some animals are being exposed to pure silica dust and others to mine dust. In relation to mine dust an important point arises
It Is contended that old dust, i.e. settled dust which has had a chance to weather, or at least to lose the electrical potential ' of its freshly fractured surfaces by contact with other particles, is less dangerous than newly formed silica dust. The late Dr, Simson of this Institute1, after 20 years' experience in which he observed numerous animals into which he had injected suspension of "old" mine dusts was of the opinion that they were just as active as fresh dust. This, however, may be a question of either
quantity or environment. It may be that freshly fractured dust, particle for particle, is more active than old dust when inhaled into the lungs though no difference can be noted when relatively
large amounts are injected into the veins. In an effort to learn more about this important point, we are, in conjunction with Professor Walker of the Mechanical Engineering Department of the University and with members of the Ventilation Department of the Chamber of Mines, seeking to devise a means of exposing animals to inhalation of freshly fractured dust in order that their reaction may be- compared with those exposed to resuspended "old"
dust. Finally, animals are being exposed to aluminium and to silica so that we may observe the beneficial effects or otherwise of the' aluminium inhalations. A control group of animals is, of course, being exposed to aluminium alone so that any noxious effects of the substance may be noted. In the chambers, therefore, groups of animals will be exposed to:
(__{a) Pure
(a) Pure aluminium
(b) Aluminium + silica dust
(c) Pure silica dust
(d) Mine dust
(e) Freshly fractured mine dust*
In conclusion let me say that in the conduct of the se experiments I am happy to acknowledge the very great help we have received from many members of your association who assist us in technical ways too numerous to mention. In particular, I would like to mention your Chairman, Mr. Campbell-Pitt; also ' Mr, Rees of the Chamber of Mines with many members of' his staff and Mr. Barenbrug, of the New Consolidated Goldfields, all of whom have given us invaluable help and without whom th.6 work simply could not have been undertaken.
-8 M,V,S, - December, 1949
VOTE OF THAMES TO DR* MURRAY By A.W.T, Ba.renbrug
From the address which Dr. Murray has given us this morning and from the .exhibits he so kindly has shown us, we must conclude that a great stride has been made towards the prevention of silicosis in our mines. Dr, Murray has told us this morning that the very bad cases of silicosis as shown by the three worst lung-specimens seldom occur these days, I think the achievements must be very gratifying to the industry, and the organisers of dust-prevention can indeed be very proud of their work.
Nevertheless silicosis still occurs and far from resting upon out laurels it is stljj, the duty of every ventilation officer fand. every person connected with silicosis prevention to assist jjn removing silicosis from our mines altogether, either directly by removing or causing to remove'any form of dust from our minds, or indirectly through research,
I
DuS't conditions in our mines have reached such a state f perfection that it will be difficult to improve upon them without 'involving the industry in heavy expenditure or cumbersome regulations. However, we know as yet far too little about the reason why the dust in the mines is so dangerous. Research in silicosis may toll us one day why that is the case, and once knowing "why" it may not he difficult to find the correct solution to the problem# The work that Dr. Murray is carrying out is therefore most impor tant, From the extremely interesting talk so ably presented we are convinced that this research work is in' expert hands and I cannot thank him better than wishing him, on behalf of yon all, success in his work.
Seconding of Vote of Thanks to Dr, Murray
By S.R. Rabson
The maintenance of health and prevention of silicosis is '
the ultimate aim of the Ventilation Officer, the control of
dust and ventilation being an intermediate but necessary step
towards this aim.. Dr. Murray has therefore dealt with a side
of the dust problem which is of vital interest to us and of
`
which ventilation men ought to have an intelligent understandings
I must congratulate Dr. Murray on his very clear and lucid
explanation of the processes with which the lungs deal with
silicosis-producing dust particles. The experiments being
carried out at the S.A.I.M.R, arc of great interest, and we
'
appreciate the opportunity of getting an inside view of tho
work being done on the medical side of silicosis prevention, .
We trust that co-operation between the medical and ventilation
sides on the problem of silicosis will lead to the complete
y-
elimination of this disease. The exhibits of lungs in various-
stages of silicosis which Dr. Murray has demonstrated to us
may then well become mere museum pieces,
'
I have great pleasure on your behalf in supporting the
vote of thanks to Dr. Murray for his very interesting and instructive address.
. '.
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