Document 0g3m2rrJXDwaNE0Drnx9qJmbk
638
Reprinted from the Archives of Environmental Health April 1968, Volume 16
Copyright 1968. American Medical Association
PLAINTIFF'S EXHIBIT
Experimental
Studies on the Progressiveness of the Pulmonary Fibrosis Caused by Chry6otile Dust
Paul Gran. MD, and Robert T. P. dr Trrrillc. Pitt,burgh
unreliability of symptoms as a crite termined. This is particularly true of asbes-
rion for the progression of pulmonary fibro tosis.
sis was underlined in a medical and psychi It is the purpose of this paper to define
atric 6tudy of coal miners with respiratory some of the anatomic stigmata of progres
complaints. Here, a very significant associa sion of asbeslosis and to determine whether
tion was observed between a recognizable or not asbestosis caused by chrysotile dust is
psychoneurotic factor and an apparent progressive.
worsening of the clinical condition: of 40 patients studied, only 12.5% had disability
Methods and Materials
on "physical" grounds alone; 35% had dis ability on psychiatric grounds alone; and the remainder on both.1
Furthermore, discerning clinicians recog nize that opinions concerning the progres sion of a pulmonary fibrosis based upon the
Lung burdens of chrysotile asbestos dust were imposed upon rats, hamsters, and guinea pigs by exposure in inhalation chambers as well as by intratracheal injection. Most of the ani mals exposed to dust in an inhalation chamber and reported in this study were part of a larger
symptomatology (eg, shortness of breath) investigation that will be reported separately.
and a roentgenologic evaluation, even when reenforced by lung function studies may be quite erroneous. In the presence of a superadded coincidental pulmonary illness, such signs and symptoms may be reversible in whole or in part between such episodes, which include covert and overt acute pneumonitides, pulmonary edema, and allergic
The inhalation chamber in which all animals (except four guinea pigs) were exposed to dust, measured 8x8x8 feel. The animals were
housed in wire cages that were suspended in racks. Periodically, these cages were rotated so that inequalities in dust exposure caused by po sition were largely obviated. The exposures were for Bix hours per day, five days per week. The total exposure varied, as listed in the table.
or chronic bronchitis--with or without em The chrysotile asbestos was ballmilled and
physema, or emphysema without bronchitis. then Ted into a hammennill (modified from a
Such diagnostic difficulties were the subject of a recent symposium on emphysema in >ndustry.
As uncertain as are the clinical criteria of progression of pneumoconiosis, very little help has come from postmortem studies of human lungs or those of experimental ani mals in defining the criteria by which
design by Holt and Young:). This was provided with inlet and outlet tubing so arranged that the comminuted asbestos was fed back continu ally into the hammennill. At the same time, the ultrafines were allowed to waft upward into the inhalation chamber. Two of these hammermills provided the chamber with sufficient dust to av erage 86 mg/cu m with a range of 42 mg/cu m to 146 mg/cu m. The asbestos dust cloud was
progression of pneumoconiosis may be de- evaluated by sampling with a two-stage sire se
Submitled (or publication Aug 9. 1966; accepted
Aug 15. From the Industrial Hygiene Foundation. Mellon
Institute. Pittsburgh. Read before the Hatch Symposium. Graduate
School of Public Health, University of Pittsburgh, Julv IB-19. 1966.
Reprint requests to the Industrial Health Foundstion. Mellon Institute, 4400 Fifth Ave. Pittsburgh 15213 (Dr. Grose).
lective device, similar in design to that pro posed by Wright' and operated at 20 li
ters/minute. The first stage of the instrument was a horizontal elutriator with selector char acteristics recommended by the Johannesburg Pneumoconiosis Conference of 1959. namely acceptance of all particles having terminal set tling velocities greater than that of a 7.1s sphere of density 1 gm/cu cm. 50% acceptance
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of particles, the terminal settling velocity of Anlmtlt Exposed to, or Injected Intratrachaally
which it equivalent to 6s spherical particles of
With, Chrysolite Asbestox Oust
1 gm/cu cm density, and dropping to xero ac ceptance of particles having terminal settling velocities equal to a Is sphere of 1 gm/cu cm density. All particles penetrating the first stage elutriator were considered "respirable" and were collected on a permeable-membrane filter which acted as the instrument's second stage. The filter was dried and weighed prior to and after collection of the sample. In this man ner, it was found that 63% to 79% of the sus pended asbestos dust in the exposure chamber was respirable, ie, its terminal settling velocity was less than that of a 7.1a sphere of 1 gm/cu cm density.
The exhaust air from the inhalation chamber was drawn by suction through a pair of elec trostatic precipitators. The chamber air was consequently always under negative pressure as long as the hammermills were operating.
Inhalation
Exposure
(Months)
at Dust
Intre-
Time.
Concentration trachaal tod of
Special
(average)
injection Exposure
No. (86 mg/ (20 mg/ No. 3.b-mg to Death
Animals cu m) cu m) Injections (Months)
Rati
Total
2 6 6 6 4 4 5 b 4 )0
52
0.25 O.b 1 2 4
fi
I 2 A 6
Hamster*
) J-13 13-24.5 11.25 24
11.25-23 0.5-21 3.5-17 21 21 21 21
When the hammermills were shut down, fresh air was pulled through the chamber before the
9 b
1 13.5-21 2 12.5-16.5
door was opened.
Total 14
Periodically, dust from the electrostatic pre
Guinea Pigs
cipitators was collected and weighed. Since a record of the air flow through the chamber was
6 O.bb.b 43
0 0-4
kept, it was possible to calculate the average Total 10
dust concentration in the chamber air by divid
ing the weight of the dust collected within a lion of the lung dust burden as shown in the
time period by the volume of air flowing table.
through the chamber within that time.
All animals were autopsied. the lungs were
As seen in the table, four guinea pigs were exposed to a concentration of chrysotile dust averaging about 20 mg/cu m. For this exposure, a smaller chamber was used and the dust was prepared by atomizing a suspension of ballmilled chrysotile asbestos at a pressure of 100 lb/sq in and impinging the emergent jet a nearsonic velocity against a tool-steel baffle. The av erage fiber length of this dust was 0.92s as de termined by measurements from electron pho tomicrographs. Inasmuch as other data on the size distribution of the dust are not available, it is not possible to state what percentage of the dust suspended in the chamber air was respira ble. These animals were exposed for three months to this dust.
For intratracheal injections, the dust collect ed from the electrostatic precipitators was sus pended in water so that 1 ml contained 3.5 mg
removed and expanded with 4% formaldehyde solution under a pressure of 12 cm water. Paraffin sections were cut at 6a. Cleared un stained sections were examined under darkfield conditions4 and appropriate fields were photographed on 35 mm film. These sections were then stained with hematoxylin and eosin and the same fields rephotographed. After de colorize tion and silver impregnation (Gordon and Sweets), the fields were photographed for the third time. A fourth photograph of the same fields was made after the sections had been subjected to microincineration at 600 C for an hour and treated with concentrated hy
drochloric acid after cooling. Representative lesions in the lungs of control
animals were also photographed for purposes
of comparison with the experimental lessons. There were 16 rats, 29 hamsters, and 13 guinea pigs that had been part of the shipments of the
dust. The rats and hamsters were injected in animals later put on test, but had been set
tratracheal)}', some repeatedly, as listed in the aside away from the dust exposure as laborato
table. The injections were made under light ether anesthesia with the aid of an illuminated speculum that allowed visualization of the vo cal chords.
ry- controls. The results of this investigation are based
largely upon a comparative study of about 700 fields selected from the sections of 76 animals.
Some animals died at various times following the imposition of the dust burden. Others were killed approximately two years after the imposi-
Results Rais (Intratracheal Injection).--Immedi-
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Fig 1.--Ash pattern of odd-insoluble material in lung of rat immediately following Intretrecheal injec tion of chiysotlle dust. Alveolar ducts , are outlined by fairly thick, continuous coating of dust. Some dust, mostly in the form of discontinuous deposits. Is also found In some distal alveoli. Section was subjected to microincineration followed by treatment with concen trated hydrochloric acid (X 150).
ately after the intratracheal injection of chryaotile, the dust was seen applied as a uniform and continuous, dense coating upon the respiratory surfaces of the alveolar ducts and their evaginating alveoli (Fig 1). The lumens were everywhere widely patent. Sur face coating by the dust of some of the distal alveoli was also observed, but not regularly.
After 72 hours, the proximal portion of the raoemus6 was a nearly solid, cellular structure in which the lumens of the respira tory bronchiole and alveolar ducts were oblit erated by a polypoid mass of ovoid and plump spindle-shaped cells which also oblit erated the lumens of the evaginating al veoli. A highly significant change in the distribution of the asbestos dust was now
Fig Ash pattern of acid-insoluble materiel, three days after intratracheal Injection of chryaotile dust In rat. Dust, now in the form of flocculent masses of splculated aggregates, seems to form casts of alveolar ducts and fills their lumens. Very little dust is noted in the peripheral alveoli (X 150).
observed. The dust permeated the occlusive inflammatory tissue and thereby formed a cast of what was once the lumen (Fig 2). It was, however, no longer oompactly disposed; rather, it was distributed in a flocculent manner. Nevertheless, the total amount of dust in the lumens of the alveolar ducts ap peared to be considerably greater three days after the intratracheal injection than that present immediately after the injection. At the same time, less asbestos dust was ob served in the more peripherally situated al veoli. It is probable that the increase in the amount of dust in the alveolar ducts was de rived from the more peripheral alveoli. Al though some of the finer dust may have been intracellular, the greater bulk, by far, was extracellular, being imprisoned in the inter-
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Fig 3.--Minimal, moderately healed asbestotie lesion in rat exposed to chrysotile dust for one month, then postured and killed 24 months later. Lesion consists
of a partially thickened alveolar duct. Mural thickening is caused by hypocelUiler connective tissue that has ob literated alveoli near bottom of field (hematoxylin and eosin, (X 250).
slices of the precollagenous stroma of the
inflammatory tissue.
.
When examined one year or longer after
the intratracheal dust injection, asbestotie
fibrosis was found in all rats so injected. The
characteristic lesion was sharply limited to
the alveolar duct as well as to the short re
spiratory bronchiole and consisted of moder
ate to severe collagenous thickening of the
wall, often also associated with striking hy
perplasia of smooth muscle (in more than
one third of the injected animals). The col
lagenous mural thickening involved much of
the wall and resulted in the obliteration of
many of the evaginating alveoli. Generally
speaking, the involvement of the alveolar
ducts, even in animals injected with but a
Fig 4--Field tame at in Fig 3 after tilver Impregnelion chows that (car is composed on nonbranching, largely parallel, thick collagen fibers that ere fairly densely arranged (Gordon and Sweets. (X 2S0).
single dose of 3.5 mg of chrysotile dust, was greater than the minimal lesion observed in rats that had inhaled high concentrations of the dust for one month. As judged from the examination of a single section of both lungs of the rats, greater dust dosage was often, but not always, associated with an increased incidence of thickened alveolar ducts. The occurrence of larger collagenous scars con taining small remnants of air spaces seemed also to be related to the multiplicity of the asbestos dust injections, as was a metaplasia to the columnar variety of the epithelium lining the surviving evaginating alveoli.
The sharply delimited mural thickening of the alveolar ducts (Fig 3) and respiratory bronchioles, with the collagenized, nonarboresoent, thick stromal fibers (Fig 4), and the associated reduced oellularity (Fig 3),
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Tig 5.--Ash pattern of aeld-lntotuble material of tame field at In Fig 3 after microincineration and treatment with concentrated hydrochloric add. allowing the pretence of tangled mattes of atbettot fibert In the regiont of the tear tittue (X ISO).
represented a healed or healing inflamma tion. Within this scar tissue, apparently sequestered compact masses of asbestos fibers were often strikingly prominent after micro incineration (Fig 5.) On the other hand, many scars were seen that contained little or no demonstrable dust The sharp delimita tion of the scars was accentuated by the ad jacent normal delicate alveolar walls. These were characterized by single, nonbranching argyrophilic fibers. Nevertheless, in some of the rats, there were also fod of a more active inflammation. Such foci were marked by cellular thickening of alveolar walls and by considerable desquamation. Here, the stroma was arborescent, the side brandies tending to give structural support to the increased num ber of alveolar cells. Since similar inflamma tory foci of cellular alveolar mural thicken
ing 6.--Hyperplasia of smooth musela In rat Infected twice with 3.3 mg chiysotile dust end killed 21 months later. Well-defined bundles of smooth muscle era found In relation to alveolar ducts where the only normelly present muscle Is sltueted around mouths of evagineting alveoli (hematoxylin and eosin, X ISO).
ing were also found in the lungs of control rats not exposed to, or injected with, dust, it is believed that they were caused by un related spontaneous disease.
No asbestos bodies were found in rats ex posed to or injected with chrysotile asbestos dust.
Rats (Inhalation).--The characteristic minimal lesion, as found a year or more aft er the pulmonary deposition of chrysotile dust, consisted of focal collagenous thicken ing affecting patches of alveolar duct wall between some of the evagimting alveoli (Fig 3 and 4). With more extensive deposi tion of the chrysotile fibers, the mural fibro sis tended first to narrow the mouths of the evaginating alveoli and then to dose them
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1 i
Fig 7.--One of smaller cellular foci in lungs of hamster injected twice Intratraeheally wtth 3.5 mg chrysotite dust. Animal died one year later. The alveo* lor structure of cellular tissue is obliterated by cellular
proliferations. There is a suggestion of a polypoid mass slightly to the right end above the center of the field (hematoxylin and eosin. X 350).
Fig 6.--Silver impregnation of same field as In Fig
7 shows a plethora of branching and interconnecting argyrophllic fibers forming thick alveolar walls and projecting Into air spaces as polypoid masses of vari ous sues. Largest polypoid mass ts one referred to In Fig 7. It fills the lumen of alveolar duct (Gordon and Sweets, x 150).
off entirely. The fibrosis also dipped into some of the evaginating alveoli, partially or completely obliterating them. In this man ner, the respiratory bronchiole and adjoin ing alveolar ducts may become converted into relatively smooth-walled tubes with few or no evaginations. Most of the wall thick ness of these tubes was attributable to the fibrotically obliterated alveoli that original ly evaginated from the former.
The oellularity of the thickened structures
varied considerably depending upon the time interval between the deposition of the
dust upon the parenchymal surfaces and the death of the animal. In the florid stage of the inflammation, as seen in a rat exposed to the chrysotile dust for four months and
killed two weeks later, the oells in the affect ed regions were large and numerous while the stroma consisted of an arborescent net work of argyrophilic fibers in which the oells were enmeshed. In time, the argyrophilic fibers became thickened, condensed, and lost their arborescence as well as their argyrophilia; the latter coincident with their col lagenous conversion (Fig 4), During this prooess of stromal maturation, the oellulari ty of the tissue diminished and the oells elongated to resemble fibrocytes.
In some of the rats examined a year or longer after the dust exposure, there were, in addition to the collagenous fod, cellular foci of more active inflammation that had no ap parent relation to the proximal portion of the
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Fig 9.--Mb pattern of acld-lnsoluble material show* that region of polypoid mast In alveolar duct is densely permeated by tangled masses of asbestos fibers. Small er masses and aggregates of dust are found In periph eral alveoli and Other air spaces (X 150).
Fig 10.--Numerous luminetcent asbestos bodies in region of asbestotic Inflammation, from the lung of e hamster that received intratracheal Injection of 3.5 mg chrysotile dust and died 13 VS months later (unstained section; 12.5/0.3 Lain objective and 0.9 Lettz dart- held condenser X 150).
raoemus. Some of these foci may also con tain variable numbers of polymorphonuclear leukocytes. Similar cellular fod of active inflammation were also found in some of the unexposed laboratory control rats of compar able age.
Lung sections of all 18 tats exposed one month or longer to heavy concentrations of chrysotile dust exhibited minimal fibrotic pulmonary lesions one year or longer after the exposure. In contrast, in but one of six rats exposed to the same dust for only two weeks were similar changes found. The oth er five exposed animals had lungs that did not differ from those of unexposed rats. In neither of two rats exposed to the same dust for only one week, was there any evidence of asbestotic fibrosis 11 and 13 months, respec tively, after exposure.
Compared with the amount of acid-insolu ble ash seen in the lung sections shortly aft er the dust exposure, it appeared that only a small fraction of this amount of dust could be seen in the lungs of rats one or more years after the exposure. Nevertheless, in view of the ultramicroscopic size of much of the chrysotile dust, the failure of this method to demonstrate mineral dust in the tissue must not be construed to indicate necessari ly that no dust was present. It is also of in terest that the darkfield examination of the unstained sections with dry objectives was negative for luminescent material, even in regions later shown to contain abundant add-insoluble mineral ash.
In the lungs of a number of rats exposed to chrysotile dust two months or more, there
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646
were bundles of smooth muscle that often encroaching upon the lumens. Occasionally,
constituted masses 50p to 100/i in thick the argyrophilic stroma extended into the
ness (Fig 6). These muscle bundles were lumen of an alveolar duct or a bronchiole in
sharply delimited and related to the wall of a polypoid manner, occluding it The con
thickened alveolar ducts. They had no con densation of thin argyrophilic fibers to form
nection with blood or lymph vessels nor parallel thick fibers devoid of arboreeoenoe
could a relationship to the muscularis of a and the transformation into collagen, char
terminal bronchiole be demonstrated. In the acteristic of the lesions in rats, was not seen
newly formed connective tissue about some at all or to a very minor extent in these
of the alveolar ducts and respiratory bron hamsters. For the most part, the occlusion of
chioles, there were scattered gland-like the air spaces was earned mainly by massed
structures. These pseudo-glands represent alveolar cells, but the contribution of the ar
surviving units of the evaginating alveoli gyrophilic stroma should not be dismissed.
that have become lined by tall columnar epi It should also be emphasized that in con
thelium, occasionally ciliated. No acid-insol trast to the situation in rat lungs where the
uble mineral ash was demonstrable in the involvement was sharply limited to the al
area- occupied by the proliferated muscle veolar duct and its evaginating alveoli, there
fibers. The regions, pervaded by the mare was no such delimitation in the hamster
cellular and active inflammation, some con lung. Here, the cellular as well as the stro
taining leukocytes, were also devoid of de mal proliferation extended without abate
monstrable mineral ash. -
ment to the peripheral alveoli, thus account
Hamsters (Intratracheal Injection).--Of ing for the diffuseness of the consolidation.
19 hamsters, 16 died as a result of the aabes- Following incineration, abundant arid-
totic inflammation that followed the intra insoluble mineral dust was observed in the
tracheal injection of chrysotile dust. The involved raoemi. Many individual fibers
three survivors had received only one injec could be identified; some straight or wavy,
tion and were killed 21 months after the im others coiled and forming tangled masses.
position of the lung dust burden. The aver Compared with the amount of dust found in
age survival of the hamsters that had one rat lungs, the chrysotile dust in the hamster
intratracheal injection was 16% months, lungs was much more abundant and more
with a range of 13% to 20Vi months. The diffusely distributed (Fig 9). Asbestos bod
animals that had received two intratracheal ies were found in abundance throughout the
injections survived, on the average, 14% affected regions. They were considerably months from the time of the first injection, smaller than those seen in human lung6 but
with a range of 12% to 16% months. The were readily recognized. They were best
three survivors that were killed after 21 seen under dark-field illumination with dry months were mariatad and also had exten objectives in unstained sections (Fig 10).
sive asbestotic disease. Many of the lung sections showed exten
sive consolidation with relatively few patent air spaces. In other lung sections, the consol idation was patchy, Beemingly concentrated about larger air spaces with relatively little aerated tissue between the consolidated por
However, there was no parallelism between the number of luminescent asbestos bodies seen in the unstained sections and the amount of dust found in the same field after microincineration. The amount of dust pres ent was much greater than might be sus pected from the number of asbestos bodies
tions. The consolidated portions were com observed. Most of the dust and the asbestos
posed of masses of cells with vesicular round or oval nuclei--apparently alveolar cells (Fig 7). Leukocytes were not seen. Al veoli or larger air spaces usually could not be identified in these regions except after silver impregnation (Fig 8). The argyrophil-
bodies were situated in the air spaces. When observed within tissue, the asbestos bodies and the dust were found trapped within the network oi inflammatory argyrophilic fibers and associated oells that tended to occlude the air spaces.
ic mural stroma of all air 6paoes in the solid Guinea Pigs (Inhalation) ^Barely recog
ified regions was greatly thickened by ar nizable, minimal mural thickening of an oc
borescent fibers that formed a loose network casional alveolar duct and respiratory bron-
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chiole was found in the lungs of guinea pigs disappearance of chryaotile dust from the
that had been exposed for three months to lesion, either by dissolution or by transport,
an atmosphere containing 20 mg/cu m of is not a aine qua non of healing; but that
chryeolile dust. Similar to the appearanoe of healing, at least in the rat, does take place--
such lesions in hamsters, the mural thicken even in the presence of this dust One would
ing consisted of proliferated alveolar cells like to think of the formation of the asbestos
and their supporting stroma of interconnect body as a protective mechanism by which
ing argyrophilic fibers. The lung sections of the asbestos fiber becomes sequestrated and
guinea pigs that had inhaled high concentra the tissues safeguarded from further irritant
tions (66 mg/cu m) of chiysotile dust for action by the fiber. To what extent this
two weeks or longer, manifested similar mechanism may apply is not known; but it
minimal mural asbestotic thickening in the does seem that in rats, in which asbestos
proximal portion of the raoemus. However, bodies are not demonstrable (with the opti
the number of units (raoemi) involved was cal microscope),11 healing occurs in the pres
much greater than that in the animals ex ence of apparently naked fibers.
posed to the lower dust concentration for The diminution, in time, of the amount
three months. No evidenoe of healing (sig of dust demonstrable in the tissue and its
nificant reduction in oellularity of the lesion apparent disappearance in some of the scars,
and collagenization of the stroma) was seen poses an interesting question in regard to
in animals examined up to seven months aft the mechanism by which the asbestos fibers
er the beginning of the exposure. Following disappear. It is commonly believed that
microincineration and treatment with acid, chryaotile fibers have a relatively high solu
the amount of ash seen in the guinea pig bility in tissue fluid. This would seem to ac
lung sections was comparable to that noted count for the inability to demonstrate asbes
in rats that had inhaled chrysotile dust. As tos fibers in some of the asbestos bodies
bestos bodies found in the lung sections found in human asbestotic lungs. However,
were few and very small.
dissolution of the fibers, particularly of the
coarser ones, would require a long time--eo
Comment
that it would be difficult to explain the fail
ure of peripheral alveoli to beoome involved
A chronic pulmonary inflammation may by inflammation. Furthermore, high solubil
be termed progressive if it extends from its ity would not be consistent with the sharp
original 6ite into adjoining, previously nor inflammatory localization of the asbestotic
mal air spaces, and if it remains active, re lesion in the proximal portion of the racemtaining its argyrophilic precollagenous stro us in rats. It is much more reasonable to ma and high oellularity. Such a pulmonary explain this sharp localization of the in
inflammation may be considered healed if flammation on a fairly prompt removal of
its argyrophilic stroma has been completely the inhaled or injected irritant dust from the
collagenized while its oellularity has beoome peripheral alveoli and the subsequent stag
considerably reduced.
nation of the dust in the proximal portions
In the rat that has inhaled high concen of the raoemus.7 The transport of the chrys
trations of chrysotile asbestos fibers for only otile dust from the peripheral alveoli is ef
a few months or has been injected intra fected by the alveolar clearance mechanism
tracheally with this dust, the asbestotic in consisting of a proximally moving film of
flammation remains sharply limited to the alveolar fluid.' This transport is dramatical
proximal portion of the raoemus and heals 1 ly illustrated by the increase in, and concen
by becoming transformed into a hypooellu- tration of dust in the lumen of the alveolar
lar collagenous scar. Thus, it would appear duct within 72 hours after the intratracheal
proper to classify asbestosis caused by chrys injection of chrysotile dust (cf Fig I and
otile dust as nonprogressive in the rat.
2). It may be of interest at this point to
It is of basic interest that appreciable note that the localization of the early asbes
amounts of ashesto6 fibers are demonstrable totic lesion to the proximal portion of the
within the scars of healed or healing raoemus was first described by Vorwald et
inflammation. This would suggest that the al, and reoently confirmed by Holt et al.
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647
The reaction of the hamster lung to chrys the considerably larger amount of acid-insol
olite dust is the antithesis of that observed uble mineral ash demonstrable in the ham
in rats. The lesion extends from the proxi ster lung sections than in those of rata Fur
mal portion of the racemus to the peripheral ther evidence is seen in the diffuseness of the
alveoli, thereby producing extensive consoli dust distribution in the hamster (Fig 9) in
dations in the hamster lungs. The consolida contrast to its restriction to the proximal
tions are composed of obliterated air spaces, portion of the racemus as in the rat (Fig 5).
the lumens of which are filled with masses of The reactivity of hamster tissue to chryso-
alveolar cells, mostly desquamated (Fig*6). tile fibers is significantly different from that
Although the inflammation involves the en of rat tissue, the former being much more
tire rooemus in this animal, the proximal florid. This is seen not only in the plentiful
portion shows more severe involvement production of asbestos bodies in hamster
than the peripheral portion. It is this ex lungs but also in the failure of argyrophilic
tensiveness of asbestotic involvement with precollagenous fibers to mature into colla
consequent pulmonary inadequacy that ac gen as well as in the undiminishing oellulari-
counts for the high mortality of the ham ty of the inflammatory tissue even after a
sters.
lapse of nearly two years. This difference in
With the previously given definition of the reactivity of lung tissue in the rats on the
progression in mind, it is seen that the one hand and in hamsters on the other is not
diffuse involvement of the racemus in the unique to chryBotile dust inasmuch as simi
hamster would fit the first requirement for lar and quite comparable differences in
progressiveness of the disease, if it can be these two species have been noted in their
shown that the inflammation originally was reactivity to quartz dust.10
confined to the proximal portion of the ra It is highly probable that interspecies
cemus and then extended into the peripheral differences in the efficiency of the pulmo
air spaces. This information, unfortunately, nary clearance mechanism play an impor
is not available from the present investiga tant role in the susceptibility of the different
tion. However, the finding of a more severe species to certain pulmonary diseases. It is
involvement of the proximal portion of the recognized, for example, that horses and
racemus favors the probability that such an mules working during their lifetime in mines
extension took place. The second require exposed to quartz dust will have accumulat
ment of progression, ie, that the inflamma ed a negligible amount of silica in the lungs
tion remain active and nonhealing, is a con and will demonstrate no silicosis;1' whereas
spicuous feature of the asbestotic hamster miners in the same workings will have vary
lungs. The failure of the argyrophilic fibers ing degrees of silicosis as well as a sig
to lose their arborescenoe and to oollagenize nificantly elevated pulmonary silica content.
and the persistence of the extreme cellulari- We have recently exposed rats and mioe si
ty of the involved tissues nearly two years multaneously to quartz dust in the same in
after the intrapulmonary dust deposition is halation chamber for the same length of
incontrovertible evidence of nonhealing.
time. All animals were killed immediately
Two possible explanations come to mind after the end of the dust exposure. Well-
for the difference in the disease produced in defined silicotic nodules were present in the
the rat and the hamster by the same chryso rat lungs; whereas, the mouse lungs were ab
lite dust. One explanation is that the reactiv solutely normal, and no add-insoluble dust
ity of hamster tissue to the dust is greater could be demonstrated in the mouse-lung
than that of rat tissue. The other is that the sections after miaoindneration (unpub
hamster's alveolar clearance mechanism is lished data).
not as capable as that of rats in transporting The above observations are relevant to
the dust from the peripheral air spaces prox the present investigation insofar as such in-
imally. As will be seen below, both explana terspedes differences tend to make extrapo
tions apply.
lation from animal data to human disease
There is some evidence that the hamster's unreliable. The questions to be resolved are
pulmonary clearance mechanism is not as whether the efficiency of the clearance
effective as that of the rat. This is seen in mechanism of man approximates that of the
Arch Environ Health--VoJ IS, Nov 1967
t
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8005 1467 PRODUCED BY FORD
648 EXPERIMENTAL ASBESTOS18--GROSS A 1>E TREV1LLE
rat or of the hamatpr unit whether tissue exposed to the different dust concentrations
reactivity of the rat or of the hamster more is too small, and the time allowed for matu
closely resemble that of mnn.
ration of the lesion too short to permit
A study of the ash-pattern (microindn- definitive conclusions.
eration) of a number of lungG from asbestos The results of this investigation also have
workers (exclusive of cases of ailiooasbcsto- given some insight into the relative patho
sis) has disclosed no instance in which the genicity of chrysotile asbestos dust far rats
amount of mineral dust in the lung sections insofar as a single intratracheal injection of
has been more than scanty.12-1* Other in 8.5 mg of this dust has produced minimal
vestigators have found upon chemical analy asbestotic lesions in rats. This result may be
sis that the silicate content of manifestly as- compared with that of King, et al1* who
bestotic lungs was surprisingly low.14-1* found that a quantity of more than 2 mg and
These observations approximate the findings lees than 5 mg of quartz dust injected intra
in the rat. Another similarity of human tracheally into rats was the smallest amount
chrysotile asbestosis to findings in asbestotic of ailica capable of producing demonstrable
rat lungs is the complete oollagenization silicosis in this animal. Thus, it seems that
with associated aoellidarity that may be for the rat, chrysotile has about the same or
found in "burned-out" cases of human as der of pathogenicity as quartz du6t.
bestosis.18 Nevertheless, in 6pite of the simi For the hamster, the smallest amount of
larity of the oollagenization in man and intratracheal!)- injected chrysotile dust ca
rat, there is an important and significant pable of producing minimal lesions has not
difference. The early disease in rats is multi been determined. This dose will apparently
focal, affecting the proximal portion of the be smaller than that found for rats.
raoemus; whereas in man such multifocal By the inhalation technique, using a very
distribution has not been described--only high concentration of respirable cluysotile
diffuse involvement. A possible explanation dust (86 mg/cu m), the exposure time re
of the diffuseness of asbestotic involvement quired to produoe minimal asbestosis in rats
in human lungs could be that the inflamma and guinea pigs seems to be somewhere be tion, initially confined to the proximal por tween 60 and 120 hours.
tion of the racemus because of continued The hyperplasia of smooth muscle ob
exposure, spreads peripherally, thereby be served in the asbestotic rats is very similar
coming confluent with that of neighboring raoemi. The fact that an asbestotic inflam mation may "burn out" in man, does not rule out the possibility that this inflamma tion remained active and progressive for same years alter exposure had ceased before finally attaining the terminal healed stage. There is, unfortunately, no information on the activity of the asbestotic inflammatory
to such hyperplasia observed in human as bestosis cases studied in this laboratory and is also similar to that found in bronchiolar emphysema of the lung.11 Although the ex act origin of the muscle was not determined, its location made it appear most likely that it was derived from the circular muscle in the alveolar ducts that regulate the openings of the evaginating alveoli.
process in human lungs at various intervals following removal from further exposure to
Summary and Conclusions
the specific dust.
Rats, hamsters, and guinea pigs were giv
In guinea pigs, the results of the inhala en various lung dust burdens of chrysotile
tion of chrysotile dust are very similar to asbestos; some, by inhalation and others, by
those observed in rets with respect to the intratracheal injection. An attempt was
site and extent of the lesion, but conversion made to determine the smallest amount of
of argyrophilic stroma to collagen is not en chryBotile dust that would produce a recog
countered in the sections of guinea pigs that nizable minimal asbestotic lesion. The time
had been killed up to seven months after the lapse between the imposition of the lung
initiation of the dust exposure. The amount dust burden and the death of the animal
of dust found in the lung sections is scanty varied from zero to 24 months.
and is limited to the proximal portion of the The following conclusions have been racemus. However, the number of animals reached:
Arch Environ Health--Vol IS. Nov 1967
8005 1468 PRODUCED BY FORD
EXPERIMENTAL ASBESTOSIS--GROSS A DE TREV1LLE
649
1. The characteristic early asbestotic le 9. The early chrysotile asbestotic lesion
sion is situated in, and sharply localized to, in guinea pigs resembles that of rats, but it
the proximal portion of the pulmonary ra- has not been adequately studied to permit
cemus which, in the rat, consists of a very further characterization.
short respiratory bronchiole and adjoining alveolar ducts.
2. Asbestosis in rats, caused by chrysotile
This study was supported in part by Public Health service grant OH 00132. Johns-Manville Company,
through the courtesy of Kenneth W. Smith. MD. supplied the chrysotile asbestosis.
dust, is nonprogreesive.
8. The evidence for the nonprogieeaive-
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4. The localization of the minimal asbes totic lesions is attributed to the proximal
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