Document kD0mJMqN7b44XbQp1KkOqp8ry
Asbestos Cr/xeriv DRAFT 6/4/84 R.L.H. Murphy, M.D.
OBJECTIVE:
The health effects of asbestos have become a cause of
serious concern in recent years. It has been estimated that
from 19^0 to 1979 in the United States alone, 27,500,000
Individuals were exposed to this mineral at work. Recognition
associated *>iH\
typtsuve
of the diseaseS^eausod by asbestos^ has led manufacturers to
intaddf'e enar'neeo'n* controls', ffoytde pe<&ooal profettoe tteviirJandcloNhoa c**d reduce exposure Jbyj al ternative materials and by instituting
OSlVl^
improved work practices. It has also led to widespread public:
concern over the presence of asbestos in the environment and (X potential 6ot
fear on the part of persons withA minimal exposure. This and
projections of future asbestos related illness have led to
important public policy questions; whether to remove all
asbestos in public buildings and what to do about the enormous
estimated legal liability. In this context physicians are
commonly asked for advice on the health effects of asbestos.
While abundant literature exists on the health effects of
asbestos there is much that is conflicting. Accordingly, this
has been
report
prepared by a group of experts to present an
authoritative concensus view of the current state of knowledge
while pointing out areas where additional information is
UCC 023736
A02 i 33
necessary. An attempt is made to summarize the extent of the
hazard while providing the sources on which the opinion is
based.
ASBESTOS - THE MINERAL: ge<iefic
The/\.term "asbestos" is used to describe a group of minerals which when crushed break into fibers rather than dust.
strength, heat resistance,A. and *eA flexible. This weavable rock has numerous important uses in an industrial society and world
production/ and use has climbed steadily since its commercial
introduction in the late 19th century. Geology, minerology,
and uses have been well described elsewhere (1-3)* The common
fiber types include chrysotile, amosite {cummingtonite),
croccidolite, and anthophylite.
ASBESTOS IN LUHG TISSUE:
Inhaled asbestos that is retained in the lung can become
coated with a proteinaceous, Fe staining material. The
resulting asbestos or ferruginous body is a most characteristic
index of asbestos exposure. It is usually recognized by its
beaded-necklace or drumstick
are
more likely to become coated (2-22). The majority of the lung
burden of asbestos, however, is uncoated and consists of short
A021S4
UCC 023737
AJLir>
fibers, i.e., less than 5
(2-21). These are poorly visible
or invisible on light xaicroscopy but have been demonstrated by
electron microscopy. Asbestos bodies are commonly found in
routine autopsies in the absence of asbestos related illness.
These are usually few in number and point to the importance of
developing a standardized technique to quantify the amount of
asbestos in lung tissue (to be discussed below).
BEUIGH PLEURAL ABNORMALITIES ASSOCIATED WITH ASBESTOS: Asbestos causes pleural plaques, pleural thickening and
pleural effusion. Pleural plaques are discrete, shiny, rounded lesions. They characteristically occur on the posterolateral aspect of the lower parietal pleura, but usually not on the visceral pleura, at the costophrenic angles, or at the apices. Thin plaques are smooth and greyish-white. Thicker ones are ivory colored and may have either a smooth surface or be coarsely nodular with the consistency of cartiledge. Diaphragmatic plaques are usually round and disk-like whereas those over the intercostal spaces are elongated and have an irregular configuration. Microscopically, plaques are seen to be collagenous connective tissue, cell-poor, with few fibrocytio nuclei, arranged in undulating fashion in a coarse.
UCC 023738
A02 1 8b
basket-weave pattern, and containing only few thin-walled
capillaries (23, 24). Elastic staining shows intact lamellae
beneath the plaque in continuity with the surrounding normal
parietal pleural connective tissue, suggesting that plaques are
extrapleural and develop between the latter and its covering
layer of mesothelial cells (23). Some calcium deposition is
present in a high proportion of plaques, and occurs as granules
along the course of the collagen fibers, ceasing abruptly where
the connective tissue changes into normal pleural tissue (23).
Cuboidal mesothelial cells may occur at the edge of the plaque
(23), occasionally with metaplastic changes (24, 25).
Although coated asbestos fibers have not been reported in
relation to pleural plaques, in the extensive series of 172
sections examined by Meurman (23) under polarized light,
examination of ashed tissue has revealed the presence of
uncoated fibers in many cases (26, 27). With electron
microscopy, it is apparent that Dost plaques contain many
small, submicroscopic fibers. It is of interest that these are
more concentrated in the calcified zones than in the fibrous
zones (28).
of asWsfos
The usual effescett on ttfhc e visceral pleura of- asbestos- is a A
focal or diffuse thickening. This varies from a thin milky
UCC 023739
A02 186
white discoloration, detectable only on gross visualization^to
a thick peel encasing the lung and easily seen on chest
roentgenograo. In contrast to plaques, which are most likely a
roentgenologic diagnosis in an otherwise healthy person,
pleural fibrosis may cause symptoms and impair pulmonary
function.
PLEURAL EFFUSION . .
, . i, i ,
.i
beer, associate*
4eJe4o|meM ot
Asbestos^-caus-e-e- pleural effusion, usually an exudate that
may persist for several months to a year. It may recur on the
same or the opposite side after several years. Macroscopically
the fluid is often blood stained and microscopically
erythrocytes and/or mature lymphocytes are commonly seen
(Hillerdal, Gunner Thorax 1981: 36: 669^675).
PULMONARY ASBESTOSIS
DEFINITION The term asbestosis should be reserved for the
interstitial fibrosis of the pulmonary parenchyma due to asbestos. While pleural abnormalities are commonly associated with parenchymal disease, they should be separately classified as there are differences between pleural and parenchymal
UCC 023740
A02 ! 8?
fibrosis in epidemiology, clinical features and prognosis. Pathologic Features
In lungs with minimal or moderate fibrosis there may be no changes visible grossly. When they occur, the microscopic changes in pulmonary asbestosis vary from small areas of basal fibrosis to a diffuse, fine fibrosis of both lungs. In general, the more severe the process the smaller the size of the lungs. The cut surface of the lung has a dark brown color with streaks of a fine, grey colored fibrosis that generally appears to affect subpleural areas first, often quite extensively. This fibrosis outlines lobar and lobular septa and focally interdigitates the lung parenchyma. The parenchymal fibrosis, which has a linear and reticular appearance, affects the lower lobes first, then middle lobes, and eventually upper lobes (10, 29i 30). In advanced oases honeycombing is found commonly in the lower lobes and subpleural regions (30). The honeycombing is characterized by cavities that range from 1 to 15 mm and have thick walls (31). The pleural surface adjacent to the fibrosis is invariably involved in the fibrotic process, either mildly, giving the appearance of a milky covering to the fibrosis or with widespread fibrosis and symphysis (29 30). The hilar lymph
UCC 023741
AQ2
1
8
1
J
nodes are not usually enlarged or otherwise affected (10, 32).
There is no evidence that asbestos causes enphysema, but there
has been no systematic autopsy study to quantify the degree of
emphysema in asbestos workers compared to controls.
Asbestosis is a restrictive lung disease associated with
dyspnea, clubbing of the fingers, basilar crackles, and
widespread irregular opacifications on roentgenograms. The
latter are usually more prominent at the lung bases. Pleural
thickening and calcification may also be present as noted
above. The vital capacity is usually reduced and gas exchange in ew( cases of futmonaty
impaired. Cor Pulmonale is a common result^ When many or all
these features are present the diagnosis is made without
difficulty. However, in the absence of the opportunity to
examine lung tissue microscopically, the diagnosis is always
inferential. The certainty increases with increasing numbers
and severity of typical clinical abnormal!ties. We will now
review individual features commonly associated with the
interstitial lung disease due to asbestos.
'
When asbestosis is advanced, the chest roentgenogram
appears to be the most valuable single exanination. A diffuse
irregular interstitial pattern coupled with numerous pleural
plaques or extensive pleural thickening in a person with known
? ^ ~ N\
Jelmp
UM(t* ,L/"*
e^eaiHj
of draiujej
^tspASes loWH q*w be assevk^
1 UCC 023742
toe GGAststavt
<*)&( a ^e>\, trrok)ny '
exposure presents little diagnostic difficulty. It is possible for a patient with asbestos induced pleural disease to develop a nonspecific interstitial fibrosis but this is generally regarded as uncommon. The difficulty with the use of the chest roentgenogram relates to the detection of lesser degress of interstitial fibrosis. Efforts have been made to standardize the interpretation of roentgenograms in the pneumoconioses. The most widely accepted and extensively studied method for assessing the degree of roentgenologic involvement in the pneumoconioses was developed by the International Labour Organization; and is currently called the ILO-1980 Classification (38). This scheme evolved from studies of miners and focused initially on the detection of silicosis. The x-ray appearance of silicosis is characterized initially by small rounded opacifications called p, q, and r respectively. The classification was later broadened to describe abnormalities which occur in asbestosis and do not have a rounded appearance. These are fine, medium and coarse, small irregular opacifications opacifications and they are called s, t, and u, respectively.
UCC 023743
A02 1 9C
The number of these abnormalities in a given area of the chest x-ray, whether rounded or irregular, is called their PROFUSION. The PROFUSION was initially graded as 0 for none, 1 for slight, 2 for moderate, and 3 for severe. It became apparent, however, that even experienced readers had difficulty in grading opacifications into these categories in a reproducible fashion. If, however, observers were asked to give two classifications, i.e., the one category they thought was most likely, and another which they thought might also be considered, the observer reliability (i.e., in terms of reproducibility) was considerably improved. This method of giving the observer two options (the one he thought most likely, and next most likely) was called the expanded classification. It formed a 12 point scale that has proven to be very useful epidemiologically.
It is likely that an individual who develops asbestosis moves more or less uniformly from the normal roentgenologic appearances (~/0, 0/0, 0/1) to the abnormal 1/2, 2/1, 2/2, etc. The problem is that the interpretation of the lesser degrees of abnormality on this scale is highly subjective and that numerous causes of such roentgenologic shadowing other than
0219 |
UCC 023744
asbestosis exist. Accordingly, criteria other than roentgenographic ones have been sought. To evaluate the usefulness of a given test used as a criterion for asbestos, the results of the test need to be known in unexposed persons who are similar in age, sex, race, smoking habits, geographic location, other environmental exposures and socioeconomic status. Information is often scanty in this regard particularly since few longitudinal studies are available to examine the variability of criteria that are indicative of early interstitial fibrosis. Information is available on some and will now be reviewed.
A 0 2192
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Microscopic Appearances
There is little information on the early pathophysiology of asbestosis in humans. Current opinion is largely based on inferences from animal studies. The initial reaction in the interstitial tissue is believed to resemble that of other forms of interstitial pneumonia with mixed leukocyte infiltration of the alveolar walls, moderate numbers of phagocytes in the alveoli and varying degrees of organization with fibrosis C 33 > 3*5). The process is believed to be concentrated initially in peribronchiolar regions (10, 29). The initial lesion is a bronchiolar wall thickened by the accumulation of collagen and reticulin. Metaplasia of the squamous and epithelial cells often occurs. Alternatively there may be cuboidalizaticn of the epithelial cells. Characteristically, in early stages, only an occasional pulmonary subunit is involved. More advanced cases show a diffuse fibrosis, involving the interstitium, frequently associated with areas of solid fibrosis where laminated collagen may replace the entire parenchyma. Such areas may also show alveolar cell hyperplasia and sclerosis of vessel walls (29). (The presence of numerous
A 0 2 19 3
UCC 023746
uncoated and coated asbestos or ferruginous bodies is an important feature confirming asbestos exposure.)
Before a pathologic diagnosis of asbestosis can be made a variety of considerations must be taken into account including the following:
1. There are numerous other causes of interstitial fibrosis. 2. The distribution of interstitial fibrosis in asbestosis may be spotty, and therefore, adequate sampling of the lung must be done. The lingular and the right middle lobe are particularly prone to nonspecific fibrosis and sampling must take this into consideration. 3. While advanced asbestosis characteristically shows numerous asbestos bodies, this may not always be true because fibers are cleared from the lungs and undergo dissolution and fragmentation with time (31). Thus, in some cases it may be difficult to demonstrate fibers. In our opinion this is rare.
4. The absence of a history of asbestos exposure removes the diagnostic certainty, but the presence of numerous asbestos bodies, in excess of those found in the lungs of the "non-exposed populations" may lend credence to a diagnosis of asbestosis.
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A02 194
The Pneumoconiosis Committee of the American Pathologists and the National Institute for Occupational Safety and Health dealt with these considerations when formulating the following statement with which we concur. "The criteria that permit the pathologist to establish the diagnosis of asbestosis have evolved during a review of many cases of the disease. Presently, the minimal features that permit the diagnosis are the demonstration of discrete foci of fibrosis in the walls of respiratory bronchioles associated with accumulations of asbestos bodies. These morphologic findings, although adequate to establish the diagnosis of asbestosis in an early evolutionary stage, have not been shown to result in functional and radiologic alterations. The demonstration of asbestos bodies in the absence of fibrosis is insufficient evidence to justify the diagnosis of asbestosis. Conversely, a definite diagnosis of asbestosis can not be made by the pathologist in cases that show characteristic fibrosis in the absence of asbestos bodies or other evidence of fibers. Because asbestos bodies are unevenly distributed in tissue, an adequate number of samples should be examined thoroughly.
In the lesions, asbestos bodies are located either in the walls of the bronchioles or in the air spaces, where they are
UCC 023748
often closely associated with macrophages. When only a single asbestos body is found in a histologic section, it is necessary to demonstrate additional bodies or uncoated fibers (either in deeper sections of the same block or in other samples of
if tissue) to establish the diagnsosis of asbestosis (31).
They further state that "although the demonstration of asbestos fibers by the electron microscopic study of tissue digestates provides evidence of exposure, ultrastructural technique can not be used to establish definitively the etiologic role of asbestos in disease."(31)
This Committee has published guidelines for methods of assessing lung fiber concentration and pathologic grading of asbestosis. The certainty of the cause and effect relationship of asbestos to the fibrotie process increases with increasing numbers of such particles and fibers visualized by light microscopy. Electron-microscopy of proven cases shows very large numbers of uncoated and very fine particles and fibres (35).
Since asbestos bodies and fibers appear in lungs without evidence of asbestos related disease, the question arises as to how many such bodies are necessary to infer a cause and effect relationship between asbestos particles and fibrosis. No
UCC 023749
precise answer exists, but efforts to quantify the numbers of
asbestos particles in known cases indicate that it is high. In
the cases of asbestosis studied by Whitwell, the lungs nearly
always showed three million light visible fibers per gram,
control lungs generally showing less than 20,000 fibers per
gram (36) .
The meaning of particles and fibers visualized by
electron-microscopy^when few or none are visualized by light
microscopy, awaits further epidemiologic and pathologic
evaluation. However, asbestos fibers seen only by electron
microscopy certainly mean that exposure has occurred. What is
not known with precision at this time is the number of fibers
that are present in the lungs of persons in the general
population. The accuracy of estimation of the total lung burden
of asbestos assessed by electron-microscopy has not been
carefully delineated.
cHr^Sbh'k
Chi1 /tfto jn-e, ^(^lung containing a million fibers per gram of
^ k be
'v
dry tissue is believed consistent with the background exposure
A
of the general population. In contrast, a lung containing a
million fibers of amosite of crocolite per gram has been
considered to reflect a substantial occupational exposure to
asbestos dust* (Churg A.j Fiber counting and analysis in the
^02 J 9.7
UCC 023750
jf _
diagnosis of asbestos related disease. Hum Pathol 1982, 14:
381-92). An electron microscopic field^of necessity^represents
a small sample of the lung and analysis of multiple fields are
required to reflect the true asbestos lung burden. In our H? bt done
opinion, additional studies^on the prevalence of the various
asbestos fiber types and their variation in the lungs of
normals and persons with various asbestos related diseases*need
to be duueT
Clinical Diagnosis
In the usual clinical setting, the diagnosis of asbestosis
vjrttv*jf ft* benefit
+*>
has to be made -i-a--tire--abconoe of lung tissu^ Open lung biopsy
footf* *
i A Hi* asseKmeHt t
.
is rarely indicated fci- aococeing workers for compensation
,
"Svc benefVf of (Vie doubt should be ve* whene^ (he cK'nimf feahj/er qaA occupy hcW
purposes, . Indeed, when 44* is done, careful attention must be
Cutesiiie (Ml
A if d Wopy
a<e compatible
paid to the sampling considerations mentioned above and the
vjdh
surgical technique employed (37). In most instances, the
s+,1
clinician and epidemiologist must rely on indirect methods of A CpVC*dHcrtS
diagnosing asbestosis. The diagnosis is based on observations A
from pathologically proven cases.
of d0$ Ooh Mean
0"f f^rtchdr\ OV1 pflyStCoJl dl'Sdbtfl kj i$
psejeuK
cow|pei\Qjtjor\ anJQ'dtJ Jkou(^ tWefate ?(uayf be a
based ttjwo Hie
cKmW
J>hys(o(ogrc featbfes t>f fa iWitfirfcia/
Ca&e-
A02 1 9s
UCC 023751
Dyspnea
Asbestosis has been described as a monosymptomatic
disease, dyspnea being the major complaint of the affected
individual (39). There is no doubt that shortness of breath is
common and troublesome in individuals with clinically
but ift
ases rany net be fMpse*r a si-jnt'
significant interstitial
fibrosis. Dyspnea,
a
howev er,inf common in
many other cardiopulmonary disorders and is particularly
pfevale.nt~
factors likely to be rclcvcnt in Instances
A
of suspected industrially related disease. Accordingly, it is
a (one not useful to use dyspnea^as scientific evidence 9* the
presence of asbestosis.
Clubbing
Clubbing of the fingers occurs in pulmonary asbestosis and can A
be quantified objectively. It occurs more commonly in
asbestos exposed workers than controls (40, 41, 42). The
diagnostic usefulness of clubbing is limited, however, by two
important considerations. First, there are many other causes Ccrtgefli+ed clubbing,
of clubbing including heart disease, liver disease and other
/A WKex feesent,
lung diseases. Secondly, clubbing is a late finding in
pulmonary asbestosis (43). Thus, since the majority of persons
with significant pulmonary fibrosis do not have clubbing and
ttrs-t many asbestos workers with clubbing may have it for
reasons other than pulmonary fibrosis, the diagnostic
usefulness of clubbing is limited.
A 0 2 1 Q,)
UCC 023752
Basilar Crackles
Crackles have been recognized as a feature of asbestosis
for over 50 years and have been believed by nany to be an early
finding (**4, 45, 46). They have been described as
characteristic in their sound ("fine," "cellophane,n "veloro," (fc>i PPfaf i bflsaf)
"close to the ear") and in their distribution (47). They A
*
differ in quality and tiding from the crackles of bronchitis
which tend to be fewer in number, more medium in quality and
earlier in timing. Eronchitic crackling begins with the
beginning of inspiration and usually discontinues prior to mid
or late inspiration. Characteristically, the crackles of
interstitial fibrosis are pan-inspiratory or have an
end-inspiratory accentuation. They appear first at the bases
in the mid axillary lines and tend to spread toward the
posterior bases. As the disease advances, the crackles become
distributed at progressively higher levels up froia the bases
(47). They are often difficult to distinguish from the
crackles of congestive heart failure. Eeported rates vary, but
about half of the persons considered to have asbestosis on
clinical grounds have crackles (44, 48, 49, 50); prevalences in
exposed population range from about 10-20?. Such prevalences
depend on duration of exposure, the age of the population, and
A 022
UCC 023753
prevalence of other diseases causing fine crackles. Observer variability exists in chest auscultation, but this can be reduced by training and waveform analysis (51, 52, 53). In summary, under carefully controlled circumstances crackles can be useful in diagnosing interstitial fibrosis. They do not appear to be specific, however, for the interstitial fibrosis related to asbestos.
A 02 20 1
UCC 023754
Diffusing Capacity ~ x
~|kjp Owbcn
V. cp)
Diffusing capacity (or transfer factor) has been the subject r< /V*
of numerous studies with somewhat conflicting results. In most
population studies or normal studies it is lower in asbestos
exposed workers than in normal controls although not always at
a statistically significant level (ill, 1(2 , 51*, 55, 56 ). There
is not always a clear relationship to dust exposure indices
(57, 58). It has, however, been shown to correlate with the
severity of the histologic lesion in interstitial fibrosis
(59), and its reduction can precede roentgenologic
abnormalities. At this time a reduction of the diffusing
capacity in an asbestos worker, in the absence of other known
causes for impaired gas exchange, would provide evidence for
asbestosis, but further study is necessary to elucidate its
precise role.
OTHER STUDIES
Diagnostic-st udi es have been employed for monitoring
persons exposed to asbestos. A reduction in roentgenologic
lung volume appears promising, since it is applicable to serial
studies of patients, but it requires careful control of
inspiration. This approach has not yet been taken in a large
number of subjects exposed to asbestos.
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*0220?
Lung volume is also highly correlated with total lung
capacity measured by helium dilution or body plethysmography. Z' A
-
Inspiratory capacity vias shovtn by Becklake et al. to be suitable --
for surveillance of workers^but is not likely to add much more
than vital capacity (VC), as the two tests are highly
correlated (61). Evidence has been presented that increased
elastic recoil^in asbestos exposure and in intersitial fibrosis ---
f? ___ not associated with as be sto ha^f a peribronchial rather than an
alveolar location (62, 63). This finding suggests that tests
for small airways disease Bt-grt jin the future^ be applicable to early detection'l^f62K In onestudy, neither closing volume nor
closing capacity correlated with the duration of exposure or
with the asbestos-dust index (64). Gallium scanning,
ventilation perfusion scanning, bronchoalveolar lavage, and
transbronchial biopsy need further evaluation with respect to
their usefulness in diagnosing asbestosis. CT scanning offers
the advantage of aiding in the differentiation of pleural from
parenchymal disease. The value of CT scanning in the detection
futlhe< of interstitial fibrosis also needs to be evaluated.Thus, at
bdataul basal 'trtiiata'J ^
this time, criteria other than^crackles, restrictive lung
(*oncwrfe
function#* abnormality, reduced diffusing capacity of the lung
CL .
*
and roentgenogram consistent with interstitial fibrosis
A02203
UCC 023756
er profus,on .v ,'^U. *& IF* K" '/ L0 U/C'm)
jiff' 1/2 -or--*rHe are either impractical, of unproven value, or are
not likely to yield additional information because of their
high correlation with one of these four. In our opinion,
combinations of these abnormalities are more reliable in terms
of specificity, relation to duration of exposure, consistency,
and predictive value. Surprisingly, little work has been
carried out on combinations of abnormalities. Even the
investigators who employed sophisticated statistical techniques
have not specifically reported on them.
COMBINATIONS & N\p
JfSCfiW qtwffe
useful i'f telied upon as
Stheh Combinations are not likely to prove Ire .show the-
ilW<aV7^
of ft*
so-called
is likely
A
earliest change in floh'cfably
to become abnormal A
. ca fte qccwl'S e>r chance awaPj
asbestosis. Intuitively^ one test
first. It is likely that the
*
first abnormality is not always the same one (e.g., one worker
(Si'fl^le breed* di FrWj opacity)
Cffclcfes
may have only abnormal Dsb, and another only -ra-l-e-s as the first
manifestation). This has been demonstrated with respect to
restrictive lung function pattern and reduced Dl^C 6 5)* It is
(HjCWA
likely that observations will have to be made in large groups of efpeyerf of tftwe
over long periods to delineate clearly the best single test for A
early diagnosis of asbestosis if, indeed, a single initial
pathway exists.
A02204
UCC 023757
DIFFERENTIAL DIAGNOSIS
Streaky densities on chest x-ray consistent with a
parenchymal disease have many causes, numbering about 125
according to Janower and Blennerhasset (66). Some of the more
common ones are summarized in Table 1. Skin changes, Raynaud's
phenomenon, and esophageal symptoms point toward the diagnosis
of progressive systemic sclerosis. Likewise, skin rash,
positive lupus erythematosus cell test, positive test for
antinuclear antibodies, or evidence of polyserositis suggest
the diagnosis of systemic lupus erythematosus. A lupus-like
syndrome due to a drug (hydralazine and procainamide) must also
be excluded, usually by the medical history. Although
sarcoidosis can produce a severe restrictive defect with
parenchymal opacification, clues in the form of commonly
asociated features, such as a history of hilar lymphadenopathy,
hypercalcemia, or uveitis are helpful. Polyarteritis nodosa
and eosinophilic granuloma are usually readily distinguished.
The roentgenographic appearance of miliary tuberculosis i3
usually quite different from that of asbestosis. A viral pneumonia is more difficult to distinguish roentgenographically
but history of the onset of the illness with a fever or
flu-like 3yndrome or the presence of an associated epidemic is
helpful.
'
UCC 023758
Congestive heart failure can produce fine crackles,
restrictive lung function pattern and reduced DItb as well as
-
nonspecific irregular opacifications on roentgenogram. It is
usually easily excluded by history or physical examination.
Chronic obstructive pulmonary disease (COPD) presents more of a
problem. Irregular opacifications, such as seen in asbestosis,
are not so prominent a feature of COPD. Bullae and
over-distended lung fields also are not features of asbestosis.
The FEVlrFVC ratio helps distinguish between the two diseases,
but certainly obstructive lung disease and asbestosis may
coexist. The relative importance of cigarette smoking and
asbestos in the development of the combined problem of
restrictive and obstructive disease may be difficult or even
impossible to assess.
Since an unusual feature of asbestos exposure is bilateral
pleural thickening, the question arises as to the helpfulness
of such thickening in indicating that a patient with pulmonary
fibrosis has asbestosis. Indeed, asbestos appears to be a
rather potent stimulus for the development of pleural
abnormalities. Selikoff found pleural fibrosis in 65? of
affa
persons he studied 40 years Proa--fcfe-e--op-act--f* their initial
Xrv
exposure to asbestos.
patients with no known exposure
_-- to
UCC 023759
U/ i Qj~\
asbestos, or other known hazardous materials (67), the question
as ^
arises t-h-a-t an indirect or occult exposure to asbestos night
have caused the pleural thickening. Severe pleural thickening
is not coacion even
asbestos exposure. It was present in
only 2.52 of the asbestos workers studied by Selikoff. Since
there were no controls in that study, it is difficult to be
certain that asbestos was the cause of the pleural fibrosis in
those subjects. Indeed, Gilson reported in 1969 that pleural
thickening was found
187 of 3660 routine roentgenograms of
the chest in Great Britain (68). He conducted one of the few
objective studies of pleural thickening by comparing the
asbestos exposure of 113 of the 187 subjects with that of 113
age and sex matched controls. He found "a slight but
unimpressive excess of positive histories of exposure to
asbestos among the cases." Thus, it is not necessary to assume
an occult exposure to asbestos in every instance of pleural
thickening; the presence of pleural thickening is not
definitive evidence of asbestos exposure. Other causes, such as
other dusts and residua^ from infections, are almost as common.
In contrast to the relatively nonspecific finding of pleural
of coicifej
us*ufk b*lateJ hrttf
thickening, the demonstration of^ pleural pi aques^
r
S-fmrtvffr
oq!eif-i c-e-ti-on is better evidence of asbestos exposure.
A0220
UCC 023760
Unfortunately, the latter usually occur^ only nany years after
the onset of the exposure, thus Uniting usefulness for early
diagnosis.
A major problem exists in the differential diagnosis when
more than one disease is present, whether it is congestive
heart failure, COPD, or other chronic lung disease. There are
diseases unrelated to asbestos exposure but with similar
symptoms, and these do occur in some persons with asbestos of
JC clear history of exposure to asbestos makes
diffuse interstitial fibrosis from other sources
almost impossible. Fortunately, significant degrees of
interstitial fibrosis are rare in the general population. The
prevalence of lesser degress of interstitial fibrosis is not
well known and considerable caution has to be exercised in
attributing all such phenomena to asbestos exposure, either
known or occult.
In summary, in assessing an individual
for asbestosis a
variety of tests have value. In the absence of microscopic
d. Oft OiOft sty of lung tissue no single examination^can be considered
pathognomonic. The greater the number of abnormal criteria,
the more likely that asbestosis is present, but other illnesses
need to be carefully excluded.
A02208
UCC 023761
The diagnosis of interstitial fibrosis was discussed with this degree of detail because it is at the core of the attributability of illness to asbestos. When significant asbestosis is present there is little difficulty with the cause and effect relationship. Conversely, the certainty of attributing decreases with decreasing evidence of asbestosis.
UCC 023762
Jr^lZ I; Some Diseases To Ee Considered in the Differential Diagnosis of Asbestosis
Congestive Heart Failure
Chronic Obstructive Pulmonary Disease
Interstitial Fibrosis
Progressive Systemic Sclerosis
PSS Eosinophilic Granuloma
Lupus
Miliary tuberculosis
Hydralazine
Viral pneumonia
Prccaicanide
Rheumatoid
Sarcoidosis
Idiopathic
Polyarteritis nodosa
Interstitial Fibrosis plus Pleural Thickening
Rheumatoid lung
Blastomycosis, other fungi
Drug induced
Other pneumoconiosis (e.g. talc)
Silica
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REFERENCE LIST
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