Document jmNzkL07on5aMwp00meDZand9
Asbates Fibre) in the Air of Town)
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Most of the asbestos found in our millipore filter samples was present as single fibres or as ultimate fibrils (Figs. 2 and 3). These could be estimated by counting except that some were obliterated by other contaminants. There were, however, some complex agglomerates (Figs. 4 and 5) and it is impossible to decide in any meaningful way how many particles such masses represent. Such a mass lends to break up when the filter is extracted with acetone and there are far more fibres near an agglomerate that) id the rest of the sample. Agglomerates might also break up when meeting surface active substances in the luDg.
These observations are offered as an indication that asbestos is a contaminant in the air of cities and as an explanation of the asbestos bodies that have been found in the lungs of persoos not industrially exposed to asbestos. The concentration of fibres is small and there is no indication whether the fibres are pathologically significant.
Asbestos fibres are removed from tbe Jung by a mechanism (Botham and Holt, 19SS) that involves tbe production and eventual fragmentation of asbestos bodies. Evidence from animal experiments suggests that once a fibre is coated it is no longer pathogenic but that the uncoated fibres produce the pathological effects. Since the rate of coating depends on the nature of the fibre, chrysotile (and glass) fibres being coated more quickly than crocidolite and amosite, fibres of the amphiboles are potentially more dangerous. Asbestos fibres in the lung are coated in the cytoplasm of
macrophages and giant cells, but if several fibres are retained by the tame cell only one is usually coated. Moreover, the number of macrophage* in at) area of lung is limited. Thus, while low concentrations of isolated fibres are likely to have minimal pathological significance, a high local concentration produced by the break up of an agglomerate of fibres, might represent a potential risk.
Arknovltdtemnttr--Ttie author* are indebted to Dr. Fuzdiuch* (DOssetdorf), Mr. R. Rendall
(Johannesburg), Miss Tmooarose Thomvadotit* (Reykjavik) and Mr. J. Me K. Ellison (London)
who provided millipore filter (ample*, and to Professor J. Teuimoic (Prague) who provided facilities
for sampling.
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REFERENCES - '"V"-;
Awarn. L and TmfltuecK W. M. (1966) The incidence of asbestos bodies in the lungs at random
necropsies in Montreal. Can. med. Ass.J. PS, 1179-1182.
Bionon J., Com J., Bonhams O., Jaukand M. C., Duroua. C. and Pinchon M. C. (1970) Incidence
of pulmonary ferruginous bodies In France. Emir. Kei. 3,430-442.
Botham S. K_ and Holt P. F. (1968) The mechanism of formation of asbestos bodies. J. Path. Bart.
I 96,443-453.
Cauna D., Terror R. S. and Oaoas P. (1965) Asbestos bodies in human lungs at autopsy. J. Am. med. An. 192, 371-373.
Oamden J. A, Pakiczx J. and Smith W. L. (1970) Determination of chrysotile in airborne asbestos
by an Infra-red tpoctrometric technique. Atmospheric Emlronmenl 4. 667-670.
Ohmii I., MoLTTNt O. and Puccrm U. (1967) Asbestos bodies in tbe lungs of inhabitants of Milan.
Meina lac. 5*, 223-227.
Pontan H. O. and Thomson K. J. (1970) Pulmonary asbestos In Dunedin, New Zealand, asseased
by two methods. PathoUrpy 2, 175-182.
PoiUACK A and Sacks M. 1. (1968) Prevalence of asbestos bodies in basal lung smears. Israel J
Med. Set. 4,223-226.
Rickaum A L. and Badami D. V. (1971) Chrysotile asbestos in urbtn air. Nature 234, 93-94.
RoBtaTJ O. H. (1967) Asbestos bodies In lungs at necropsy. J. din. Path. 20, 570-S73.
Takumaw 1. A (1968) Asbestos as an environmental harard. J. occup. Med. 10, 32-37.
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!
Thomson j. O. and G*AVn W, M., Jr. (1966) Asbestos as an urban air contaminant. Arch. EaihlctP, " U. 458-464.
Um C.-H. (1971) Study of the secular trend in asbestos bodies in lungs in London 1936-66. Br.
med. J. 2,248-252.