Document 2qORGn9wJMR9bGM1dxnj2XXg7

f \ ) d-3 PLAINTIFF'S EXHIBIT CAPJ76 MEDICAL ASPECTS OF OCCUPATIONAL EXPOSURE TO ASBESTOS Hilton C. Lewinsohn, MB., BCh., Corporate Medical Director Raybestos-Manhattan, Inc. . 100 Oakview Drive -'Trumbull, Connecticut: 06611 DIH. . (Talk to Members of Friction Materials Standards Institute, Inc. Annual Meeting on June 22, 1977) ASBESTOS INFORMATION ASSOCIATION/ ^ North America ' 3835 K Street, N. W. Suite 402 y/ashingtcn* D. C. 200GS ASARCO ALV 0002674. . Introduction It always pays to define "asbestos", even when it seems that it is unnecessary to do so because of the sophistication of the audience being addressed. "Asbestos", is a generic term for a variety of hydrated silicate minerals which have one common attribute, namely, the ability to be separated into relatively soft, silky fibers. Although the name is ordinarily associated with those varieties which have technologic importance, it is applicable to all minerals which fit the above description. The term "asbestiform minerals" is perhaps most descriptive. .There are two main classes depending upon their crystal structure, namely, serpentine and amphiboles. The sole member of the serpentine class is chrysotile asbestos which comprises nearly 95% of world production. There are five asbestiform varieties of amphibole, namely, crocidolite, amosite, anthophyllite, tremolite and actinolite. The uses of asbestos are many and the physico-chemical properties of idle different varieties determine their commercial importance. The medical complications resulting from exposure to asbestos are also related to the physical and chemical properties -of this fibrous mineral species. ASARCO ALV 0002675 B. The "Asbestos Diseases" and Other Conditions Associated with Asbestos Exposure______________________________________________________________ 1. Benign, non-disablincr conditions (a) Asbestos corns, warts or callosities Workers handling raw asbestos fiber as it arrives from the mines, often get splinters in their hands. These splinters may cause an inflammatory reaction which eventually subsides leaving a hard, thickened, raised area of skin with a central core of fibrous tissue. There is no information available to in^ dicate whether this mode of asbestos penetration can lead to subsequent malignant change in distant organs and skin cancer has not been recorded as a complication of asbestos warts. The skin continually renews itself and the corns eventually merely mark the spot where fibers once were. (b) Asbestos Bodies : In Belfast about one in five of elderly men coming to autopsy had a sufficient number of asbestos bodies in his lungs for these to be detected by examining one or two microscopic sections.^- _ 2 Thomson , in 1964, reported on investigations which began in Cape Town, South Africa, in i960. These investigations were intended to determine the extent to which the ordinary urban dweller is exposed by occupation or environment to the inhalation of asbestos. Over 25% of the lungs of 500 consecutive ASARCO ALV 0002676 autopies on subjects of 15 years and over showed asbestos bodies by the method used. Thomson started a similar study in Miami, Florida, in 1961 while exchange professor there. The overall positive findings were remarkably similar to those in Cape Town. In 85% of the positive cases the bodies were scanty, were not associated with pulmonary changes and were regarded as the result of contamination of the urban atmosphere. In 6% of all the males examined' the bodies were numerous and were.presumably of occupational origin. .1 have classified asbestos bodies under benign non-disabling conditions because they are not in themselves indicative of disease. Asbestos-bodies are encapsulated fibers probably inert and indicative of asbestos exposure. The implications of Thomson's findings will be discussed later in this paper. 3 According to Selikoff, . asbestos bodies do not appear randomly distributed among the general population of New York but are, to an important extent, occupationally related. - Asbestos fibers are not all coated and converted into bodies. Uncoated fibers may persist for many' 4 years after exposure to asbestos ceases. It would appear that asbestos bodies contain inactivated fibers and that the uncoated fibers are the ones associated with disease causation. Other mineral ASARCO ALV 0002677 fibers can form similar bodies and \ ome people prefer the term ferruginous bodies."* Glas i fiber, silicon carbide, filamentous aluminum silicate and fibrous talc could be confused with coated asbestci fibers. Pooley6 has found that asbestos iydies in mesotheliora; cases from 4 different countries were associated with amphibole exposure and that asbestos bcties detected in these lungs were all derived from am.yibole fibers. The importance of this will become appat4.it later. (c) Pleural Plaques. Pleural Fibrosis and Plearal Calcificatio The lungs are invested by a thin layer of connective tissue known as the pleura. This membrane yovers the outer surface of each lung and is then ref14cted on itself in the midline to cover the inner surface of the chest wall. A potential space exists between the two layers. Inhalation of asbestos dust results in vAy characteristic changes in the pleura which can've regarded as an index to exposure. Pleural charges may - '.' . -\ also occur after infections such as pneumonia ar.d \ pleurisy, tuberculosis, injury to the chest wall \>nd exposure to commercial talcs. Pleural plaques are well-defined areas of pleAral thickening which are found on the domes of the diaj> -.ragm, \ along the rib margins and in the.gutter which runs i'.or.g the margin of the vertebral column - the paravertebii L gutter. These may be recognized on X-rays but often ASARCO ALV 0002678 are ncft seen and are primarily discovered at autopsy. /Pleural plaques or pleural thickening may become calc/.fied. Pleural calcification has been described by / the widespread presence of calcification of the pleura in' communities exposed to asbestos dust. Kiviluoto r/.ported on the finding of pleural calcification among people in a rural community living in the vicinity of mineral sepiolite, which is present in concentrations of up to 5% of soil in certain parts of Bulgaria with high rates of pleural calcification, might, be responsible for non-occupational pleural calcifications in various countries. Gibbs has studied the epidemiology of pleural 'calcification and found that pleural cal cification among Quebec miners was not due to exposure to chrysotile. itself, but.to dusts produced during mining operations. The distribution of cases within the Quebec industry showed that exposure to dusts responsible for pleural calcification occurred mainly in Thetford Mines and were therefore.associated with local geological formations. Talc and mica in the' Thetford area were considered the most likely agents responsible for pleural calcification in Quebec chrysotile workers. Are these pleural changes truly benign or should ASARCO ALV 0002679 6 they be considered as precursors of malignant changes? This question cannot yet be answered adequately, but in Gibbs' study, persons with definite and suspected pleural calcification showed no overall excess mortality when compared with all persons employed in the Quebec asbestos mining and milling industry born between 1891 and 1920. Elmes^ found pleural plaques in 25* of cases . of mesothelioma studied by him in Belfast. He stated that when the exposure was mixed, i.e. to more than one type'of fiber, the presence of pleural plaques in a population seemed to indicate a level of exposure capable of producing mesotheliomas. Edge^ found that shipyard workers with pleural plaques who had mixed exposure to asbestos (without evidence of pulmonary fibrosis) had a 2.5 times increased risk of developing lung."cancer when compared with the general population. ` 12 Leathart described the lung function results in 181 asbestos workers and concluded that asbestosis was usually, but not always, associated with lung function defects "while pleural calcification alone had no effect on lung function. Becklake showed that, while pleural calcification alone appeared to have no adverse effect on lung function, diffuse pleural thickening was accompanied by a reduction in certain parameters of pulmonary function. Pleural changes have been known to be associated with asbestosis for a long time, but changing circumstance ASARCO ALV 0002680 frH in industry have reduced dust concentrations in factories and intermittent exposure elsewhere. The typical asbestosis is becoming less common and less severe than it used to be and has become replaced by a very slowly progressive disease in the lungs, while the well re cognized pleural changes are still occuring to the same extent. These pleural changes have become "more obvious" because the underlying lung disease is minimal. There may well be some instances where pleural changes occur in the absence of underlying lung disease. . 2. Asbestos Diseases (a) Asbestosis Asbestosis is a fibrosis or scarring of the lungs resulting from the inhalation of respirable asbestos fibers in high concentrations, usually for a prolonged period of time. Soma authors include the associated thickening of the visceral pleura in this definition. The dependent (lower) parts of the lung are affected first and the process progresses as the years go by, even after exposure ceases. The diagnosis of asbestosis depends on; (1) history of exposure (2) finding of fine end-inspiratory crackles at the lung bases on auscultation with a stethoscope (3) clubbing of the fingers (hot an essential diagnostic sign) (4) X-ray changes ASARCO ALV 0002681 (5) lung function changes indicative of restriction of ventilation or impairment of gas exchange. The ILO U/C International Classification of Radiographs of Pneumoconiosis (1971) has been developed for epidemiologic purposes and is descriptive, not diagnostic. A diagnosis of asbestosis can only be made by examining the worker, the X-ray, the lung function tests and the occupational history. Other respiratory diseases such as chronic bronchitis, emphysema, asthma and certain chronic lung diseases can be mistaken for asbestosis. The severity and progression, of'asbestosis appears to depend on the amount of asbestos retained in the lung. From the time symptoms are first noted most workers can continue to work for 10 to 15 years and may live another 5 to 10 years after finishing work, usually having had' to reduce the work-load in gradual stages because of increasing shortness of breath. Asbestosis is unusual under the age of 50. Other conditions leading to the necessity for light work and early retirement may precede asbestosis in this age group. As mentioned earlier, improving industrial conditions over the past 20 years have resulted in a less severe form of asbestosis than was seen in the 1930's, 1940's and 1950's. This disease process may not appreciably shorten life in present day circumstances. ASARCO ALV 0002682 (b) Asbestos Cancer 14 According to Gilson, it was about fifty years after the commercial exploitation of asbestos began that lung cancer was first thought to be caused by the dust (1935), about another ten years before this was generally thought probable (1945), and a further ten before it was finally established in the asbestos textile industry (Doll 1955). :'-r Lung cancer complicates 50-60% of asbestosis cases resulting from exposure to conditions more than 30 to 40 years previously. In some sections of the asbestos industry the effect of improvements in dust control on the excess mortality of lung cancer appears to be a dramatic reduction of this complication in parallel with the reduction of asbestosis incidence. The most strik ing contrast, according to Gilson, is between the low risk in chrysotile miners and millers in Quebec bom between 1891 and.1920, and the high risk in the in-, sulation workers where exposures have been to a mixture of chrysotile and amosite in the U.S.A., or to these two and crocidolite in the U.K. Asbestos fibers have a large surface area and readily allow adsorption of other materials. Lung cancers have been blamed on substances adsorbed on to the fiber such as trace metals, cigarette smoke and hydrocarbons from other sources. Cigarette smoke is important and the interaction of cigarettes and ASARCO ALV 0002683 asbestos exposure has been well documented by Selikoff.*^ Non-smoking asbestos workers rarely get lung cancer. The types of lung cancer in smoking asbestos workers do not differ in their effects from primary lung cancers in other people. The majority of affected individuals die within a year of diagnosis. Although lung cancer is usually associated with underlying asbestosis, some authorities believe that this is not always the case. The risk of premature death from malignant chest disease seems to be confined to those with high dust exposure. Asbestosis usually no longer kills because improved dust conditions have resulted in a "milder" form of disease. Less mortality from asbestosis occuring after longer periods of exposure has resulted in survival of workers through the long latent period of lung cancer. (c) Mesothelioma . The association between exposure to asbestos and diffuse malignant mesothelioma first attracted wide ; attention through the publication of a series of South : African cases by Wagner, Sleggs and Marchand (1960) Subsequent comparisons between cases of this patho logically controversial condition and control patients have confirmed a statistically significant association with asbestos. Wagner et al also showed that neighbor hood or community exposure could be associated with this malignant tumor. ASARCO ALV 0002684 11 Exposure in some cases may be of brief duration and there is a long lapsed period (latent interval) between first exposure and diagnosis or death. This lapsed period may be from 20 to 40 years or more. Disease diagnosed today probably had its causation in working conditions which prevailed between 20-40 years ago, or longer. The tumor affects the pleura; grows slowly, .doesn't, spread readily to other parts of the body and it kills by slowly compressing the lung and vital structures associated with it. Peritoneal tumor is less common and is similar in its effects. The tumor can occur . from about the age of 35 onwards but more than 50% do not develop until after age 60.. Cigarette smoking does not seem to be a causative factor. According to a review of tdie epidemiology of mesothelioma from estimates of incidence presented by Alison and Corbett McDonald at the XVIII International Congress on Occupational Health in Brighton, in 1975,' the incidence of mesothelial tumors is extremely high in three situations: among insulators, among those who work in or live in cities with shipyards and among .those who work in or live in certain cities with large asbestos plants. The most definite association with mesothelioma is following exposure to crocidolite fibers from the Cape Province and Transvaal in South Africa and from ASARCO ALV 0002685 12 Western Australia- McDonald and McDonald concluded that there are indications in most types of exposure of a gradient in the mesothelioma inducing potential of asbestos fiber with crocidolite being the most hazardous, amosite less hazardous and chrysotile least hazardous- McDonald17 has recently demonstrated that cases from the chrysotile mines in Quebec, Canada, were due to crocidolite. Crocidolite was used for the Canadian army respirators and this fiber was processed at the site of the major Canadian chrysotile mine. Crocidolite was similarly used in gas masks in Britain. The Canadian gas-mask workers experience exactly parallels that recently reported by Dr. J. S. P. Jones 18 and colleagues of some 1,600 persons employed, 1939-45, on the same process using Australian crocidolite in Nottingham, England. McDonald calculates that the risk of mesothelioma after crocidolite exposure in the circumstances described would appear to be at least 50 times greater than that associated with chrysotile production. There is no evidence that the general public is at risk of developing mesotheliomas from the fibers * measurable in the ambient air. . Occupational histories are deficient in those studies which have attempted to correlate environmental measurements with mesothelioma incidence. The correlations between increasing ASARCO ALV 0002686 utilization of asbestos during and since World War II are more reliable, indicating the likelihood of occupational risk rather than public health risk. C. The Issues at Stake There appear to be three major issues at stake at the present time, viz: (1) Can asbestos products be manufactured safely? _ ________ If so, :"- (i) is there any risk to users of asbestos- containing products and, 1. (ii) do low levels of exposure constitute a public health risk? (2) Can substitutes be found for asbestos? (3) Who is going to provide the answers and make the decisions? 1. Manufacturing of Asbestos Products .The uses of asbestos are myriad. Many of the use3 . of asbestos are probably unnecessary and continue because traditions die hard. It cannot be replaced by suitable substitutes as yet in many areas. ,. There is satisfactory evidence .in the world literature to indicate that asbestosis is a dose-response related disease. There is, furthermore, adequate evidence that a dose-reponse also exists for the carcinogenic properties, of asbestos. The fibrogenic (ability to produce lung fibrosis) ASARCO ALV 0002687 14 effect and the carcinogenic (cancer producing) effect of asbestos appear to be similar for all varieties in commercial use. The scientific opinion with regard to the proposed gradation of effect attributed to crocidolite, amosite, chrysotile, tremolite and anthophyllite in the production of diffuse malignant mesothelioma of the pleura or peritoneum, is divided. Although most observers believe that crocidolite, particularly that from Australia and the' N.W. Cape Province of South Africa, is the most dangerous fiber, that amosite 4 holds an intermediary position and that chrysotile presents the least hazard, some authorities do not accept this thesis. Having weighed the evidence presented by both schools of thought, I am of the- opinion that crocidolite has greater mesothelioma producing potential than amosite or chrysotile and that its use should be strictly curtailed. In the United Kingdom the use of crocidolite has virtually disappeared and no raw fiber has been imported or handled in production since 1970. In reviewing the literature it is obvious that advances in the control of asbestos manufacture did not proceed at the same pace in the industrialized world. The Asbestos Industry Regulations, 1931, which came into effect in the United Kingdom in 1933, preceded the rest of the world by approximately 40 years (or more). Although it is difficult, if not impossible, to make comparisons of working conditions in different countries for the same type of industry, there are indications that the health experiences are different ASARCO ALV 0002688 in such countries due to the time lag between introduction of comparable control measures. One group of workers in a 19 South African factory described by Collins in 1967, worked in totally uncontrolled conditions. This paper is not suitable for statistical analysis, but the description given by Collins of conditions, in what he calls "an asbestos refinery", is horrifying. He states "The dust within the building resembled a dense fog, and could be seen escaping into the atmosphere through the entrance. Jets of dust escaped like steam from faults in the con duction systems between mills and cyclones, and dust lay thick on every beam and projecting surface. The insulation workers of the United States are perhaps the best studied and most widely quoted groups in present medical literature due to the prolific publication of results by the Environmental Sciences Department at Mount Sinai Hospital in New York. Chrysotile asbestos miners and millers 20 in Quebec have been equally well studied by McDonald. 21 - -. - -" Nicholson demonstrates quite clearly the problems which . exist in attempting to define dust exposures for insulation workers where adequate dust measurements are lacking, while McDonald has been able to utilize information provided by the asbestos mining industry to derive a meaningful "Dust Index" for chrysotile miners in Quebec. The best documented study of asbestos workers (textiles) with regard to medical and dust-measurement data is that of the British Occupational Hygiene Society's Sub-Committee on ASARCO ALV 0002689 16 Asbestos Standards which was published in 1968 and recommended a cumulative standard of 100 fiber/cc years for chrysotile 22 asbestos. In 1970 NIOSH reported that records of dust concentrations between 1930 and 1967 in one asbestos textile factory, and between 1948 and 1968 in another, were assembled in the Pennsylvania Department of Health. In a report presented at the.Western Industrial Health Conference by Howard Ayer, it was disclosed that, using lung function as the most sensitive indicator of asbestos health effect, it appears that cumulative exposures below SO fiber/cc years cause no reduction in FVC, and exposures greater than 200 fiber/cc years are usually associated with reduction in FVC. If this cumulative exposure were spread over 30 years, this would mean that concentrations less than 1.5 to 2 fibers/cc would cause no reduction in FVC; and that concentrations greater than 7 fibers/cc would usually lead to a reduction in FVC as well as X-ray changes in 10* or more of workers. The present standard in the U.S.A., and most of the world, is 2 fibers/cc and is based on the BOHS Standard for chrysotile. Ini the United Kingdom and certain other countries crocidolite is dealt with more stringently because of its association with mesothelioma. In October 1975 OSHA proposed * a tightening of the standard to 0.5 fibers/cc and in December 1976 NIOSH recommended that it be 0.1 fiber/cc. The argument regarding the adequacy of the standard is dependent upon the "no safe threshold for a carcinogen" theory. There is qualitative evidence that the 1931 Asbestos Industry ASARCO ALV 0002690 Regulations in the U.K. had the effect of markedly reducing the incidence of asbestosis and similarly reducing the excess deaths from lung cancer in the same factory studied by the BOHS. 23 Some residual effect is still being seen in this factory because dust levels were still relatively high in many areas until very recently. Bearing in mind that the BOGS Standard was not published until 1968, that new Asbestos Regulations were not made in the United Kingdom until 1969 and that the 2 fibers/cc standard was not officially applied there until 1970, it is obvious that no conclusions can as yet be drawn with regard to the leveL of risk still attached to working in conditions in total compliance with this standard. Having attempted to review the main issues regarding asbestos manufacture, the answer to the question posed is obviously, that we do not know for sure, but the evidence is pointing towards the conclusion that, when adequately controlled the risk of asbestosis and lung cancer can be reduced to virtually nil. Dr. Roach24 has-summed.up the situation as follows: ..." '<* " "A problem arises when it is appreciated that there is no exposure which can be said to be absolutely free of risk. There is no single threshold exposure held in comaon by everyone. There is, consequently, this gradually increasing risk in relation to exposure. The application of dust control to meet a TLV, an MAC, MAK value, or other similar hygiene standard will limit and control the risk but is unlikely to reduce it to zero. It has to be remembered that asbestos is very widely used and brings real benefits to the community at large. A standard could be made so stringent that the cost of dust control is prohibitive, that the production and use of asbestos ceases to be economic, production and use is discontinued and the associated benefits are lost. The benefits gained by reducing the risk of ASARCO ALV 0002691 18 asbestosis through reducing air contaminant exposure f have to be weighed against the possible loss of direct ^ r and indirect benefits to the community from the use of the material." He goes on later to remark: "The air quality attained ir. industry in different countries does differ and, no doubt, will continue to differ. A wealthy country can afford to spend more money on air-contaminant control. Also, a country very conscious of the slightest risks to which its workers may be exposed through their occupation may be expected to have different standards from one which is not, where other health risks may be so much the graater. The benefits to the community from the use of inexpensive asbestos products have in sona measure to be weighed in the balance against the benefits to the health of the .workers that would accrue by reducing asbestos dust exposure." The further comments of Dr. Roach are of interest and I quote: "To derive hygiene standards for an air contaminant which provide a known degree of protection against a health v hazard, it is necessary to have a body of data showing the amount of air contaminant to which people are exposed and the corresponding effects or lack of then in the people. It is also necessary to have a grasp of the consequences to industry and users of limiting and controlling emissions of the contaminant. Our present information is very imprecise, particularly in terms of the practical consequences of specific hygiene standards. In developing ' recommendations for a hygiene standard, the British Occupational Hygiene Society Sub-committee found that knowledge of the relationship between exposure and risk was not the greatest area of uncertainty. A much, more difficult and contentious ' problem was to decide on what, in fact, was an acceptable _ level of dust control. . More information is needed, for example, on the expense of dust control. Where this is done by ventilation it is important to know what is the minimum amount and what kind of local exhaust ventilation and dilution ventilation is necessary to achieve a given degree of air cleanliness in a work place, since costs tend to climb as the cube of the air flow. Research is needed to determine the balance between local and general ventilation which produces a specified degree of control at minimum cost. By setting down the capital ASARCO ALV 0002692 19 cost, Installation cost, running and maintenance costs, it becomes possible to grasp more firmly the consequences of adopting particular hygiene standards. This kind of information is needed throughout the field of asbestos dust control so as to be able to weigh up the costs of achieving high air cleanliness. This does not reduce the choice of an air quality standard to a mathematical equation, nor does it avoid the need to exercise wise judgment in the choice of standard. However, the judgment can become a little less arbitrary than at present." The second question posed under the above heading is in regard to the risk to users of asbestos containing products. Asbestos is used throughout industry and until recently, outside of the manufacturing industry, users took few, if any precautions. Because asbestosis is dose-related no immediate health hazard was apparent from this cause in users of asbestos products. The exception to this rule is in the insulation industry where the upsurge of cases became marked in the late 1950's and early 1960's, probably as a result of the increase in asbestos usage tinder poor conditions during World War II. The process of spraying asbestos onto girders of high-rise buildings, spraying asbestos on the interior of buildings for heat and sound insulation and the extensive use of this process in naval ship-building programs was probably one of the most hazardous uses ever. Mechanical operations such as the sawing, drilling or abrading of asbestos products will create dust and power tools create more dust than hand tools. The quantity of dust produced will also depend on the amount of asbestos in the product and the nature of other components. Most demolition processes, where asbestos-based ASARCO ALV 0002693 20 products are being removed, are likely to give off considerable amounts of dust. It has been shown that brief exposure to crocidolite asbestos can result in development of mesothelioma. Users of asbestos products are usually exposed intermittently and accumulate a smaller dose of dust in the same period of time as workers continuously exposed in manufacture of asbestos products. Mesothelioma may occur in the absence of asbestosis. Mesothelioma has occurred in plumbers, carpenters, electricians, . ; - etc.', who were exposed in the vicinity of insulation workers or others using asbestos. It has also been reported in persons who have lived in close proximity to crocidolite mines, and mills and factories or building sites at which crocidolite asbestos was used. From all the epidemiological surveys there are between 5-30JJ of cases of mesothelioma in which no evidence of exposure to asbestos can be found. It has been shown that nearly everyone who lives in an urban community has some amohibole asbestos fibers in their lungs. . There has been a great deal of controversy as to whether asbestos brake-linings constitute a health risk in terms of exposure'of brake service mechanics. The epidemiological surveys conducted on this population have been carried out very recently by the Selikoff group, and no other epidemiological evidence is available as yet. There appears to be some evidence of radiologic changes in brake-service mechanics in the group studied by Selikoff but no evidence of frank disease. At the Annual American Industrial Hygiene Conference last ASARCO ALV 0002694 month, NIOSH presented data showing that the use of proper work practices would reduce the asbestos exposure of brake service mechanics to an extremely low level. (Approximately l/20th of the presently permissible OSHA level.) NIOSH will shortly issue a technical bulletin outlining acceptable work practices. The recommended work practices will be almost identical to in structions provided by Raybestos-Manhattan to all friction material customers for the past 2-1/2 years. There is obviously some risk attached to the use of certain asbestos containing products, but many give off no dust and others, once incorporated in machinery, etc., never again see the light of day. Great care should always be taken in the use of asbestos and materials containing it and the dust levels should always be below the minimum required. The main non industrial use of asbestos is in do-it-yourself building materials. There are also some domestic products which contain asbestos, such as some electrical appliances. There is negligible risk of fibers being dispersed from domestic products in normal use provided they are in good condition. To prevent the misuse of asbestos products warning labels should always be affixed and work practices advised. In answer to the third question it should suffice to say that there is no published epidemiological evidence to support the hypothesis of a possible danger to the general public. The biological effects of asbestos have always manifested themselves in individuals or groups of individuals exposed to dust concentrations many orders of magnitude greater than ASARCO ALV 0002695 levels measurable in the general environment. One major area of concern is the ingestion of fibers from water carried in asbestos cement pipes or from the filtration of wines, beers, spirits, beverages, etc., through chrysotile asbestos filters. This concern arises mainly because of the demonstration of an excess incidence of gastro-intestinal cancer in certain heavily ejqposed asbestos insulation workers and heavily exposed textile workers. It is interesting that the textile workers studied by the BOHS do not exhibit a similar excess mortality from GI cancer. If the use of chrysotile asbestos filters is discontinued this would be a retrograde step. The ingestion of chrysotile asbestos and other types of fibers in experimental animals has failed to produce mesotheliomas. From human evidence, only people with a severe exposure to asbestos dust have contracted peritoneal mesotheliomas and these tumors have not been found in any of the asbestos mining areas except those mining crocidolite, in spite of the very heavy dust exposure especially in those exposed to chrysotile. - 2. Asbestos Substitutes The major health problem associated with asbestos exposure is mesothelioma. As has been stated earlier in this paper, asbestosis'^can be controlled and lung cancer appears amenable to similar controls, but because the latent period between first exposure and diagnosis of mesothelioma is long, and this malignant tumor's association with asbestos exposure is a recent discovery, sufficient time has not yet elapsed to determine the level of dust capable of producing this response. Some evidence ASARCO ALV 0002696 has emerged that mesothelioma is dose related, but more time is needed to determine this dose. The gradation of effect previously discussed becomes important in the context of prevention. The reasons for this gradation of effects are of importance and may t determine the feasibility of using other fibrous materials as substitutes for asbestos. 26 The theory developed by Timbrell can explain the gradations in biologic potential of the various types of asbestos. He suggests that long fibers are preferentially deposited in the respiratory bronchioles at bifurcations and that this may explain why fibrosis tends to be associated first with respiratory bronchioles and with long fibers. He also suggests that the characteristic "rectilinear" shape of amphibole fibers compared . to the "curly" morphology of chrysotile fibers, allows the amphiboles to penetrate to deeper parts of the lung more efficientl than chrysotile fibers. A reasonable theory has thus been proposed to explain the reason for the development of mesotheliomas. It is based upon the ability of certain types of fiber to penetrate deeper into the lung than others and to reach the pleural cavity by direct penetration. Substitutes for asbestos are being sought although for most purposes none have been found as yet. Other fibrous minerals are being tried among them glass fibers and mineral wools. Animal experiments indicate that if such fibers were capable of reaching the pleura, i.e. had the same physical characteristics as amphibole asbestos fibers, they could produce mesotheliomas. The available evidence depends upon the implantation into the ASARCO ALV 0002697 pleural cavity by open surgical techniques, of the various materials tested to date. Both in Europe and in the United States epidemiological studies have failed thus far to demonstrate any carcinogenic hazard to workers in the man-made mineral fiber industry. This is a field of very active research and should hopefully provide answers in the near future which would prevent a repetition of the asbestos tragedy. 3. Who is going to decide? (a) Scientific Opinion "As long a3 there is any airborne asbestos dust in the work environment, there cay be some small risk to health. Never theless exposure up to certain linits can be tolerated for a lifetime without incurring undue risks." (Roach)21* "With thi3 discouraging picture of inadequate knowledge of risk, ill-defined exposure inforaation, and limited enforcement of existing levels before us, one may well ask of what value a' TLV is for asbestos, or for any carcinogen. Should such materials be banned from use in all forms? Asbestos is extensively used in industry for insulation, for inclusion in plastics and otherproducts, for reinforcing high-stress materials. At present, nearly 1 million tons are used annually in the United States. For some uses, as in brake linings, it is difficult to find a replacement. A societal decision to ban the use of asbestos would create serious, if not insurmountable, difficulties. Moreover, we would still face control problems posed by the large quantities of asbestos in current use. Our only recourse at this time is to limit human exposures to asbestos and other similarly recognized carcinogens to the lowest possible levels, with existing technology. . In the case of asbestos, a TLV can serve a purpose: Recognizing that it is, in fact, a Risk Limitation Value, however ill-defined that risk might be, it can serve to mandate implementation of available technology and rule out the small fraction of work processes in which available technology fails to keep up with the major portion of the industry. More, however, is required than the specification of a number. The specification of work practices and engineering controls offers an essential supplement to a numerical TLV if the latter is used at all. Application ASARCO ALV 0002698 f of many economically and technically feasible procedures can reduce exposure to levels much below existing numerical values. These should be mandated. Moreover, such procedures can be specified with joint government-union-management cooperation and can be monitored much more readily than can dust concentrations. TLVs and work-practice standards should be reviewed frequently with a view to achieving continued reduction in worker exposures. The specification of a proposed TLV can serve as a stimulus for the development of new engineering-control methods or to rule out marginal processes that cannot be controlled. As new engineering developments evolve, the lowering of a minimal standard can be undertaken along with the specification of additional protective work procedures. To a limited extent, this has taken place in the asbestos industry." ( Nicholson ).2^- "Threshold and dose response are only two of the components in deci3icn-making in environmental control and regulation. In addition to scientific data,-with all of its present limitations, public health responsibility must incorporate "prudence" as a factor in judgment. Thi3 invokes such issues as "cost/benefit ratios" and "risk", as recently reviewed by Falk. The cost/benefit ratio, at best an elusive attainment, must clearly delineate the "cost to whom" and "benefit to whom." The quantitative contribution to this equation must virtually be entirely derived from data on man. The concept of "risk" - the summation of threshold and dose response - when applied to population, is indispensably but not exclusively based on human as well as on experimental data. Laboratory contribution to "risk" encompasses the entirely tenable concept of threshold as well as dose response when addressed to the subject of the conference: the hazards of environmental agents to man." (Kotin) (b) Trade Union3 "In the past, risk assessment has been largely the domain of academic, industrial, and government scientists who have usually waited as long as possible to share their information with workers. This discussion will focus on the need for risk assessment to be a process continually going on at two levels, Federal and local. The need for Federal involvement In the standard-setting process is obvious, with tasks including carcinogenic risk assessment itself, standard-setting, enforcement, and when necessary, further modifications if workers are not being adequately protected. The need for worker involvement has only more recently been recognized. During this Federal standard-setting process the involvement of workers or their ASARCO ALV 0002699 representatives is critical to the design of an adequate standard, monitoring, and medical surveillance. Once set, workers must have an active and informed role at the local _ level in assuring that the standard is enforced." (Wolfe). "To reiterate, the most difficult decisions to be cade by government will not be scientific in nature. Social and coral decisions will be made that can channel and shape the development of our control technology, which itself will become a major determinant of our future welfare. In this process, labor's contribution is unique. Alone among American publics, the worker is most exposed to environmental-insult both in the community and in the shop, while being most vulnerable to the economic consequences of control. He and hi3 institutions are of necessity, therefore, in a position of forced objectivity. Thus his is a critical voice to be heeded. '. . ... - Tne participation of organized labor is not automatic. A positive effort must be made, an effort I call "positive public advocacy." This is an essential government responsibility, Involving the public in decision-making processes such as the assessment of environmental risk." (Samuels).29 (c) Government and its Agencies "Because the Federal government has provided for a National Cancer Plan under the leadership of the Director of the National Cancer Institute, it must be this Federal agency r that provides overall leadership for an effective integrated national program for prevention and control of occupational cancer. A splintering of responsibility for research and . training can work only to the detriment of the worker. The : NCI cannot retreat from its responsibility to provide ... regulatory agencies with information concerning risk of exposure to specific chemical, physical, and parasitic agents demonstrated to induce tumors." (Lassiter-OSHA).3 ASARCO ALV 0002700 REFERENCES Bell, D. & Elines, P.C. (1968): "The Distribution of Asbestos Bodies Within the Lung." Biologische Wirkungen des Asbestes. International Konferenz 1968, Dresden, pp. 29-32. 2 Thomson, J.G. (1965): "Asbestos and the Urban Dweller." Annals of the New York Academy of Sciences, Vol. 132, Art. 1, pp. 196-214. - ^Selikoff, I. J. and Hammond, E. Cuyler (1970): "Asbestos Bodies in the New York City Population in Two Periods of Time." In: Pneumoconiosis. International Conference, Johannesburg, 1969. Edited by H. A. Shapiro. ^Ashcroft, T. and Heppleston, A.G. (1973): "The Optical and Electron Microscopic Determination of Pulmonary Asbestos Fiber . Concentration and its Relation to the Human Pathological Reaction." Journal of Clinical Pathology, 26,: 224. ^Gross, P.; de Treville, R.; Cralley, L.J.; and Davis, J.M.G.: (1968)-'Pulmonary Ferruginous Bodies." Arch. Path. 85; 539-546. ^Pooley, F.D. (1973): "Mesothelioma in Relation to Exposure." Biological Effects of Asbestos. IARC Scientific Publications No. 8. Editors: P. Bogooski, V. Timbrell, J. C. Gilson, J. C. Wagner, pp. 222-225. ' rfy 7 Kiviluoto, R. (1965): "Pleural Plaques and Asbestos: Further Observations on Endemic and Other Non-occupational Asbestosis." Ann. N.Y. Acad..Sc. 132: Art. 1. pp. 235-239. ^Burilkov, T. and Michailova, L. (1970): "Asbestos Content of the Soil and Endemic Pleural Asbestosis." Envir. Res. 3,: 443. 9Gibbs, Graham W. (1972): "The Epidemiology of Pleural Calcification:" A Thesis Submitted to the Faculty of Graduate Studies and Research in Partial Fulfillment of the Requirements for the Degree of Doctor of Philosophy, McGill University, Montreal. 10Elmes, P.C. (1972): "The Natural History of Mesothelioma of the Pleura." Journal of the Irish Colleges of Physicians and Surgeons. 1: 117. ASARCO ALV 0002701 2 ^Edge, J.R. (1977): "Asbestos Related Lung Disease in a British Shipbuilding Population with Particular Regard to the Incidence of Bronchial Carcinoma in Men with Pleural Plaques. A Mortality Study." (Abstract). Amer. Rev. Resp. Dis. 115 (4) part 2, 212. 12 Leathart, G.L. (1968): 'Pulmonary Function Tests in Asbestos Workers." Trans. Soc. Occup. Med. 18: 49-55. ^Becklake, M.R.; Fournier-Massey, G.G.; McDonald, J.C. and Rossiter, C.E. (1968): "Relationship of Functional to Radiographic Change in Quebec Asbestos Workers." Biologische Wirkungen des Asbestes. Internationale Konferenz 1968, Dresden, p. 207. 14 Gilson, J.C* (1973): "Asbestos Cancer: Past and Future Hazards (Abridged)." Proceedings of the Royal Society of Medicine, 66: 395-403. 4. :^Selikoff, I.J.? Hammond, E. Cuyler and Churg, J. (1968): "Asbestos Exposure, Smoking and Neoolasia." J. Amer. Med. Ass. 204: 106-112. ^Wagner, J.C.; Sleggs, C.A. and Marchand, P. (1960) : "Diffuse Pleural Mesothelioma and Asbestos Exposure in the North-Western Cape Province." British Journal of Industrial Medicine, 17.: 260-271. 17 McDonald, A.D. and McDonald, J.C. (1977): "Mesothelioma and Asbestos-Fiber Type." Amer. Rev. Resp. Dis. 115 (4) part 2, 229 (Abstract). ^Jones, J.S.P.? Pooley, F.D. and Smith, P.G. (1976): "Factory Populations Exposed to Crocidolite Asbestos - A Continuing Survey." Environmental Pollution and Carcinogenic Risks. IARC Scientific Publications No. 13. INSERM Symposia Series Vol. 52. 19Collins, T.F.B. (1967) : "Asbestos - The Lethal Dust." S.A. Med. J., (July 15) pp. 639-646. 20 McDonald, J.C. (1973): "Asbestosis in Chrysotile Mines and Mills." Biological Effects of Asbestos. IARC Scientific Publications No. 8. Editors P. Bogovski et al. ^Nicholson, William J. (1976): "Case Study 1: Asbestos - The TLV Approach." Ann. N.Y. Acad. Sci. 271: 152-169. 22British Occupational Hygiene Society (1968): "Hygiene Standards for Chrysotile Asbestos Dust." Annals of Occupational Hygiene, 11: 47-69. ASARCO ALV 0002702 2^Peto, J.; Howard, S.; Kinlea, L.J.; Doll, R. and Lewinsohn, H.C. (1977): "A Mortality Study Among Workers in an English Asbestos Factory." Br. J. Industr. Med. (in the press). 24Roach, S.A. (1970): "Hygiene Standards for Asbestos." Ann. Occup. Hyg. Vol. 13, pp. 7-15. 2^Lorimer, W.V.-; Rohl, Arthur N.; Miller, Albert; Nicholson, William J. and Selikoff, Irving J. (1976): The Mount Sinai Journal of Medicine, 43: 207-218. 26Timbrell, V. (1973): "Physical Factors as Etiological Mechanisms." Biological Effects of Asbestos. IARC Scientific Publications No. 8. pp. 295-303. Edited by P. Bogovski et al. 27 Kotin, P. (1976): "Dose-Response Relationship and Threshold Concepts." Ann. N.Y. Acad. Sci. 271: 22-28. 28 Wolfe, S. (1976): "A Case for Worker Involvement in Risk Assessment." Ann. N.Y. Acad. Sci. 271: 410. 29 Samuels, Sheldon W. (1976): "Determination of Cancer Risk in a Democracy." Ann. N.Y. Acad. Sci. 271: 421. 30Lassit.er, Donald V. (1976): "Prevention of Occupational Cancer - Toward an Integrated Program of Governmental Action." Ann. N.Y. Acad. Sci. 271: 214. ASARCO ALV 0002703