Document g2k4EDOzbgnZGZgMaGYoZjpg9
DOW CHEMICAL U.S.A.
February 11, 1980
MIDLAND, MICHIGAN 48640
Z. G. Bell, PPG Industries T. J. Benya, Ethyl Corporation W. D. Harris, Uniroyal, Inc. G. K. Hatfield, Diamond Shamrock M. N. Johnson, M.D., The B. F. Goodrich Company C. D. Kary, Shell Chemical Company J. W. Lawrence, SPI J. T. Seawell, CMA W. M. Smith, Air Products & Chemicals, Inc. J. Stafford, ICI
JR. N. Wheeler. Union Carbide Corporation
CPSC VINYL CHLORIDE STUDY IN RATS AND MICE
In response to an Informal request for information Dr. Robert Hehir of CFSC has sent the enclosed manuscript. While considerably improved over previous drafts, the authors relate the lung adenomas and car cinomas in mice to vinyl chloride, choosing to minimize the possible relationship to pneumonia.
It is my understanding that the manuscript will be submitted to Toxicology & Applied Pharmacology. I'd appreciate any comments you might have.
Sincerely yours,
T. R. Torkelson Chairman, CMA Vinyl Chloride Research Coordinator
Attachment
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AN OPERATING UNIT OP THS DOW CHEMICAL COMPANY
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U S. CONSUMER PRODUCT SAFETY COMMISSION WASHINGTON. O.C. 20207 February 6, 1980
Dr. Theodore R. Torkelson Health & Environmental Sciences Building #1603 Dow Chemical U.S.A. Midland, Michigan 48640 Dear Ted:
In response to your telephone request of 2/5/80, I am enclosing for your information a copy of the paper entitled: "Toxicology, Carcinogenicity and Reproductive Effects of single and Multiple Exposures to Vinyl Chloride in Rats and Mice." This paper is now being submitted for publication.
If you or your colleagues have comments or questions, please contact me directly at (301) 492-6504.
Robert T4. Hehir Technical Director of Laboratories
cC:Dr. J. McLaughlin, CPSC Dr. B. McNamara, CSL-Edgewood Arsenal Don R. Clay, OAED/ES, CPSC
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TOXICOLOGY, CARCINOGENICITY AND REPRODUCTIVE EFFECTS OF SINGLE AND MULTIPLE EXPOSURES TO VINYL CHLORIDE IN RATS AND MICE by
R.M. HEHIR,1 3.P. MCNAMARA,2 J. MCLAUGHLIN, JR.,3 D.A. WILLIGAN,4 G. BIERBOWER,5 J.F. HARDISTY,6
Send Proofs to:R.M. Hahir, Ph*D. Consumer Product Safety Commission 5401 Mestbard Avenue Bethesda, Maryland 20207
Robert M. Hehir, Ph.D., Consumer Product Safety Commission1 3.P. McNamara, Ph.D., US Army Chemical Systems Laboratory2 Joseph McLaughlin, Jr., Ph.D., Consumer Product safety Commission3 Donald A. Milligan, D.V.M., Ph.D., Donald A. Milligan, Inc.4 George Bierbowar, D.V.M., Consumer Product Safety Commission^ Jerry F. Hardisty, D.V.M., Experimental Pathology Laboratories, Inc.6
DISCLAIMER The views, opinions and conclusions expressed in this paper are those of the authors and do not necessarily represent the views of the Consumer Product Safety Commission.
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ABSTRACT
From a regulatory point of view there is serious concern for the
safety of humans exposed to single and intermittent low level concen
trations of known carcinogens. Vinyl chloride monomer (VCM) , already
identified as a human and animal carcinogen, was selected as a model
agent to explore this area of interest for two reasons - one, expo
sure to consumers and industrial workers was wide-spread and secondly,
some basic information on its mode of action was available and more
was being developed. In the traditional cancer bioassay, animals are
repeatedly exposed over their normal life span to small doses of suspect
chemical. In the current studies rats and mice were exposed in an
inhalation chamber to single one-hour doses of vinyl chloride ranging
from 50 to 50,000 ppm. In addition, other groups were given 10 one-
hour exposures to 500 ppm or 100 one-hour exposures to 50 ppm of the
same chemical. All animals were kept in cages for the remainder of
their lives, generally 18-24 months. Moribund animals were euthanized
and survivors were sacrificed on schedule and their tissues examined for
pathological changes. A multi-generation reproduction study in Sprague-
Dawley/Wistar rats, carried out simultaneously, did not demonstrate
adverse effects on reproductive performance. Moreover, the original
parents from the vinyl chloride reproduction study were also maintained
for two years and subsequent examination failed to disclose any carcino
genic effect. Specifically, the oncogenic study demonstrated dose related
effects for single one-hour exposure of vinyl chloride at high levels i.e.,
5,000 and 50,000 ppm. These concentrations increased the incidence of
pulmonary adenomas and carcinomas in mice.
Repeated exposures of A/J mice
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to the same chemical at 500 ppm x 10 one-hour exposures also increased the incidence of pulmonary ademonas and carcinomas which are considered highly significant (p.001) when compared to matched controls. However# at a lower repeated dose of 50 ppm x 100 one-hour exposure no significant increase in tumors was observed. Rats exposed to identical concentrations of vinyl chloride failed to elicit a tumorigenic response. The liver as a target organ received special attention. Electron microscopic (EM) studies of the Fischer rats exposed for one hour to vinyl chloride showed sublethal cytoplasmic injury which subsequently recovered. Examinations of the Sprague-Dawley/Wistar rats which were held for 24 months after the 49th exposure to 2,450 or 24,950 ppm vinyl chloride revealed only age related changes.
Running Title: Biological Effects of Short-Term Exposures to VCM
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INTRODUCTION The responsibility for regulating vinyl chloride fell between the
overlapping jurisdiction of several federal agencies. Federal proposals to control vinyl chloride's use as an aerosol propellant, to limit occupational exposure and emission from chemical and fabricating plants as well as to regulate its shipment were initiated by the Food and Drug Administration, the Environmental Protection Agency, the Consumer Product Safety Commission, the Department of Transportation and the Occupational Health and Safety Administration in (1974). These actions followed reports of long-term chronic toxicity studies by Viola et.al., (1971) and Maltoni(1974), which demonstrated vinyl chloride's carcinogenic activity in experimental animals. The need for immediate action was further heightened by the epidemiological studies of Creech and Johnson (1974). Their report uncovered four cases of hepatic angiosarcoma in chemical plant workers associated with polyvinyl chloride production.
Further industrial investigations by Tabershaw et al., (1974) identified additional cases. The relationship between vinyl chloride and angio sarcoma in man and animal has been substantiated by a number of American and European scientists. For the most part, the government's primary attention was focused on reducing occupational exposures, in addition, basic research projects were also being initiated by other federal agencies. Considering the scope of the federal research programs and proposed rulemaking which would eliminate unnecessary exposure to vinyl chloride it appeared that the potential problem was well under control. However, vinyl chloride has been referred to by medical
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researchers as a "potent carcinogen." What did we know about the potential hazards to consumers dealing with a host of everyday products containing vinyl chloride in such items as aerosol hairsprays, pestiides, paints, etc.? vinyl chloride is a base ingredient in one of the most commonly used plastics, polyvinyl chloride (PVC), which was omni present in their everyday life i.e., food wrappings, pipes, home and auto upholstery and hundreds of other sundry products. The fact was we could find no relevant information on the long-term biological effects of acute or intermittent inhalation exposures to any known carcinogen. Preliminary studies by FDA and EPA demonstrated that the use of certain aerosol hairsprays or pesticides could result in exposures of vinyl chloride of 200 and 400 ppm respectively for short duration. Bearing in mind that Maltoni and Lefemine (1974) and Keplinger at al., (1975), implicated even low level repeated doses of vinyl chloride i.e., 50 ppm as being cftble of inducing angiosarcoma in laboratory rodents there was genuine concern for single high level and intermittent lower level exposures of vinyl chloride in humans. Therefore, the CFSC had two primary objectives in mind in sponsoring this research: (1) to study the long term effects of graded single and short-term intermittent ex posures to vinyl chloride and (2) to study the effects of vinyl chloride on reproduction.
Furthermore, we felt that this program would complement other on going research efforts to determine the pharmacokinetics and mechanism of action for this chemical. Quite apart from the objectives just mentioned, there was a secondary objective, to look at the question of a "threshold effect" or "safety factor" for low dose exposures for a well defined carcinogenic substance like vinyl chloride. There is a
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natural scientific curiosity about the question of a "threshold effect" and while'we did not hope to resolve the debate on this highly controversial issue we did expect to develop sufficient scientific data to help formulate regulatory policy and to sustain future decisions to control low level human exposures to chemical carcinogens.
The experimental protocols were jointly developed by the staff of Chemical Systems Laboratory (formerly Edgewood Arsenal) and by the Health Science staff at the Consumer Product Safety Commission. The protocols were reviewed and critiqued by both governmental and private sector experts and their suggestions were considered and in corporated into the final experimental design.
MATERIALS AMO METHODS Vinyl Chloride Monomer The vinyl chloride monomer gas (99.9% minimum purity), used in these inhalation studies, was obtained from Matheson Gas Products in size IT cylinders containing 200 lbs. of the monomer under 34 psi at 70*F. Animals Rats: Fischer 344, male and female (Charles River Laboratory, Wilmington, Mass.).
Sprague-Dawley/Wistar, male and female (Chemical Systems Laboratory Colony, Edgewood, Maryland).
Mice: AJ Strain, male and female (Jackson Laboratory, Bar Harbor, Maine).
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ICR Strain, male and female (Charles River Laboratory, Wilmington, Mass.)
Exposure and Sampling Techniques The exposures were conducted in 100 liter, stainless steel dynamic flow chambers of the Rochester type. Construction insured laminar flow and uniform exposure of the test animalsDuring one-hour exposure periods four 0.5 ml gas samples were collected at selected times for concentration analysis. A Hewlett-Packard series 5830A Reporting Gas Chromatograph equipped with a dual- flame ionization detector was used for VCM analysis. The system is sensitive to 60 parts per billion of vinyl chloride. Following exposure the animals were air-washed in the chamber until less than 1 ppm of VCM was detectable. They were then placed in the animal holding area for the remainder of the observation period (up to 24 months).
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Exposure Procedures for Toxicology and Carcinogenicity Male and Female rats (Fischer 344) and mice (A/J or ICR) were totally exposed in one of the following ways:
a. One single one-hour exposure at 0, 50, 500, 5,000 or 50,000 ppm. Fischer 344 rats, ICR mice, exposure shown in Table 1.
b. Ten one-hour exposures at 500 ppm (one-hour per day, five days per week for two weeks). Fischer 344, A/J mice, exposure schedule shown in Table 2.
c. One-hundred one-hour exposures at 50 ppm (one hour per day, five days per week for 20 weeks). Fischer 344 rats, A/J mice, exposure schedule shown in Table 2.
Observation Animals were observed twice daily for indications of their general health. The following signs were noted: Mortality, health, external sores, subcutaneous masses, alertness, and activity. All test groups were weighed weekly for the first eight weeks post exposure and monthly thereafter.
or Ho blood chemistry of hematology studies were performed. Pathology
Gross and Light Microscopy A complete gross pathological examination was performed on most control and exposed animals which died or were sacrificed. Autolysis precluded such examination in a few cases.
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All rodents were to be serially sacrificed at 8, 16, 24 months post exposure. However, the life span of the mice forced some changes in the later times of sacrifice and termination of mouse experiments. For the single exposure the planned 16 and 24 month sacrifices were replaced by an 18 month sacrifice. The latter is minimum suggested by the National Cancer Institute for cancer bioassays in small rodents. For the multiple dose studies (500 ppm x 10 exposures; 50 ppm x 100 exposures) in mice the final sacrifice was at 20 months rather than 24 months. The change was made in consideration of the risk of animal loss through death and possible cannibalism.
Electron Microscopic Studies For the electron microscopic studies the following animals were selected at random. Groups consisting of five male and five female Fischer 344 rats from each of the single one-hour (50-500-5,000 and 50,000 ppm) exposures with equal numbers of their corresponding control group were sacrificed at 8, 16, and 24 months. Groups consisting of five male and five female Fischer rats from each of the multiple one-hour exposures (10 x 500 ppm, 100 x 50 ppm) with equal numbers of their control group were sacrificed at the end of 16 and 24 months, after the final VCM exposure. One group of five males and five female Sprague-Dawley/Wistar rats from the parental generation of the reproduction group (49 x 50 ppm, 49 x 500 ppm) along with equal numbers of their control group were sacrificed 24 months after the final exposure.
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The rats were anesthetized with pentobarbital and their livers were perfused via the vena cava with chilled electron microscopic fixative consisting of 4% formaldehyde, 1% glutaraldehyde in 0.1 M phosphate buffer as described by E.M. McDowell and B.F. Trump (1976).
After mincing, the tissues were post-fixed in 1% phosphate buffered osmium tetroxide, dehydrated in graded alcohol solutions, cleared in propylene oxide and embedded in Epon by the modified techniques of J.H. Luft (1961).
Reproduction Study and Carcinogenicity Tq male and female parents or Sprague-Dawley/Wistar rats were exposed as outlined in Table 3 to SO ppm or 500 ppm of VCM one-hour per day, five days per week for 10 weeks (49 exposures) before they were mated. This assured exposure of all forms of male germ cells. The females were exposed during all phases of the oogenic cycle. Each parental generation was evaluated for fertility, litter size, number stillborn and ability to lactate. The F^, and F^, and F^ off-spring were evaluated for post-natal growth, viability, survivability and reproduction anomalies. The parental generation of Sprague-Dawley/Wistar rats were maintained for 24 months post exposure for carcinogenic evaluation. RESULTS
Toxicology (single and multiple exposures) Observation During Exposure
Exposures of rats and mice for one-hour to concentrations of 50, 500, 5,000, and 50,000 ppm produced no remarkable signs of toxicity except for mice exposed to the highest level. Fifty percent of the
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males were hyperventilating after 45 minutes of exposure; twitching and ataxia were noted. At 59 minutes tremors were seen. Females showed some hyperactivity at 50 minutes and 25 percent showed respi ratory difficulty and ataxia after 55 minutes. No other effects were noted.
There were no remarkable signs of toxicity during the ten re peated exposures of mice and rats at 500 ppm of VCM, nor in rats during the 49 exposures at 500 ppm, nor in either species during the 100 exposures at 50 ppm.
Observation After Exposure . There were no significant differences in mortalities at P*.Q5 level between exposed and control animals using Student - T or ChiSquared analysis at any level. However, when the KOLMOGOROV - SMIRNOV two sample test is used to analyze the VCM mortality data there is a significant difference at P-.05 level between 50,000 ppm and control male single exposure ICR mice and between 50,000 ppm and 50 ppm single dose ICR mice. No other dose level or species showed significance.
Gross Pathology There was a suggestion of higher frequency of masses in the lungs and livers of mice and rats exposed once or repeatedly at the higher dose levels, i.e., 500, 5,000 and 50,000 ppm.
Light Microscopic Pathology Mice (single exposure)
Histological examination at 8 and 18 months in ICR mice exposed once to concentrations of 50, 500, 5000 or 50,000 ppm showed the following changes attributable to VCM. Summary of histo logically identified changes in the liver and lung are shown in Table 4.
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The development of lung adenomas increased with exposure to higher dose levels of vinyl chloride but the progression to carcinoma was minimal as summarized in Table 5. Pneumonitis was evident `in all animal groups which were exposed to VCM in doses of 500 ppm or more.
Mice(10 x lhr x 500 ppm and 100 x lhr x 50 ptan exposures) A summary of the histopathologic changes observed in the liver and/or lung of A/J mice at 8, 16 and 20 months following their multiple exposures to VCM are presented in Tables 6 and 7. The increased incidence of pulmonary adenomas and carcinomas was attributed to the VCM exposure. The pulmonary find ings are presented for comparative purposes in Table 3. The effects of multiple exposures of VCM on A/J mice in Table 8 were compared by the z test for differences of means and proportions. Accordingly, there is a highly significant difference in the number of pulmonary adenomas (P* .001) and carcinomas (P- .001) in the A/J mice exposed to 500 ppm VCM for 10 x one hour exposures when compared to their matched controls. By the same token, there is no significant differenc in pulmonary adenomas and carcinomas in test versus control animals at the 50 ppm x 100 x one hour exposure level.
Rats (single exposures) Except for aggravation of latent pulmonary changes, particularly broncho pneumonia as shown in Table 9, changes attributable to VCM were not apparent in any of the tissues evaluated microscopically at 8, 16 or 24 months from Fischer 344 rats exposed to concentrations of 50, 500, 5000, or 50,000 ppm.
Rats (multiple exposures) Mo changes attributable to VCM were apparent in any of the tissues evaluated microscopically at 8, 16, or 24 months from Fischer 344 rats ex posed 10 times at 500 ppm or 100 times at 50 ppm as shown in Table 10.
Rats (49 exposures from the reproductive study) The following histological observations were made 24 months post exposure
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in 5prague-Dawley/Wistar rats which had been exposed 49 times at 50 ppm or 500 ppm of VCM.
Neoplastic and non-neoplastic lesions were observed in approximately equal frequency in control and test animals.
The only lesions that occurred in higher frequency in the VCM exposed animal than in control rats were eosinophilic cell alterations presented as foci and/or areas as shown in Table 10. The appearance of these foci was related to dosage. The nature of these lesions is controversial.
Summary of Light Microscopy Studies The carcinogenic, or possible related changes (eosinophilic foci) attrib utable to exposure of VCM in rats and mice are summarized in Table 11. The significance of these histologic changes will be discussed later in the paper.
Electron Microscopic Results In general, these studies indicate that exposure to vinyl chloride in creased organelle turnover as well as loss of volume control (bleb formation) and increased lysosomal activity in the liver of rats. These alterations progressively decreased as recovery after exposure increased. Hepatocellular carcinoma was seen in one male Fischer rat which had re ceived 10 exposures of 500 ppm. Lymphosarcoma was noted in one female Fischer rat which had received a single exposure at 500 ppm. Since these were individual cases, and since no cancers were seen at 50,000 ppm, the lymphosarcoma and the hepatocellular carcinoma are not likely related to vinyl chloride exposure. Thus, it appears that exposure to vinyl chloride did not produce cancer in rats in any of these single or multiple exposures.
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General conclusions of 8-Month Recovery to Single Exposure to 50, 500, 5000, and 50,000 ppm-hr of Vinyl Chloride in Fischer Rats a. Alterations from control occurred in all treated animals at each concentration. b. Changes were less severe in female animals. c. Hepatocytic alteration included lipid accumulation, increased dense bodies, lipofuschin granules and residual bodies. These are an indication o cytoplasmic sublethal injury. d. Alteration was incremental with increasing exposure concentration. e. Most severe changes involved cellular necrosis with subsequent phagocytosis by Kupffer cells seen in single and multiple exposures. f. Extruded areas of hepatocyte cytoplasm (in bleb formation) may indicate a means of removal of altered portions of cells. General Conclusions of 16-Month Recovery After Single Exposures to 50, 500, 5000, and 50,000 ppm x 1 hr to Vinyl Chloride in Fischer Rats a. Normal morphology was noted after 16 months in the lower exposure concentrations. When compared to the above alterations at 8 months, the 16 months recovery period appeared to be sufficient for return to control morphology. b. When changes in controls were subtracted from those in treated animals, the most significant finding was hepatocyte necrosis in high dose males. General Conclusions to 24-Month Recovery from Single Dose Exposures of 50, 500, 5000, and 50,000 ppm Vinyl Chloride in Fischer Rats a. Age-related changes including formation of cleft-like spaces
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(possible related-to hemoglobin/hemosiderin), inflammatory infiltrate (pericholangitis) and some collagen accumulation were seen in controls and treated animals in this group.
b. In this group hepatocytic injury - not encountered in controlswas observed. At 5000 ppm one female showed evidence of lymphosarcoma.
General Conclusions of 8-Month Recovery to Multiple Exposures to 500 ppm x 10 exposures; 50 ppm x 100 exposures to Vinyl Chloride in Fischer Rats a. Changes were seen in male and female treated animals. b. Less alteration was encountered in female rats. c. Cellular changes were greater than that seen in single dose animals d. Alterations involving hepatocyte nuclei, not seen in single dose animals, were encountered in males of this group.
General Conclusions of 16-Month Recovery to Multiple Exposures of 500 ppm x 10 exposures and 50 ppm x 100 Exposures in Fischer Rats a. Electron microscopic evidence supportive of a diagnosis of hepatocellular carcinoma was seen in one male given 10 doses of 500 ppm vinyl chloride. b. Other changes included cleft-like spaces in hepatocytes and Kupffer cells. These were interpreted as age-related changes in hemo globin/hemosiderin metabolism. c. Changes were more severe in males
General conclusions to 24-Month Recovery After Multiple Doses of 500 ppm x 10 and 50 ppm x 100 of Vinyl Chloride in Fischer Rats
a. Controls and treated animals showed changes similar to those
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seen after 24 months recovery to single exposure. b. These changes were regarded as age-related and non-specific.
General Conclusions to 49 Exposures for 1 Hr at Daily Intervals Followed by 24 Months of Recovery (50 and 500 ppm) (Sprague-Dawley/Wistar Rats) a. Age-related non-specific change was encountered in all groups. b. Most advanced changes were related to 500 ppm group of male rats in which cell swelling and platelet aggregation were seen.
Multigeneration Study in Rats (Sprague-Dawley/Wistar) No consistent changes attributable to VCM were found in FQ parents which were exposed to 50 ppm or 500 ppm of the vinyl chloride monomer one hour per day, five days per week for ten weeks before mating and evaluated for effect on fertility, viability and survival of offspring and ability to lactate. The F^, F^, and F^ offspring were evaluated for litter size, percent of stillborn pups, post-natal growth, viability, survivability and reproduction anomalies as shown in Tables 12-18. Electron microscopic examination of the parent rats which were held for 24 months after the 49th exposure revealed age related changes, cell swelling, and platelet but no tumors.
DISCUSSION AND CONCLUSIONS Factors in Carcinogenicity Theoretically, a single molecule of a carcinogenic substance may
produce a cancer; if it is not destroyed in the body before it reaches a susceptible body cell; if it makes a carcinogenic biochemical combin ation ("hit") with the cell; if this combination is not repaired; if the
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cancer cells are not destroyed by the immune system, and if other host
factors are favorable to carcinogenicity. On the other hand it may also
be assumed that not every molecule will make a carcinogenic 'hit", that
some "hits" will be repaired, and some "hits" may not develop into tumors
because of unfavorable host factors, and in some situations the cancer
cells may be destroyed by the bodies immune system. The higher the dose
rate the greater the number of hits and the greater the frequency of
tumor production.
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The second set of considerations above suggest the existence of "no
effect" doses, threshold doses, and dose response curves which have the
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I hockey stick shape described by Bryan and Shimkin (1943). These consider- j
i ations have been discussed for radiation by Storer (1975) and Lipton et al.,;
(1970) and for chemical carcinogenesis by Saffiotti and Maugh (1978).
The Food Protection Committee, Food and Nutrition Board of National
Academy of Sciences - National Research Council in (1959) noted that a dose
response relationship could be applied to carcinogens. The higher the
dose, the greater the response and the shorter the time required to elicit
that response. This relationship has been reported for 1, 2, 5, 6-
dibenzoanthracene (DBA) by Bryan and Shimkin (1943) for 20-methylcholanthrone
(MC) and for 9, 10-dimethyl-l, 2-benzanthracene (DMBA) plus croton oil
by Graffi (1953) for p-dimethylaminoazobenzene by Druckery (1959) and for
carbon tetrachloride by Eschenbrenner and Miller (1944). Dose response
curves have been given for ultraviolet light by Blum (1950) and for ionizing
radiation by Finkel (1958) and Mole (1958).
There are non-tumorigenic levels of exposure to carcinogens for
given experimental conditions. Carcinogens do not produce cancers in all
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exposed animals. In bioassays, the lower dose levels sometimes do not produce tumors while higher dose levels sometimes do produce tumors. This remark is supported by experimental observations of such researchers as Poel (1959), Graffi (1953) and Druckery (1959).
The possibility that a "no effect" dose may exert a carcinogenic effect which is too weak to be detected with the numbers of animals used in routine testing is recognized.
The concept of lifetime accumulative, non-tumorigenic and tumorigenic doses of radiation has been adopted. The Federal Radiation Council (1960) stated that for occupationally exposed personnel the accumulated dose of radiation to the whole body, head, trunk, active blood forming organs, gonads or lens of the eye shall not exceed:
1. In any calendar quarter, 1.25 roentgen equivalent mammal (ran). 2. Total lifetime dose of 5 (N-18) rem where N equals the present
age in years. Vinyl Chloride and Carcinogenicity Maltoni (1975) and Maltoni and Lefemine (1975), described a doseresponse relationship for the carcinogenic effect of vinyl chloride in animals. The neoplastic response was related to the length of exposure. Lee et al., (1978) noted that the incidence and severity to tumors increased with the concentration of VCM and the length of exposure. The statements above indicate that the total dose (concentration X exposure time) may be of importance in the carcinogenicity of vinyl chloride. The total inhaled dose can be approximated utilizing concepts developed by Haber in (1924). in its simplest form this concept states that the total inhaled dose, Ct (mg min/cu m) is the product of c
(concentration in mg/cu m) x t (time in minutes).
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The concentration can be expressed also in parts per million (ppm) and the time can be expressed in hours producing Ct in ppm-hr. Factors for breathing rate and detoxication can be included when these data are available. However, the simplified Ct approximation of total inhaled dosage is sometimes useful.
A rough calculation of total dosages has been made for some of the data of Maltoni (1975) and Maltoni and Lefemine (1975); Lee ct al., (1978); Viola et al., (1971); Caputo et al.,(1974) and Keplinger et al., (1975).
These Ct calculations are summarized in Tables 19 and 20. In the studies of P. L. Viola, A. Bigotti and A. Caputo (1971) tumors were seen in rats which had been exposed to 30,000 ppm of vinyl chloride four hours per day, five days per week for 12 months. Positive effects were obtained at the total dose (Ct) of 28,800,000 ppm-hrs. A. Caputo, P. L. Viola and A. Bigotti (1974) exposed rats and rabbits 7 to vinyl chloride four hours per day, five days per week for 12 months. The concentrations were 20,000; 10,000; 5,000; 2,000; 500; or 50 ppm. The total dose (Ct) for the 50 ppm was 48,000 ppm-hrs. No tumors were produced in rats at this dose level. The total dose for 500 ppm was 480,000 ppm-hrs. Tumors did occur at the latter dose appearing as early as eight months or at 320,000 ppm-hrs. Tumors appeared in the rabbits after nine months following similar treatment at a concentration of 10,000 ppm VCM. Thus the lowest total dose demonstrating carcinogenosis in rabbits was 7,200,000 ppm-hrs. M. L. Keplinger at al.,'(1975) exposed rats, hamsters and mice to vinyl chloride. Only the data on mice was sufficiently complete for examination of total dose effects. The animals were exposed seven hours per day, five
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days per week for eight months. The lowest Ct was 56,000 ppm-hrs. This Ct and all higher ones did produce tumors in mice.
Calculations from the data of the Consumer Product Safety Commission studies (Tables 5 and 11) indicate that strongly positive carcinogenic effects may not appear in rats until the total dose (Ct) of VCM reaches or exceeds 50,000 ppm-hrs. The maximum response in the rats was the appearance of eosinophilic cells which might suggest a pre-cancerous change.
The CPSC VCM tests in mice indicate that increased frequencies of adenoma may appear in this species at Ct's of 5,000 ppm-hr and above. This total dose for carcinogenicity is in general agreement with Lee at al., (1978) 78,000 ppm-hrs and Maltoni (1975) and Maltoni and Lefemine (1975) between 30,000 ppm-hrs and 150,000 ppm-hrs, and other investigators. In general, in orders of magnitude, carcinogenic tendencies are seen in some species at Ct's of 5,000 to 50,000 ppm-hrs. Definite carcinogencity appears in both mice and rats at Ct;s of 50,000 to 500,000 ppm-hrs, and high incidences of carcinogenesis are noted in mice and rats at ct's of greater than 500,000 ppm-hrs.
The previous studies of Maltoni (1975), Maltoni and Lefemine (1975), Lee et al., (1978), Viola et al., (1971), Caputo et al., (1974), Keplinger et al., (1975) and the present CPSC study are in agreement as to the dose time relationship for carcinogenesis related to vinyl chloride exposure. All of these studies considered collectively may indicate that there may be a life-time total dose for vinyl chloride below which carcinogenicity is not
likely to occur. This "no cancer" ct seems to be below 5000 ppm-hrs for
mice. For histological confirmed carcinogenesis the "no cancer" Ct in rats appears to be greater than 50,000 ppm-hrs. The results of the light or
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electron microscopic study did not reveal carcinogenic responses in rats at Cts from.50 to 50,000 ppm-hrs. However, Ct's of 2450 ppm-hrs produced eosinophilic foci but no overt tumors in rats in the CPSC tests.
As an additional consideration in the total dose concept, CT's of 5000 ppm-hrs produced increased incidence of adenomas in mice when the exposures were at 5000 ppm for one day, 500 ppm for 10 days or 50 ppm for 100 days. The increased incidence of adenomas produced by the single exposure of mice at 5000 ppm is of borderline significance. However, there is the indication that even a single exposure of suffi cient magnitude may be carcinogenic in sensitive species.
Under the conditions of exposure, VCM produced pneumonitis in all mice above 500 ppm. The high level of pneumonitis among test mice was a result of test exposure, not a prior condition of spontaneous disease. Furthermore, the pneumonitis was recognized and evaluated as an inherent response, not as an undesirable variable of exposure. The idea that viral infection of the lungs (i.e., influenza) might lead to cancer is not new. For example, Steiner and Loosli (1950) studied the effects of human influenza virus (Type A) on the incidence of lung tumors in mice . The supposition was that infection might, under certain conditions, cause cancers but more specifically from the proliferative changes that occurred in the lung following recovery. The Steiner-Loosli (1950) experiment was a test of that supposition. In their experiment the hyperplasia which developed as a result of infection did not go on to tumors. On the contrary these investigators noted possible inhibitory or anticarcinogenie effects which they felt deserved further study. Under
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the conditions of this toxicologic study, pneumonitis and pulmonary adenomas were induced in mice. This is a conclusion strictly limited by the available data. Relationships, synergistically or otherwise, between pneumonitis and pulmonary adenomas or carcinomas are neither explicit nor ascribable. There is a real possibility that vinyl chloride could induce pneumonitis in man. However, this does not mean that pulmonary cancer may or may not be the inevitable consequences. It is, therefore, difficult to relate these animal studies to man.
Data on vinyl chloride exposure in plants have been limited. However, acute dizzyness, headache, nausea and chronic liver damage have been seen in vinyl chloride workers. It is assumed that peak exposure levels of several thousand parts per million were experienced at times. Air monitoring of one group of plants during (1950-59) indicate that time-weighed (8-hr) average exposure were 120-385 ppm. This would give daily Cts of 960-3080 ppnj-hrs. Peak exposures possibly exceeded 1000 ppm. This may not have been typical of all polyvinyl chloride plants.
Data on vinyl chloride in ambient air are limited also. Atmospheric measurements in the vicinity of production plants indicate that concentra tions are frequently below 1 ppm. One peak grab sample of 33 ppm has been reported in an EPA Scientific and Technical Assessment Report (1975) at 0.5 kilometer from the center of one plant.
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HEHIR et. al.
The time-weighted threshold limit value of the American Conference of Government Industrial Hygienist for (1977) was 200 ppm. There is a notice of intended change. The Environmental Protection Agency in (1976) established the following emission limits for vinyl chloride; (1)formation and purification processes is 10 ppm, (2) emissions from equipment pre ceding and including the stripper in the plant process flow is 10 ppm, and (3) emissions from equipment following the stripper are to be controlled by stripping dispersion resins to 2000 ppm and other resins to 400 ppm. The Code of Federal Regulation 40, Protection of Environment, (1978) states that fugitive emissions from loading and unloading of lines, rotating pumps, reciprocating pumps, rotating compressors, agitators, manual venting of gases, and opening of equipment must be ducted through control systems so that the concentration of vinyl chloride in the exhaust does not exceed 10 ppm.
Assuming that man is as sensitive as the mouse or rat the carcino genic effects of vinyl chloride might be expected after an accumulated Ct of about 5000 ppm-hrs or approximately 150,000 ppm-hr (Maltoni BT3, Table 19), respectively. Based on the high pollution values given above (1000 ppm-hr per day) carcinogenic doses could have been accrued in one week (mouse) or 30 weeks (rats). At the TLV of 200 ppm (daily ct of 1600 ppm-hr ) as postulated in Table 21 the time to accumulate a carcinogenic would be three days (mouse) or about 19 weeks (rat). Comparable accumulation times at 10 ppm (80 ppm-hrs per day) would be about 12 weeks (mouse) or 375 weeks (rats). The calculation's are based upon a five day working week.
There are a number of methods which could be used to obtain risk estimates for low doses of this carcinogenic agent. Aside from the fact
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HEHIR et. al.
24
that none of the current extra-polation procedures can be justified on
a biological basis, the exercise permits one to compare theoretical risk
levels for various chemicals. Whereas the Armitage and Doll (1961) multi
stage model assumes the risk is approximately linear even in the low dose
range; the probit model of Mantel and Bryan (1961), has a hockey stick
appearance. That is to say, as the dose approaches zero, the response function
in this region is extremely flat (zero slope).
By comparison, the log probit model for high levels of risk and high
tumor rates gives a lower predicted dose than the linear extrapolation model.
Realizing that any low dose extrapolation method is arbitrary and subject
to biological and mathematical criticism, we never-the-less selected a
model developed by Guess and Crump (1976) to analyze our data. Instead of
assuming the shape of the dose response function we allowed the program to
fit the experimental data to the best model by using a Monte-Carlo goodness -
of-fit test. We used a computer program (GLOBAL) which has been described
in a paper by Crump, Guess, and Deal (1977). The procedure is based upon
a dose response function of the form:
~Q (d) P(d) 1 - exp
(1)
i-0 where Q (d) is a polynomial with non-negative coefficients q^ of unknown de
gree, where q^i.0 for all i events and q^ - o for all but finitely many i.
P (d) is the probability that an animal will develop a particular response which is linear in d dose rate for small d if q^>o. Moreover, P(d) can be arbitrarily flattened by taking enough of the low order coefficients equal to zero, since at very low doses P(d) - P(0)'v'exp (-q^ q^d^1 where 1 is the smallest positive integer for which q^> 0. Accordingly, Crump, Guess and Deal (1977), interpret P(d) as the probability that an animal will
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HEHIR et. al.
25
develop a particular type of tumor during the duration of the experiment while under continuous exposure to a dose rate d of the chemical being tested.
By using the experimental values in table 5, comparing the single VCM inhalation exposures of ICR mice and the progression of pulmonary lung lesions to carcinoma over an 18 month period in the GLOBAL computer program one can theoretically determine an approprate (dose-response) mathematical model and also the risk given the dose or conversely the dose given excess risk. These values along with the upper and Lower 95 and 99 percent confidence limits are presented in Table 22 for the multi stage polynomial model.
By interpolation of the data presented in Table 22 we estimate an approximate two-fold increase in the risk of developing a pulmonary carcinoma in the experimental animal when exposed to 5000 ppm VCM compared to the spontaneous background level. At the highest exposure level, i.e., 50,000 ppm, the theoretical risk of developing the same pulmonary.tumor'is increased about nine fold. Examining the dose given excess risk, the model predicts that a continuous exposure to 2.4 ppm VCM would induce one excess cancer case in a million.
CONCLUSIONS An overall summary of the biological effects of VCM on the laboratory
animals studies is presented in Table 23. A. Except at the highest concentration, 50,000 ppm, where possibly
anesthetic-type effects were seen, VCM produced no pharmacotoxic (excluding pathology) signs in mice or rats during or after exposure.
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HEHIR et. al.
26
B. No reproductive changes attributable to VCM were found. These include mating, pe'rcent pregnancies, fertility, lactation, percent still-borns, litter size, post-natal growth, neonatal viability, neonatal survivability, and fetal anomalies.
C. VCM seemed to produce pneumonitis in mice and to aggravate bron chopneumonia in rats.
D. VCM produced eosinophilic changes in rats but no frank (light microscopy) carcinogenesis.
E. VCM produced an increase in frequency of lung tumors in mice. F. Electron microscopic studies in rats revealed some hepatocellular changes but no carcinogenesis related to the VCM exposures at Ct's of 50,000 ppm-hrs or less. G. The carcinogenic effects of VCM in mice seem to depend upon concentration and exposure time, Ct. There were VCM doses which were not carcinogenic and there appeared to be a total accumulated dose above which tumors were produced. Tumors were not seen in mice at Ct's of 500 ppm-hrs, however, carcinogenic effects of VCM were seen in mice at total doses (Cts) of 5*000 ppm-hrs and above.
j
HEHIR et. ai.
REFERENCES
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Armitage, P. and Doll, R. 1961, Stochastic Models for Carcinogenesis. In Proceedings of Fourth Berkeley Symposium on Mathematical Statistics and Probability, Berkeley California June 20 - July 30, I960 (Neyman, J. Editor) Vol. 4, Berkeley California; University of California Press. Pages 19-38.
Blum, H.F. 1950. On the Mechanism of Cancer Induction by Ultraviolet Radiation. J. Nat. Cancer Inst. 11: 463-495.
Bryan, W.R., and Shimkin, M.B. 1943. Quantitative Analysis of DoseResponse Data Obtained with Three Carcinogenic Hydrocarbons in Strain C3H Male Mice. J. Nat. Cancer Inst. 3:503-531.
Caputo, A., Viola, P.L., and Bigotti, A. 1974. Oncogenicity of
Vinyl Chloride at Low Concentrations in Rats and Rabbits. J. Int.
Res. Ccmnun. 21:1582
-
Creech, J.L., Jr. and Johnson, M.N. 1974. Angiosarcoma of Liver in the Manufacture of Polyvinyl Chloride. J. Occup. Med- 16:150-151.
Crimp, K.S., Guess, H.A., and Deal, K.L. 1977. Confidence Intervals and Test Hypotheses Concerning Dose Response Relations Inferred frcm Animal Carcinogenicity Data. Bianetrics 33:4370451.
Druckery, H. 1959. Pharmacological Approach to Carcinogenesis, in Ciba Foundation Symposium on Carcinogenesis: Mechanisms of Action, pp 110-130. Boston: Little, Brown and Co.
Environmental Protection Agency. 1975. Scientific and Technical Assessment Report on Vinyl Chloride and Polyvinyl Chloride. EPA600/6-75-004.
Environnental Protection Agency. 1976. Federal Register. Title 40 Protection of the Environment. Part 6l - National Environmental
Standards for Hazardous Air Pollutants, Standard for Vinyl Chloride. Vol. 41, No. 205.
Eschenbrenner, A.B., and Miller, E. 1944. Studies on Hepatomas. I. Size and Spacing of Multiple Doses in the Induction of Carbon Tetrachloride Hepatomas.. J. Nat. Cancer Inst. 4:385-388.
HEHIR et. al.
Federal Radiation Council. I960. Report No. 1, Background Material for the Development of Radiation Protection Standards. Government Printing Office, Washington, DC.
Finkel, Miriam P. 1958. Mice, Men and Fallout. (The potential danger of strontium, 90 is appraised on the basis of data from animal experiments) Science 128:631-641.
Food Protection Ccmnittee, Food and Nutrition Board of National Academy of Sciences - National Research Council. 1959. Problems in the Evaluation of Carcinogenic Hazard from the Use of Food Additives. Publication 749.
Guess, H.A., and Crump, K.S. 1976. Low-Dose-Rate Extrapolation of Data from Animal Carcinogenicity Experiments - Analysis of a New Statistical Technique. Mathematical Bioscience 32:15-36.
Graff1, A. 1953- Untersuchungen uber den Mechanlsrnus der Carcerogenese und die Wirkungsweise cancerogener Reize. Abhandl. deut. Akad. Wess. Berlin. 53:1-27.
Haber, F. 1924. "Funf Vortrage aus den Yahren 1920-23"; No. 3. Die chemie im Kriege: no. 5. Zur geschlechte des gaskanpes. Julius Springer, Berlin, reference through Prentiss: Chemicals in War. McGraw-Hill Book Company, Inc., New York, 1937.
Horton, A.W., and Denman, Dorothy T.. 1965. Carcinogenesis of the Skin. A Re-examination of Methods for Quantitative Measurement of the Potencies of Complex Materials. Cancer Research 15:701-709.
Keplinger, M.L., Goode, J.W., Gordon, E.E., and Calendra, J.C. 1975. Interim Results of Exoosure of Rats, Hamsters and Mice to Vinyl Chloride. Ann. N.Y. Acad. Sci. 246:219-224.
Lee, C.C., Bhandarl, J.C., Winston, J.M., House, W.B., Dixon, R.L., and Woods, J.S. 1978. Carcinogenicity of Vinyl Chloride and Vinylidene Chloride. J. Tox, Hhviron. Health 4:15-30.
Luft, J.H. 1961. Improvements in Epoxy Resin Embedding Methods. J. Biophys. Biochem. Cytol..9:409-414.
Maltoni, C. 1974. Conmunication sent to the Proceedings on the Pro posed Permanent Standards for Occupational Exposure to Vinyl Chloride. Occupational Safety and Health Administration, US Department of Labor, Washington, DC.
Maltoni, C. 1975. The Value of Predictive Experimental Bloassay in Occupational and Environmental Carcinogenesis. An Example: Vinyl Chloride. Ambio. 4:18-23.
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Maltoni, C. and LeFemine, G. 1974. Carcinogenicity Bioassay of Vinyl Chloride: I. Research Plan and Early Results. Environ. Res. 7:387-405.
Maltoni, C., and LeFemine, G. 1975. Carcinogenicity Assay of Vinyl Chloride, Ann. NY Acad. Sci. 246:195-218.
Mantel, N., and Bryan, W.R. 1961. "Safety" Testing of Carcinogenic Agents. J. Nat. Cancer Inst. 27:455-470.
Maugh II. T.H. 1978. Chemical Carcinogens: How Dangerous Are Low Doses? Science 202:37-41.
McDowell, E.M. ,and-'Trump, B.E. 1976. Histological Fixatives Suitable for Diagnostic Light and Electron Microscopy. Arch. Path. Lab. Med. 100:405-414.
Mole, R.H. 1958. The Dose-Response Relationship in Radiation Carcino genesis. Brit. Med. Bull. 14:184-189.
Poel, w.c. 1959. Effect of Carcinogenic Dosage and Duration of Exposure on Skin-Tumor Induction in Mice. J. Nat. Cancer Inst. 22:19-44.
Saffiotti, U. 1977. Identifying and Defining Chemical Carcinogens, pp. 1311-1362. Origins of Human Cancer, Book C. Human Risk Assess ment. Editors: Hiatt, H.H., Norton, J.D., Winsten, J.A., Cold Spring Charter of Conferences in Cell Proliferation. Vol. 4. Cold spring Charter Laboratory.
Spiegel, M.R. 1961. Theory and Problems of Statistics McGraw-Hill Book Company.
Steiner, P.E. and Loosli, C.G. (1950) The Effect of Human Influenza Virus
(Type A) on the Incidence of Lung Tumors in Mice. Cancer Research ,
10:6, 385-392.
/
Storer, J.B. 1975. Radiation Carcinogenesis, Chapter 16, pp 453-483 in Cancer 1. Etiology: A Comprehensive Treatise. Editor: Becker, F.F. Plenum Press, NY., London.
Tabershaw, I.R., and Gaffey, W.R. 1974. Mortality study of workers in the Manufacture of vinyl Chloride and Its Polymers. J. Occupa. Med. 16:509-516.
Upton, A.C., Randolph, J.L., and Conklin, J.w. 1970. Late Effects of Fast Neutrons and Gamma-Rays in Mice as Influenced by the Dose Rate of Irradiation: Induction of Neoplasia. Radiation Res. 41:467.
Viola, P.L., Bigotti, A., and Caputo, A. 1971. Oncogenic Response of Rat Skin, Lungs and Bones to Vinyl Chloride Cancer Res. 31:516-522.
HEHIR et. al.
ACKNOWLEDGMENT
The authors would like to thank Drs. Gerald Kolaja and Glen E. Marrs for performing the gross pathology; Dr. David E. Hinton for preparing the electron micrographs, and Mr. Richard L. Dimmick and Mr. Joseph . Wiles for their technical assistance throughout these experiments. We also wish to acknowledge Mr. Milton K. Christensen, Mr. Edmund~J." Owens, Mr. Michael A. Lochner, and Mr. Ronald Pellerin for their help and cooperation. Finally, the authors would like to thank Mr. Steve Ganocy for his help with the statistical analysis and risk assessment model.
00u0c1c76
Species
Fischer 3fl4 Rat
ICR Mouse
* Rat Mouse
Table 1.
Single Exposure Schedule of Animals to VCM
Sex Dose ppm
Exposure date AM PM
Exposure group size(s)
M 50
3/4/75
500 3/11/75
5000
3/18/75
50000
3/25/75
90 90
85 90
F 50 500 5000 50000
3/4/75 3/11/75 3/18/75 3/25/75
90 100
95 88
M 50
3/4/75
500 3/11/75
5000
3/18/75
50000
3/25/75
F 50 500 5000 50000
3/4/75 3/11/75 3/18/75 3/25/75
M Neg/Cont. F Neg/Oont.
l
M Neg/Cont. F Neg/Cont.
90 90 90 90
90 90 90 90
92 79
82 88
Age at time of exposure
weeks
15 16 17 18
15 16 17 18
15 16 17
18
15 16 17 18
15-18 15-18
15-18 15-18
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Table 2. Exposure Schedule for Animals Exposed Repeatedly to VCM
Species
Fischer Rat
A/J Mouse
Fischer Rat
A/J Mouse
Sex Dose
ppm
M 50
500
F 50 500
M 50 500
F 50 500
M Neg. Control
F Neg. control
M Neg. control
F Neg. control
Exposure periods
days
100
10
100
10 100
10 100
10. 100(c)
10(c) 100(c)
10(c) 100(c)
10(c) 100(c)
10(c)
Exposure dates
From
lb
Exposure Group
size(s)
Start
End
8/27/75 1/26/76
7/7/75 7/18/75
8/27/75 1/26/76
7/7/75 7/7/75 8/27/75 7/7/75__ 8/27/75
7/18/75 7/18/75 1/26/76 7/18/75 1/26/76
--
__
--
-----, --
--
90
90
90
90 90 90
... _ 90 ... 90 50 _ 50 50 50 40 50 50 50
86
90
87
90 87 90 88 90 50 _5Q_ *17 50
39 50 50 50
Nani: (c) control for corresponding dose above.
Age
Start
End
wks
21 41
14
21
14
15 ......... 8
15 8
21 14 21 14
15 8
15 8
16
41
16
35 10
35 _1Q
41 16 41 16
35 10
35 10
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Group I II
III
'[ctble 3- VCM Mult]generation Study PQ Parents /
Compound Air VCM
VCM
Dose-^ Control
Low Dose (50 ppm)
High Dose (500 ppm)
Number of Males
25
25
25
Ntsnber of Females
25
25
25
a/ Sprague-Dawley/Wistfir rats.
' b/ Exposed to 50 or 500 PPM of VCM one-hour per day, five days per week for 10 weeks (49 exposures) before mating.
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Table 4.
Over-all Surrmary Incidence of Non-neoplastic Changes and HIstologically-Proven Neoplasms Within the Liver and Lungs of ICR Swiss Mice Exposed to Vinyl chloride.
Single Inhalation Exposure
Tissue/Response
Exposure
Control
Dose Level (ppm)
0
Sex of Animals M
F
Animals Per Groups: 62 77
Liver
:Nunber Evaluated: 50 75
- hepatic cell necrosis - hepatic cell vacuolation
(lipidosis) - hepatic cell hypertrophy - hepatic cell hyperplasia - angiectasis - sinusoidal reticulosis
2 10
2 11 1
- hepatic cell adenoma - hepatic cell carcinoma - hemangioma - hemangiosarcoma
2 2
1
Incidence of Response
Vinyl chloride
50,000
5,000
500
M FM
FM
n 82 76_____ 82 72
F 75
63 78 68
76 67
72
3 55
74
6
42
12 3
5
28
84
13
It !|
14
5
1 4 16
1
1 19
50 MF
81 80
64 68 23 14 1
2 2
Lung
:Number Evaluated: 50
- pneumonitis
1
- bronchlo-alveolar adenoma - bronchlo-alveolar carcinoma
f|
70 6 8
61 16 65
21 10 13
31 1*1 14 1 21
78 66 17 19 10 8
73 71
15 4
10 8 1
68 7 6
a/ Total includes animals from sclieduled sacrificed (8 and 18 month periods) and spontaneous deaths.
IJCC 000181
Table 5:
HISTOLOGICAL EXAMINATION OF ICR MICE AT 0 AND TO MONTHS FOLLOWING A SINGLE (l-HOOIt) EXPOSURE TO VINYL CHLORIDE MONOMER
VINYL CHLORIDE CONCENTRATION 50.000 PPM* 6,000 PPM'
500 PPM* 50 PPM 0 ICONTROL)
HISTOLOGICAL CHANGES ATTRIBUTABLE TO VINYL CHLORIDE
INDUCTION OF PULMONARY ADENOMAS 45/137 OR 33.3% 24/143 OR 1S.SX 18/139 OR 12.9% 14/139 OR 10.1% 12/120 OR 10.0%
PROGRESSION TO CARCINOMA 3/137 OR 2.2% 1/143 OR 0.7% 1/139 OR 0.7% 0/139 OR 0% 0/120 OR 0%
PNEUMONITIS WAS EVIDENT IN ALL ANIMAL GROUPS WHICH WERE EXPOSED TO VCM AT DOSES OF 600 PPM OR MORE.
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Table 6.
Over-all Summary Incidence of Non-neoplastic Ghanges and Histologi cal ly-Proven^Neoplaans within the Liver and Lungs of AJ Mice Exposed to Vinyl Chloride
(Multiple Inhalation Exposure)
Tissue/Response
Exposure Dose Level (PPM) House Exposure Sex of Animal Animals Per Group
:M : <16
Incidence of Response
Control
Vinyl Chloride
0 500
10 x 1
10 x 1
P MF
48 78 92
Liver
: Number Evaluated : <15
48
78 8
- hepatic cell necrosis - lumphoid cell infiltrate - hepatic cell lipidosis - neutrophil infiltrate - bile duct hyperplasia - granulomatous foci - sinusoidal reticulosis - hepatocyst - amyloidosis - angiectasis
<1 6 1 2 2 1
6 13 1 2
1
1 1 1
1 1
- hepatic cell adenoma - cholangiocarcinoma
1
1
IT T 13 IF
Lung
: Number Evaluated : 13 47 li 90
- edema - pneumonitis - bronchio-alveolar hyperplasia
2 21
1 2
- bronchio-alveolar adenoma - bronchio-alveolar carcinoma
15 16 56 68
3 12 10
IT 22
HI
a/ Total includes animals from scheduled sacrified {5, l6, 20 month periods) and spontaneous deaths.
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Table 7 Over-all Sumiary Incidence of Non-neoplastic Changes and ttLstologically-Proven Neoplasms Within the Lungs of AJ Mice Exposed to Vinyl Chloride.
Multiple Inhalation Exposure
Tissue/Response
Exposure Dose Level (PPM) Hours Exposure Sex of Animal Animals Per Group
Lung
: Number Evaluated
- edema
- congestion - focal hemorrhage - pneumonitis - bronchlo-alveolar hyperplasia - osseous metaplasia
Control 0
100 x 1 M 39
39
2 d 2 5
- bronchlo-alveolar adenoma - bronchlo-alveolar carcinoma - reticulum cell sarcoma
11 2
13
Incidence of Response Vipyl chloride 50 100 i 1
F MF 47 81 83
45 77 81
11 2
3 45 33
1
18 27 38 34 1
Iff 30 43
a/Pota1 includes animals from scheduled sacrifice (8, 16, 20 month periods) and spontaneous deaths.
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Table 8:
HISTOLOGICAL EXAMINATION OF A/J MICE AT 8, 16, AND 20 MONTHS FOLLOWING MOLTIPLE (1HOUR) EXPOSURES
TO VINYL CHLORIDE MONOMER
NUMBER OF EXPOSURES Si CONCENTRATION OF VCM
0 (CONTROLS)
10 X 600 PPM 5/
0 (CONTROLS
100 X 60 PPM W
HISTOLOGICAL CHANGES ATTRIBUTABLE TO VINYL CHLORIDE MONOMER
INDUCTION OF
PROGRESSION TO
PULMONARY ADENOMAS
CARCINOMA
31/90 OR 34.4%
3/90 OR 3.3%
124/166 OR 74.7%
22/166 OR 13.3%
29/B4 OR 34.6%
2/64 OR 2.4%
66/156 OR 44.1%
7/158 OR 4.4%
a/ Highly significant difference In the number of pulmonary adenomas (P< .001) and carcinomas (Paf .0011 observed at the 500 ppm X 10 one hr exposure level versus control by Z test (Spiegel 1961).
b/ No significant difference for pulmonary adenomas (P *. 0.14) and carcinomas |ME 0.19 observed at the lower Multiple exposure level.
Table 9. Over-all Sumery Incidence of Non-neoplastlc Changes Within The Lungs of Fischer Rats Exposed to Vinyl Chloride
Single Inhalation Exposure
Tissue/Response
Exposure
:
Dose Level (PPM) :
Sex of Animal
:
Animals Per Group3 :
Control 0
MF
89 7*t
Incidence of Response
Vinyl Chloride
$0,000
5.000
500
M F M PM F
86 87 83 93 87 100
50 MF
90 91
Lung - bronchopneumonia
:Number Evaluated
: 85 26
67 10
80 77 80 87 85 95 80 71
13 13
10 15
3 28
3
% Incidence
: 30.6 1H.9 56.2 16.9 16.3 11.5 17.6 3 35.0 i|
a/Total Includes animals from scheduled sacrifice (8,16, and 2*1 month periods) and spontaneous deaths.
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Table lo. Incidence of Eosinophilic Changes Within Livers of EWA Colony (Sprague-Dawley) Rats Multiple Inhalation Exposures to Vinyl Chloride (VC)
Exposure Dose Level (PPM) t lours Exposure Group a/
Control
0
99 AB
T
VC
500
99 A BT
A
Males: Animals per group
Eosinophilic Focus/Foci %
Eosinophilic Area/Areas %
Eosinophilic Alterations b/ %
Females: Animals per group
Eosinophilic Focus/Foci ?
Eosinophilic Area/Areas %
Eoslniphllic Alterations b/ ?
9
1/9 11.1
0/9 0.0
16
1/13 7-7
1/13 7.7
1/9 1/13
11.1
7.7
18 7
0/18 0/7 0.0 0.0
Vl6 ~o77
22.2
0.0
ViB ~o77
22.2
0.0
25 2/22
9-1 1/22
*1.5
2/22 9.1
25
0/25 0.0
1725 16.0
1725 16.0
13 12
10/13*** 3/11 76.9 27-3
1/13 1/11 7.7 9.1
10/13 9/11 76.9 36.9
11 19
9/11 36.9
2711
18.2
1/13 7.7
0/13 0.0
5711 1/13
95.9
7.7
25 13/29***
59.2 2/29
8.3
19/29**** 58.3
25
5/29** 20.8
2/29 8.3
6/29 25.0
11 9/10
90.0
0/10 0.0
9/10 90.0
19
2A9 10.5
1/9 5.3
3/19 15.8
a/ Group: A = Scheduled sacrifice, B = Spontaneous deaths, T = Total b/ Eosinophilic foci and/or areas in the same animal are tabulated
one time as an eosinophilic alteration x = Different from control at 5.0 ->2.5% level (P = .05 - .025) XX = Different from control at 2.5 - >0.5? level (P = 0.25 - .005) XXX = Different from control at 0.5 - >0.05? level (P = .005 - .0005) XXKX = Different from control at 0.05? level (P = .0005)
VC
50
99 BT
19
9/11* 36.9
3/11 27.3
25 8/21**
38.1
3/21 19.3
5/11** 9/21** 95.9 92.8
6 25
1/6 . 16.7
1/6 16.7
1/6 16.7
3/25* 12.0
2/25 8.0
9/25 16.0
Table 11. SUMMARY - VINYL CHLORIDE LIFETIME CANCER STUDIES
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Experimental Group
PPM
DAYS (1 hr/day)
(ppm-hrs)
SPECIES
NUMBER EXPOSED
RESULTS
A 50,000
1
50,000
ICR Mice
180 2.2% Carcinoma/33% adenoma
Fischer Rats
178 negative
A 5,000
1
5,000
ICR Mice Fischer Rats
180 0.7% Carcinoma/lG.B%adenoma 180 negative
A 500 1
500 ICR Mice Fischer Rats
180 0.7% Carcinoma 190 negative
A 50 1
50 ICR Mice Fischer Rats
180 negative 180 negative
B
500 49
24,500
Sprague-Dawley/ Hi star Rats
49
Eosinophilic changes
B
50 49
2,450
Sprague-Dawley/
47 Eosinophilic
Histar Rats
changes
C
500 10
5,000
AJ Mice
180 74% Adenoma
Fischer Rats
180 negative
C
50 100
5,000
AJ Mice
179 41% Adenoma
Fischer Rats
180 negative
TOTAL EXPOSED TOTAL CONTROL COMBINED TOTAL
2263 776
3039
A - 170 ICR Mice (82 male and 88 female) and 171 Fischer Rats (92 male and 79 female) served as control animals for the single exposure (50,000; 5,000; 500; 50 PPM) studies.
B - 45 Sprague-Dawley/Wistar (20 male and 25 female) served as control animals for multigeneration reproduction study. C - 190 AJ Mice (89 male and 101 female) and 200 Fischer Rats (100 male and 100 female) served as control animals
for the multiple exposure (10 X 500 PPM and 100 X 50 PPM) studies.
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Table 12. Summary of Matings and Percentage Pregnancy Observed In the VCM lliree-OeneratIon Study.
Total Gen. W Females
Mated
F0 25
Control3
Total Females Pregnant
Tbtal % Pregnant Females
Females Mated
22 88 25
50 pprrP'
Total Females Pregnant
Total % Pregnant Females
Females Mated
21 84 25
500 pptT.a
Total Females Pregnant
% Pregnant Females
23 92
F1 20 19
95 19
18
94.7
21
21
100
F2 19 19
100 18
18
100 21
21
a/Here and In all similar tables, the exposure level refers to that of the Fq generation,
b/ Generation
100
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000189
Table 13. Average Litter Size for the Three-Generation VCM Study.
Total GEN. Pups
Bom
F1 195
Control
Total Average Nurrber Litter Litters Size
STD Dev
22 8.9 0.63
50 ppm
Total Total Pups Nurrber
Bom Litters
Average Litter Size
STD Dev
202 21
9.6 0.64
Total Pups Bom
184
500 ppm
Total Average Nuriber Litter Litters Size
STD Dev
23 8.0 0.6l
f2 239
19 12.6 0.67 23*>
18
13.0
0.69
255
21
12.1
0.64
P3 225
19 11.8 0.67 204
18
11.3
0.69
285
21
12.6
0.64
Table 14. Percentage of Stillborn Pup3 In the VCM Three-Generation Study
------------------------------------------------------------ ---- -- Control
GEN.
Total Pups Bom
Total Stillborn
%
Stillborn
Total Pups Bom
P1 195
1
0.51
202
50 ppm
Total Stillborn
5
Total % ' Pups Stillborn Bom
2.48
184
500 ppm
Total Stillborn
3
%
Stillborn
1-63
F2 239
0
0.00
234
2
0.85
255
2
0.78
225 2
0.89
204
5
2.45
265
3
1.13
Table 15. Nunbers, Sex, and Weights of Generation
Age Of Pups Days
1
Total Neither of Pups
Control
50 ppm
Male Female Male
Female
102 92 105
93
500 ppm Male Female
93 88
Average Weight (Grams)
Control
50 ppm
500 ppm
Male
Female Male
Female Male Female
6.88
6.60 6.98
6.69 7-05
6.76
*) 102
92 105
93 92 88 10.50 10.03 10.50 10.15 10.72 10.37
7 102
89 105
93 92 88 15.29 1*1.71 15.30 1*1.87 15-76 15. *11
1*1 102
89 105
92
92
88 27-8
26.8 28.6
27.2 28.6
23.*
21 102 89 105
92
92
88 *1*1.5
*12.*1 *1*1.3
*12.8 *15.*1
*1*1.1
Table 16. Numbers, Sex, and Weights of Generation
Age of Pups Days
1
Total Number of Pups
Control
50 ppm
500 ppm
Male Female Male Female Male
Female
120 119 114 118 123
130
Average Weight (Grams)
Control
50 ppm
500 ppm
Male Female Male
Female Male Female
6.38
6.13 6.55
6.16 6.52
6.18
4 118
119
114
117
122
130
9.70
9.13 9.82
9.21 10.00
9.27
7 118
119
113
116
122
130 14.38 13.85 14.57
13.45 14.72 13.97
14 118
119
113
116
122
130 27.77 27.26 28.10
26.15 28.80 27.44
21 118
119
113
116
122
130 40.89 40.57 41.54
38.67 42.93 41.20
nnr.iiHEMT control sheet
Tms document Control Sheet has been inserted into tms section for the purpose of preserving the integrity of the page oroer of this group of documents.
OATS:
Missing Psgs Number--------------
Sate label Number; .
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Table 17 . Numbers, Sex, and Weights of F^ Generation
Age of Pups Days
1
Total Nunber of Pups
Control
50 ppm
500 ppm
Male Female Male Female Male
Female
112 111
91 108 139
123
Average Weight (Grams)
Control
50 ppm
500 ppm
Male Female Male
Female Male
Female
6.82
6.38
6.84
6.61 6.66
6.30
4 112
111
91 108 139
123 10.18 9.47 10.35
9.76 9.87
9.07
7 111
111
91 108 139
123 14.63 13.90 14.81 14.18 13.89 13-25
14 111
111
90 108 135
121 26.41 25.39 27.46 25.81 25.53 23-95
21 111
111
90 108 135
121 34.77 33.85 36.75 35.14 35.11 33.40
Table is . Viability, Survival, and Lactation Indexes in a Three' Generation Study of Reproductive Performance After
Exposure of the Pg Parents to VCM Gas.
Low Dose
Higi Dose
Generation______ Control_________ 50 oom_______________ 500 ocm
PI 100 100
Viability
P2
99.2
99.7
p3 100 100
99*4 99.6 100
Survival Index
pl f2 P3
98.5 99.2 99.6
99.5 98.7 99-5
99-4 99.6 97.3
Lactation Index
P1 P2 F3
98.5 100
99.6
99.5 99-1 99.5
Viability Index * Day 21 Survival Index
Lactation Index *
No. of pups alive at Day 4 x 100
No. of pups bom alive
No. of pups alive at Day 21
No. of pups born alive
x 100
No. of pups alive at Day 21 ,
No. of pups alive at Day 4
99-4 100
97.3
Bansrjee, B.N., Course Director, Teratology-Principles and Procedures Related to Petal Development. The Center for Professional Advancement, Somerville, New Jersey. Septentoer 1974. Personal Ccumunication.
UCC 000197
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Table 19. MALTONI VINYL CHLORIDE STUDIES^ *>/ Calculations based on reference
TEST ET1 HT3
SPECIES RATS RAIS
BT6 RATS ETT7 RATS
ETH MICE
K* = thousand (000)
a/ C. Maltonl 1975 b/ C. Maltonl and G. Lefemine 1975
RESULTS (CARCINOGENESIS) - PPM-HRS
QUESTIONABLE AT 52K*
NEGATIVE AT 17K QUESTIONABLE AT 85K POSITIVE AT 170K, 850K, 2O0OK, 3000K
POSITIVE AT 24,600k
NEGATIVE AT 52K, 260K QUESTIONABLE AT 520K POSITIVE AT 2600K, 6200K, and 10,*)00K
POSITIVE AT 30K, 150K, 300K, 600K, 1500K and 3600K
TABLE 20. OTHER VINYL CHLORIDE STUDIES
AUTHORS VIOLA, BIGOTTO,
CAPIHO 1971
CAPUTO, VIOLA BIGOTTI 197*1
KEPLINGER et al., 1975
LEE 1978
CONSUMER PRODUCTS SAFETY COMMISSION 1979
SPECIES RATS
RATS
RABBITS
MICE (RATS & HAMSTERS)
MICE
ICR MICE
A/J MICE FISCHER RATS
RESULTS (CAI1CINOGENESIS) - PPM-IIRS POSITIVE AT 28,BOOK
NEGATIVE AT 48K POSITIVE AT 320K, 1280K, 3200K
6*00K, 12,800K POSITIVE AT 7200K
POSITIVE AT 56K
ALL TESTS ESSENTIALLY NEGATIVE BELOW AND POSITIVE ABOVE 78K.
50 AND 500 - NEGATIVE 5000 - BORDERLINE POSITIVE 50,000 - POSITIVE 5000 - POSITIVE 50, 500, 5000, AND 50,000 - NEGATIVE 2*1,500 - EOSINOPHILIC LOCI, NO CANCERS
ucc
000200
Table 21:
TLV VS ACCUMULATED PPM/HRS
TLV 200 PPM
10 PPM FIVE DAY WORK WEEK
TIME* TO ACCUMULATE CARCINOGENIC DOSE
MOUSE
RAT
6000 PPM/HR
160,000 PPM/HB
3 DAYS
16 WEEKS
12 WEEKS
376 WEEKS
dS/
0
50
500
5000 50000
Table 22: VINYL CHLORIDE INHALATION - PULMONARY RISK
Carcinoma-^
0/120
0/139 1/139 1/193 3/137
Singcle Exposure (ICR mice) Risk Given Dose 95 Percent
P(d)--^
U
.002723 .002799
.002931 .00*)803 .023329
-.002118
-.002090
-.0018*12 -.000001 -.001*135
.007563 .0027*1*) .007703 .00960*1
.0*18093
99 Percent i.
u
-.003639
-.003609 -.0033*)1 -.001507 -.009218
.009085
.008096
.009203
.001113 .055876
P(d) - P (o)/
.1 .01 .001 .0001 .00001 .000001 .OOQOOOl .00000001
d/
50,000
29,13*1 2,*)03 290 29 2.9 .29 .029
Dose Given Excess Risk 95 Percent Lu
22063
10675 1063
106
11 1.1 .11 .011
113312 59561
5931 593 59
5 .59 .059
99 Percent
i>
18767 9089 909 90 9 1 .09 .009
u
133209 69122 6383 638 69 6 .69 .069
a/ Vinyl chloride exposure In ppm. b/ Number of mice with carcinoma/nunfcer of mice total. c/ Risk or probability that animal will develop a particular tumor (Method: d/ Upper and lower confidence limits of 95 and 99 percent, e/ Risk of excess cancers at various dose levels.
Crump, Guess, Deal 1977).
Table 23:
SUMMARY OF EFFECTS OF VINYL CHLORIDE
TOXICOLOGY
ANESTHETIC EFFECTS AT 60.000 PPM DURING EXPOSURE
NO EFFECTS AFTER EXPOSURE:
TOXICOLOGICAL SIGNS WEIGHT GAIN MORTALITY REPRODUCTION (PARENTS)
MATINGS, PERCENTAGE OF PREGNANCIES LACTATION INDEX, FERTILITY INDEX REPRODUCTION (Ft, Fj, Fj) PERCENT STILL-BORN, LITTER SIZE, POST NATAL GROWTH, VIABILITY, SURVIVABILITY, ANOMALIES PATHOLOGY
PNEUMONITIS IN MICE AGGRAVATION OF BRONCHOPNEUMONIA IN RATS
EOSINOPHILIC CHANGES IN RATS (NO TUMORS)
CARCINOGENESIS
NEGATIVE IN RATS
INCREASE IN FREQUENCY OF TUMORS IN MICE
I
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