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CHRONIC TOXICITY OF HALOGENATED BIPHENYLS AND RELATED COMPOUNDS IN ANIMALS AND HEALTH EFFECTS IN HUMANS
RENATE D. KIMBROUGH, M.D.
TOXICOLOGY BRANCH BUREAU OF LABORATORIES CENTER FOR DISEASE CONTROL
PUBLIC HEALTH SERVICE DEPARTMENT OF HEALTH AND HUMAN SERVICES
ATLANTA, GEORGIA 30333
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Some isomers and congeners of several aromatic halogenated hydrocarbons cause similar toxic syndromes (Kimbrough 1974). These are chlorinated and brominated biphenyls, naphthalenes, dibenzodioxins and dibenzofurans. The 3, 3',4, 4' - tetrachloroazobenzene and 3, 3',4, 4' - tetrachloroazoxybenzene cause similar effects but may be generally less toxic because they are more easily metabolized (Hsia.et al. 1980). Of the compounds mentioned the chlorinated naphthalenes, the brominated biphenyls, and the chlorinated biphenyls have been used commercially while the halogenated dibenzofurans, dibenzodioxins and the chlorinated azobenzenes and aaoxybenzenes are contaminants of commercial products.
Polychlorinated biphenyls may be contaminated with chlorinated dibenzofurans (Bowes et al. 1975). Pentachlorophenol may be contaminated with chlorinated dibenzodioxins and chlorinated dibenzofurans (Goldstein et al. 1977), and hexachlorobenzene (Villanueva et al. 1973), has been shown to contain the same compounds. The 2,3,7,8 -tetrachlorodibenzodioxin is a contaminant of 2,4,5 -trichlorophenol, and the derivatives made thereof, which include the herbicide 2,4,5-T and hexachlorophene. Further more, it ha6.recently been shown that 2,4-D if made by the same company using the same equipment, that was used for the production of 2,4,5-T may then also be contaminated with 2,3,7,8-tetrachlorodibenzodioxin (Fed. Register 1979). *
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The commercial products are mixtures of isomers and congeners
and as the different components of the mixture are studied more
extensively it is recognized that they vary greatly in their
toxicity (Table 1). The most toxic of the entire group of chemicals
i.6 the 2,3,7,B-tetrachlorodibenzodioxin. The amount of compound
necessary to produce the same chronic toxic effect differs also,
for different chemicals. A marked species variation exists in
the response to these chemicals. Mink, guinea pigs and sub-human
primates are more susceptible to the toxic effects than rats and
mice. The types of diseases reported in different animals and
the symptoms related to these different compounds in men are
summarized in Tables 2, 3, and 4.
Although many of these compounds were introduced into commerce
in the 1940s and some of them earlier than that, their toxicity
was not studied extensively until the 1960s and 1970s. The first
compounds of this entire group to cause illness in people were the
chlorinated naphthalenes. During the first World War, chlorinated
naphthalones were used in the production of gas masks which resulted
in outbreaks of occupational chloracne (Wauer, 1919). It was not
until the second World War that it was recognized that mixtures
of chlorinated napthalenes and chlorinated diphenyls may produce
liver toxicity in workers (Jones, 1941; Sulzberger, 1934; Flinn et al.
1936). Such cases were isolated and it has been speculated that
additional factors such as infectioijs viral hepatitis may have
contributed to the disease.
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In addition to the effects observed in laboratory animals,
farm animals have also suffered a variety of illnesses from
these different compounds. Among farm animals, cattle and chickens
have primarily been affected. In cattle the so-called hyperkeratosis
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or X disease is characterized by excessive lacrimntion, diarrhea and discharge from the nostrils. In addition, such animals develop a chronic cough, poor appetite, numerous red maculae in the buccal mucosa, and hyperkeratosis of the skin. The abomasum may become inflamed with many superficial ulcers (Olafson, 1957; Sykes et al. 1952}. After numerous investigations it was established that X disease could be produces in cattle by the ingestion of highly chlorinated naphthalenes.
In the late 1950s, outbreaks of a disease occurred among chickens which caused extensive losses throughout the southeastern part of the United States. One of the leading symptoms was fluid accumulation in the pericardial sac and the peritoneum. The disease was therefore called chick edema(Simpson et al. 1954; Sanger et al. 1958). Following extensive research it was finally determined in 1967 (Cantrell et al. 1967), that 1,2,3,7,8,9-hexachlorodibenzodioxin was one chemical responsible for chick edema disease. The source of this compound was fat which had been obtained from fats and tallows of hides treated with chlorophenols. When these fats were heated to produce fatty acids some of the chlorophenols may have, been converted to chlorinated dlbenzodioxins. In addition, the chlorinated phenols were also contaminated with chlorinated dibenzodipxins and dibenzofurans. It was later established that chick edema could also occur following exposure of chickens to chlorinated naphthalenes and chlorinated biphenyls (Kimbough, 1974).
Thus far the only extensive outbreak of acute illness among the general population following exposure to these types of chemicals occured in Japan in 1968. There rice oil become contaminated with chlorinated biphenyls and also chlorinated dibenzofurans
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and quarter-phenyls. Since the disease was caused by rice oil
it was termed Yusho the. Japanese word for rice oil (Kimbrough,
1974; Cordell et al. 1978).
Another group of compounds, 3,3', 4, 4'-tetrachloroazobenzene
and the tetrachloroazoxybenzene are contaminants of 3,4-dichloroaniline
and its derivatives, (Sundstrom et al. 1978). The only illness
linked to human exposure to 3,3', 4, 4'-tetrachloroazobenzene and
3, 3',4, 4'-tetrachloroazoxybenzene is chloracne (Taylor et al.
1979; Morse et al. 1979). One such chloracne outbreak was investigated
by the Center for Disease Control (Morse et al. 1979). A particular
chemical company made propanil, N-(3,4-dichlorophenyl) propanamide,
from 3,4-dichloroaniline. The 3,4-dichloroaniline used in this
factory contained 51 mg/kg tetrachloroazobenzene and the propanil t* yV^
contained over 1000 mg/kg tetrachloroazobenzene. Other commercial
y ,, \ Yr
herbicides that are also made from 3,4-dichloroaniline usually
contain 3,3',4,4'-tetrachloroazobenzene at concentrations of less
than 100 mg/kg (Hill et al. Arch. Environ.i Healtlh in press).
Most of these chemicals are not readily metabolized and excreted.
Since they are all lipophilic they are stored in adipose tissue
and may be excreted in milk. Certain isomers of chlorinated and
brominated biphenyls are the most persistent in this group.
When rats were given a single dose of a polybrominnted biphenyl
mixture (Kimbrough et al. 1978), the polybroroinated biphenyls did
not decline appreciably in blood and' adipose tissue over a 14 month
period once they were equilibrated in the different tissue compartments.
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Similarly certain congeners of the polychlorinated biphenyls
are not excreted. Rats fed Aroclor 1254 for 6 months (daily dietary
intake about 5 mg/kg b.w.) after a 10 month recovery period
8ti11 had 152 ppm polychlorinated biphenyls in their adipose tissue.
The PCB congeners retained this long were the more highly chlorinated
ones.
The 3,3',4,4'-tetrachloroazoxybenzene and 3,3*,4,4'-tetrachloro-
benzene seem to be more rapidly metabolized (Hsia et al. 1980,).
Not much information i6 available on the pharmakokinetics
of halogenated dibenzodioxins, dibenzofurans and naphthalenes.
The half life for 2,3,7,8-tetrachlorodibenzodioxin (TCDD), is
3-4 weeks (Rose et al. 1976). In rats, more TCDI) is stored in
the liver than in adipose tissue (Kociba et al. 1978), while in
monkeys and humans, the opposite is true.
Polychlorinated biphenyls and 2,3,7,8-tetrachlorodibenzo-
dioxins are animal carcinogens. At daily dietary levels of
0.1 pg/kg b.w. 2,3,7,8-tetrachlorodibenzodioxin an increased t
incidence of hepatocellular carcinomas of the liver and squamous
cell carcinomas of the lung, hard palate/nasal turbinate or tongue
was noticed (Kociba et al. 1978). Hepatocellular carcinomas
have also been produced in rodents by feeding chlorinated biphenyls
(Kimbrough et al. 1975), but tumors of the lung6 and upper respiratory
system were not noted.
In earlier studies in our laboratory, hepatic neoplastic
nodules were observed in a preliminary study with polybrominated
biphenyls (Kimbrough et al. 1978). Therefore, additional studies
were conducted with larger numbers of rats. It was determined
.
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that a single dose of 1000' mg/kg of PBB in corn oil given to
eight-week-old female Sherman strain rats produced a 41% incidence
of hepatocellular carcinomas. In addition most of these rats had
hepatic neoplastic nodules, a tumor considered to represent part
of the response of the rodent liver to carcinogens (1LAR 1980).
Many of them also had hepatic pophyria. Repeated doses of 100 mg/kg
twice a week for a total of 12 doses given to young rats produced
a 67% incidence of hepatocellular carcinoma. At the end of the
study these rats still had appreciable amounts of PBB in their
adipose tissue and in the liver (Table 5). A lower single oral
dose of 200 mg/kg given to female rats at the age of 4 months
produced neoplastic nodules but no hepatocellular carcinomas
(Kimbrough et al. manuscript in preparation).
*
Attempts to induce cancer of the skin in rodents by dermal
exposure to these compounds have not been very successful. It
has been suggested that most of these compounds are promoters
of cancer instead of intiators of cancer (Berr.y, et al. 1979). .
A number of reports in the scientific as well as public
press have associated exposure to these compounds with an increased
incidence of cancer in people. Some of these reports have raised
suspicions but thus far no studies have been reported suggesting
a definite link between cancer and exposure to these compounds.
One reason for the lack of such evidence is that groups of workers
exposed to these compounds ore usually small and studying them
would not necessarily demonstrate slight increases in cancer rates.
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Unfortunately, these negative findings may create a false 6ense of security.
However, other human health effects have been reported for some of these chemicals. In addition; to chloroacne, increased triglyceride and cholesterol serum levels have been associated with exposure to these type6 of compounds. Abnormal liver functions tests and a sensory neuropathy have also been reported (Kimbrough 1974). Workers exposed to high concentrations of TCDD have developed porphyria cutapea tarda (Jirasek,1976^ -
Recently the Center for Disease Control studied a population of about 600 inhabitants of a smal jll rural town in the South Eastern United States. A source of protein was fish caught in a near by river system. When it was discovered that this fish contained high concentrations of DDT residues, DDT serum levels were determined in 1978 on a few fish eaters and found to be extremely high. Subsequently a study was conducted of the entire population (Kreiss et al. manuscript in preparation). This study consisted of the administration of a questionnaire, measurement of height, weight, blood pressure, clinical chemistry tests and analysis of serum for DDT levels. During the course of the serum DDT analyses it was discovered that PCB levels also seemed to be high in a number of the 6era. The sera were subsequently al60 analyzed for PCB. Several interesting findings were made in this study. First DDT and PCB residue levels increased with age and correlated well with fish consumption. Although DDT
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residue levels in the fish were high, the PCB levels in fish
were below or close to the present JFDA guidelines, suggesting
that heavy fish eaters can build up substantial PCB levels.
For instance, a composite sample of 6 catfish from the
area averaged 3.64 mg/kg and 4 cataco creek catfish had 4.34 mg/kg \'
PCB. Catfish from other sites in the river system averaged
0.59 mg/kg. In spite of extensive environmental sampling by
the EPA no point source for PCB could be uncovered. For the
458 individual PCB measurements the geometric mean serum
s
PCB level was 17.2 yg/L and the range was 3.2-157.9 yg/L.
*
This mean PCB blood level is within the same range of blood
levels of the general population. Serum PCB levels correlated
well with fish consumption,. Of the health indices measured in
this population only cholesterol, hypertension and one liver
enzyme test, Y-glutarayl-transpeptidase, were positively
associated with PCB serum levels, all independent of major
confounding variables. Although there wa6 a gObd correlation
between total DDT and PCB blood levels there was no positive
association between DDT serum levels and hypertension.
Many factors affect blood pressure and cardiovascular
disease such as: smoking, diet, excercise, excessive salt
Intake and genetic make up. These factors are probably of
greater importance than exposure to PCBs. Similar studies in
other exposed groups are needed to 6tudy these various confounding
variables.
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Table I Acute Oral LD^q in Rats
Compound Aroclor 1240
LD50 4.25 g/Kg
Aroclor 1260
4-10 g/Kg
Aroclor 1254
4-10 g/Kg
TCDD
44.7 pg/Kg
2,3,6,7-Tetrachloronaphthalene >11.3 mg/Kg
1-chloronaphthalene
1540 mg/Kg
2-chloronapli thalene
2078 mg/Kg
Brominato.d biphenyls (Firemaster BP-6)
21.5 g/Kg
Reference Kimbrough et al. 1978 Kimbrough et al. 1978 Kimbrough et al. 1978 Rowe et al, 1971 McConnell, in press NTIS PB 225-283 NTIS PB 225-283
Michigan Chemical Corp. 1974
1
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Table II. Examples of Effects Produced by Compounds in Animals
Compound_____ PCB
Effects
Reference
1. Decrease in liver vitamin A in Japanese quail and rats
Cecil et al, 1973
2. Chick edema
Vos and Koeman, 1970
3. Induction of liver microsomal enzymes in rats and other species Johnstone et al, 1974
4. Effect on chick embryo
Cecil et al, 1973
5. Porphyria cutanea tarda (hepatic porphyria in rats chickens and quail)
Goldstein et al, 1975 Vos and Koeman, 1970 Vos et al, 1971
6. Liver disease in rats,mice and chickens
7. Liver tumors in rats
Kimbrough et al , 1972 Kimbrough and Linder, 1974 Vos and Koeman, 1970 Kimbrough et al, 1975 Ito et al, 1974
8. Hyperkeratosis in rabbit ears
Vos and Hotenboom-Ram, 1972
9. Effects on embryo, neonatal and postnatal effects in rats.^nd minks
Linder et al, 1974 Ringer et al, 1972
10. Gastric mucosal ulceration in mink and rats. Hyperplasia gastric mucosa in 6ubhuman primates
Kimbrough, 1974 Allen and Norback, 1973
TCDD
1. Effects on embryo, neonatal and postnatal in rats
2. Porphyria cutanea tarda (Hepatic porphyria) in mice
3. Liver disease In rats, mice and guinea pigs
4. Thymic atrophy in rat and guinea pig
Murray et al, 1978 . Moore et al. 1973
Vos et al, 1974
Gupta et al, 1973
Greig et al, 1973 Gupta et al, 1973
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Table II. (continued)
2
Compound TCDD
Chlorinated naphthalenes
Erominatcd biphenyls
____________ Effects_______ __________ , Reference_______________ _
5. Chick edema
Metcalfe, 1972
6. Liver microsomal enzyme induction
Poland and Glover, 1974
7. Hyperkeratosis in rabbit ears
Jones and Krizek, 1962
8. Immunosuppression In mice
Thigpen et al, 1975
9. Fatal liver necrosis in rabbits Milnes, 1971
1. X-disease in cattle
Sikes et al, 1952
2. Chick edema
Pudelkiewicz et al, 1959
3. Hyperkeratosis in rabbit ears ' and swine
Hambrick, 1957 Huber and Link, 1962
4. Yellow atrophy of rabbit liver
Flinn and Jarvik, 1936
5. Decreased vitamin A level in
liver and plasma of cattle
and swine
*
Olafeonj 1947 Huber and Link, 1962
1. Liver disease in cattle, rats and minks
2. Liver tumors in rats
3. Immunosuppression in rats,
mice, chickens and guinea
pigs
'
4. Porphyria cutanea tarda (Hepatic porphyria) in rats
5. Liver microsomal enzyme induction in rats and mice
Jackson and Halbert, 1974 Kimbrough et al, 1978 Aulerich and Ringer, 1979 Kimbrough et al, 1980
Luster et al, 1978 Vos and Van Genderen, 1973
Kimbrough et al, 1978
Moore et al, 1978 Dent et al, 1976 Dent et al, 1977
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Compound__________ ___________________ Ef fccts________ _Reference 6. Behavioral and neurological effects in rats and mice 7. Hyperkeratosis in rabbit ears
Tilson et al, 1978 Kimbrough et al, 1977
`%
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Compound PCB
1
Table III. Examples of Effects Produced by Compounds in Man
Effects
Reference
1. Chloracne 2. Mucoid discharge from eyes
Umeda, 1972 Jones and Alden, 1936 Umeda, 1972
3. Pigmentation of skin and nails
Umeda, 1972
4. Induction of liver microsomal enzymes
Alvares et al, 1977
TCDl)
1. Chloracne 2. Porphyria cutanea tarda
3. Peripheral neuropathy 4. Elevated serum lipids
Jirasek et al, 1976 Poland and Smith, 1971 Jirasek et al, 1976 Bleiberg et al, 1964
Goldman, 1972
Jirasek et al, 1976
Chlorinated naphthalenes
1. Chloracne
2. Subacute yellow atrophy of liver
3. Cable rash
.,
Mayers and Silverberg, 1938 Hambrick, 1957
Von Wedel et al, 1943 McLetchie and Robertson, 194
Good and Peneky, 1943
Polybroininated biphenyls
1. Hypothyroidism?
Bahn et al, 1980
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Table IV. Examples of Fetotoxicity and/or Teratogenicity in Different Animal Species
Compound
Fetotoxic
Teratogenic
Reference
Aroclor 1248
2.5 ppm35 4 (Monkey)
-
Barsotti et al, 1976
Aroclor 1260 Aroclor 1254
35.4 mg/Kg/day^ (Rat)
3 1.5 mg/Kg/day (Rat)
-
Linder et al, 1974 Linder et al, 1974
TCDD
0,01 pg/Kg/day* (Rat)
0.125 pg/Kg/day** (Rat)
Murray et al, 1979 Sparschu et al, 1971
-
3 pg/Kg/day6 *
Courtney and Moore, 1971
(Mouse)
1.0 pg/Kg (Monkey) 7
Zingeser, 1979
Hexachlorodibenzodioxin
1 pg/Kg8 (Rat)
100 pg/Kg8 (Rat)
Schwetz et al, 1973
Brominated biphenyls
200 mg/Kg9 . (Rat)
-
800 mg/Kg9 (Rat)
1000 ppm10 (Mice)
Beaudoin, 1977 ' 1 Corbett et al, 1975
Footnotes
]. Monkeys fed Aroclor 1248 at 2.5 ppm In diet for 7 months prior to breeding.
2. Rats fed 500 ppm Aroclor 1260 in diet for 62 or 188 days before mating showed
fetotoxicity in both Fja and
generations.
3. Hats fed 100 ppm Aroclor 1254 in diet for 62 or 186 or 129 days before mating showed fetotoxicity in the F-^ and F2fl generations but not in F^q.
4. Rat6 fed 120-215 ppt TCDD to give 0.01 pg/Kg/day for 90 days prior to mating.
5. Rat6 dosed with 0.125 pg/Kg/day on days 6 to 15 of pregnancy by gavage.
6. Mice dosed subcutaneously with 3 pg/Kg/day of TCDD on days 6 through 15 of pregnancy.
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Table IV. (continued)
2
7. Monkeys dosed nine times by gavage on days 20 through 40 after Insemination.
8. Rats dosed day 6 through 15 of pregnancy by gavage.
9. Rats given a single dose by gavage at varying times during day 6 through 14 of pregnancy.
10. Mice were fed 1000 ppm Firemaster BP-6 days 7-18 of pregnancy.
i
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Table V. PBB Concentrations Range (and mean) in Liver, Adipose Tissue and Liver Lesions of Rats given Single or Multiple Doses1- at Given Times
Number Number of of Rats Doses
x(mg/Kg) per Dose
Recovery Sex Tissue (expressed PBB mg/Kg
Period
as wet weight for Concentration
(Months)
liver and on lipid
(ppm)
basis for adipose
tissue)
* Lipids
4 1 x 1000 10
M Liver
Adipose tissue
Blood
21.0 - 100 (GO.3)
434 - 920 (714)
0.55 - 1.35 (0.94)
5.60 - 9.90 (7.55)
74.2 - 88.2 (81.3)
5 1 x 1000 14
M. Liver
Adipose tissue
Blood
32.0 - 105 (63.2)
662-1170 (866)
1.20 - 1.42 (1.34)
3.60 - 11.6 (7.00)
80.8 - 86.6
(8.35)
4 3 x 1000 10
F Liver
Adipose tissue
Blood
27.5 - 58.7 (37.4) *
857 - 1802 (1202)
2.00 - 4.66 (2.90)
3.40 - 5.10 (4.10)
75.1 - 88.7 (83.5)
5 1 x 1000 14
F Liver
Adipose tissue
Blood
11.0 - 41.0 (22.0)
479 A 1264 (783)
1.64 - 3.63 (2.92)
3.20 - 4.10
(3.80) 81.5 - 92.2
(85.5)
12 1 x 1000 26
F Li ver
8.77 - 25.8 (18.1)
1.90 - 7.30 (4.54)
6 1 x 1000 26
F Hepatocellular carcinoma
8.99 - 22.3 05.3)
1.60 - 6.80 (4.23)
7 12 x 100 26
F Liver
23.8 - 74.5 (34.2)
2.53 - 4.38 (3.04)
5 1 x 200 22 F Liver
Adipose
Blood
1.85 - 4.07 (2.68)
136 - 441 (244)
0.17 - 0.31 (0.22)
0.92 - 2.66 (1.68)
87.4 - 91.7 (90.0)
Footnote
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>BB concentrations were >determined for a number of control rats each time with negative
results in all.
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10. Cantrell, J.S., Webb, N.C., and Mabis, A.J. (1967) Search for chick edema factor. Chem. Eng. News 45, 10 .
11. Cecil, H.C., Harris, S.J., Bitman, J. , and Fries, J.F. (1973) Polychlorinated biphenyl Induced decrease In liver vitamin A In Japanese quail and rats. Bull. Environ. Contam. Toxicol. 9, 179-185.
12. Cecil, H.C., Bitman, J., Lillie, F.J., Fries, G.F., and Verrett, J. (1974) Embryotoxic and teratogenic effects in unhatched fertile eggs from hens fed polychlorinated biphenyls (PCBs). Bull. Environ. Contam. Toxicol. 11, 489-495.
13. Corbett, T.H., Beaudoin, A.R., Cornell, R.G., Anver, M.R. , Schumacher, R., Endres, J., and Szwabowska, M. (1975) Toxicity of polybrominated biphenyls in rodents. Environ. Research 10, 390-396.
14. Cordle, F., Corneliussen, P., Jelinek, C., Hackley, B., Lehman, R., McLaughlin, J., Rhoden, R., and Shapiro, R. (1978) Human exposure to polychlorinated biphenyls and polybrominated biphenyls. Environ. Health Persp. 24, 157-172.
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