Literature DB >> 8037844

Polychlorinated biphenyls (PCBs): environmental impact, biochemical and toxic responses, and implications for risk assessment.

S H Safe1.   

Abstract

Commercial polychlorinated biphenyls (PCBs) and environmental extracts contain complex mixtures of congeners that can be unequivocally identified and quantitated. Some PCB mixtures elicit a spectrum of biochemical and toxic responses in humans and laboratory animals and many of these effects resemble those caused by 2,3,7,8-tetrachlorodibenzo-p-dioxin (TCDD) and related halogenated aromatic hydrocarbons, which act through the aryl hydrocarbon (Ah)-receptor signal transduction pathway. Structure-activity relationships developed for PCB congeners and metabolites have demonstrated that several structural classes of compounds exhibit diverse biochemical and toxic responses. Structure-toxicity studies suggest that the coplanar PCBs, namely, 3,3',4,4'-tetrachlorobiphenyl (tetraCB), 3,3',4,4',5-pentaCB, 3,3',4,4',5,5'-hexaCB, and their monoortho analogs are Ah-receptor agonists and contribute significantly to the toxicity of the PCB mixtures. Previous studies with TCDD and structurally related compounds have utilized a toxic equivalency factor (TEF) approach for the hazard and risk assessment of polychlorinated dibenzo-p-dioxin (PCDD) and polychlorinated dibenzofuran (PCDF) congeners in which the TCDD or toxic TEQ = sigma([PCDFi x TEFi]n)+sigma([PCDDi x TEFi]n) equivalent (TEQ) of a mixture is related to the TEFs and concentrations of the individual (i) congeners as indicated in the equation (note: n = the number of congeners). Based on the results of quantitative structure-activity studies, the following TEF values have been estimated by making use of the data available for the coplanar and monoortho coplanar PCBs: 3,3',4,4',5-pentaCB, 0.1; 3,3',4,4',5,5'-hexaCB, 0.05; 3,3',4,4'-tetraCB, 0.01; 2,3,3',4,4'-pentaCB, 0.001; 2,3',4,4',5-pentaCB, 0.0001; 2,3,3',4,4',5-hexaCB, 0.0003; 2,3,3',4,4',5'-hexaCB, 0.0003; 2',3,4,4',5-pentaCB, 0.00005; and 2,3,4,4',5-pentaCB, 0.0002. Application of the TEF approach for the risk assessment of PCBs must be used with considerable caution. Analysis of the results of laboratory animal and wildlife studies suggests that the predictive value of TEQs for PCBs may be both species- and response-dependent because both additive and nonadditive (antagonistic) interactions have been observed with PCB mixtures. In the latter case, the TEF approach would significantly overestimate the toxicity of a PCB mixture. Analysis of the rodent carcinogenicity data for Aroclor 1260 using the TEF approach suggests that this response is primarily Ah-receptor-independent. Thus, risk assessment of PCB mixtures that uses cancer as the endpoint cannot solely utilize a TEF approach and requires more quantitative information on the individual congeners contributing to the tumor-promoter activity of PCB mixtures.

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Year:  1994        PMID: 8037844     DOI: 10.3109/10408449409049308

Source DB:  PubMed          Journal:  Crit Rev Toxicol        ISSN: 1040-8444            Impact factor:   5.635


  246 in total

1.  Anaerobic dehalogenation of hydroxylated polychlorinated biphenyls by Desulfitobacterium dehalogenans.

Authors:  J Wiegel; X Zhang; Q Wu
Journal:  Appl Environ Microbiol       Date:  1999-05       Impact factor: 4.792

2.  Relative contributions of organochlorine contaminants, parasitism, and predation to reproductive success of eastern spiny softshell turtles (Apalone spiniferus spiniferus) from southern Ontario, Canada.

Authors:  Shane R De Solla; Michelle L Fletcher; Christine A Bishop
Journal:  Ecotoxicology       Date:  2003 Feb-Aug       Impact factor: 2.823

Review 3.  Using chorioallantoic membranes for non-lethal assessment of persistent organic pollutant exposure and effect in oviparous wildlife.

Authors:  George P Cobb; Tim A Bargar; Chris B Pepper; Don M Norman; Pattie D Houlis; Todd A Anderson
Journal:  Ecotoxicology       Date:  2003 Feb-Aug       Impact factor: 2.823

4.  Structural insight into the expanded PCB-degrading abilities of a biphenyl dioxygenase obtained by directed evolution.

Authors:  Pravindra Kumar; Mahmood Mohammadi; Jean-François Viger; Diane Barriault; Leticia Gomez-Gil; Lindsay D Eltis; Jeffrey T Bolin; Michel Sylvestre
Journal:  J Mol Biol       Date:  2010-11-10       Impact factor: 5.469

5.  Polychlorinated biphenyls (PCB-153) and (PCB-77) absorption in human liver (HepG2) and kidney (HK2) cells in vitro: PCB levels and cell death.

Authors:  Somiranjan Ghosh; Supriyo De; Yongqing Chen; Darryl C Sutton; Folahan O Ayorinde; Sisir K Dutta
Journal:  Environ Int       Date:  2010-08-17       Impact factor: 9.621

Review 6.  Retinoid-xenobiotic interactions: the Ying and the Yang.

Authors:  Igor O Shmarakov
Journal:  Hepatobiliary Surg Nutr       Date:  2015-08       Impact factor: 7.293

7.  Oxidative DNA adducts after Cu(2+)-mediated activation of dihydroxy PCBs: role of reactive oxygen species.

Authors:  Wendy A Spencer; Hans-Joachim Lehmler; Larry W Robertson; Ramesh C Gupta
Journal:  Free Radic Biol Med       Date:  2009-02-20       Impact factor: 7.376

8.  Inhibition of cytochromes P450 and the hydroxylation of 4-monochlorobiphenyl in whole poplar.

Authors:  Guangshu Zhai; Hans-Joachim Lehmler; Jerald L Schnoor
Journal:  Environ Sci Technol       Date:  2013-01-24       Impact factor: 9.028

9.  Uptake, translocation, and metabolism of hydroxylated and methoxylated polychlorinated biphenyls in maize, wheat, and rice.

Authors:  Jianteng Sun; Lili Pan; Jie Chen; Kelun Li; Lizhong Zhu
Journal:  Environ Sci Pollut Res Int       Date:  2016-10-03       Impact factor: 4.223

10.  The environmental neurotoxicant PCB 95 promotes synaptogenesis via ryanodine receptor-dependent miR132 upregulation.

Authors:  Adam Lesiak; Mingyan Zhu; Hao Chen; Suzanne M Appleyard; Soren Impey; Pamela J Lein; Gary A Wayman
Journal:  J Neurosci       Date:  2014-01-15       Impact factor: 6.167

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