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                       References
                       Abbas, R. et al., Toxicokinetics of parathion and paraoxon in rainbow trout after intravascular administration
                          and water exposure, Toxicol. Appl. Pharmacol., 136, 194, 1996.
                       Abbott, B. D., Birnbaum, L. S., and Perdew, G. H., Developmental expression of two members of a new class
                          of transcription factors. I. Expression of aryl hydrocarbon receptor in the C57BL/6N mouse embryo,
                          Develop. Dynam., 204, 133, 1995.
                       Abd-Allah, G. A. and el-Fayoumi, I., A comparative evaluation of aflatoxin B genotoxicity in fish models
                          using the comet assay, Mutat. Res., 446, 181, 1999.
                       Abnet, C. C. et al., Two forms of aryl hydrocarbon receptor type 2 in rainbow trout (Oncorhynchus mykiss),
                          J. Biol. Chem., 274, 15159, 1999.
                       Adamson, R. H. et al., Comparative biochemistry of drug metabolism by azo and nitro reductase, Proc. Natl.
                          Acad. Sci. U.S.A., 54, 1386, 1965.
                       Agustsson, I. and Strom, A.R., Biosynthesis and turnover of trimethylamine oxide in the teleost cod Gadus
                          morhua, J. Biol. Chem., 256, 8045, 1981.
                       Alin P., Danielson U. H., and Mannervik, B., 4-Hydroxyalk-2-enals are substrates for glutathione transferase,
                          FEBS Lett., 179, 267, 1985.
                       Andersson, T., Pesonen, M., and Johansson C., Differential induction of cytochrome P-450-dependent monooxy-
                          genase, epoxide hydrolase, glutathione transferase and UDP glucuronosyl transferase activities in the liver
                          of the rainbow trout by beta-naphthoflavone or Clophen A50, Biochem. Pharmacol., 34, 3309, 1985.
                       Andersson,  T., Subcellular fractionation of rainbow trout gonads with emphasis on microsomal enzymes
                          involved in steroid metabolism, Cell Tissue Res., 268, 479, 1992.
                       Andreasen, E. A., Hahn, M. E., Heideman, W., Peterson, R. E., and Tanguay, R. L., The zebrafish (Danio
                          rerio) aryl hydrocarbon receptor type 1 is a novel vertebrate receptor, Mol. Pharmacol., 62, 234, 2002.
                       Angelucci, S. Sacchetta, P., Moio, P., Melino, S., Petruzzelli, R. Gervasi, P., and Di Ilio, C., Purification and
                          characterization of glutathione transferases from the sea bass (Dicentrarchus labrax) liver, Arch. Biochem.
                          Biophys., 373, 435, 2000.
                       Angus, W. G., Larsen, M. C., and Jefcoate, C. R., Expression of CYP1A1 and CYP1B1 depends on cell-specific
                          factors in human breast cancer cell lines: role of estrogen receptor status, Carcinogenesis, 20, 947, 1999.
                       Ankley, G. T. and Agosin, M., Comparative aspects of hepatic UDP-glucuronosyltransferases and glutathione
                          S-transferases in bluegill and channel catfish, Comp. Biochem. Physiol., 87B, 671, 1987.
                       Aoyama, T. et al., Five of twelve forms of vaccinia virus-expressed human hepatic cytochrome P450 meta-
                          bolically activate aflatoxin B 1 , Proc. Natl. Acad. Sci. U.S.A., 87, 4790, 1990.
                       Armknecht, S. L., Kaattari, S. L., and Van Veld, P. A., An elevated glutathione S-transferase in creosote-
                          resistant mummichog (Fundulus heteroclitus). Aquat. Toxicol., 41, 1, 1998.
                       Arukwe, A. and Goksøyr, A., Changes in three hepatic cytochrome P450 subfamilies during a reproductive
                          cycle in turbot (Scophthalmus maximus L.), J. Exp. Zool., 277, 313, 1997.
                       Arukwe, A., Forlin, L., and Goksøyr, A., Xenobiotic and steroid biotransformation enzymes in Atlantic salmon
                          (Salmo salar) liver treated with an estrogenic compound, 4-nonylphenol. Environ. Toxicol. Chem., 16,
                          2576, 1997.
                       Bailey, G. S. et al., The sensitivity of rainbow trout and other fish to carcinogens, Drug Metab. Disp., 15,
                          725, 1984.
                       Bailey, G. S. et al., Aflatoxin B 1  carcinogenesis and its relation to DNA adduct formation and adduct persistence
                          in sensitive and resistant salmonid fish, Carcinogenesis, 9, 1919, 1988.
                       Bailey, G. S., Role of aflatoxin-DNA adducts in the cancer process, in The Toxicology of Aflatoxins: Human
                          Health, Veterinary and Agricultural Significance, Eaton, D. L. and Groopman, J. D., Eds., Academic Press,
                          New York, 1994, pp. 137–148.
                       Baker, J. R., Streuempler, A., and Chaykin, S., A comparative study of trimethylamine-N-oxide biosynthesis,
                          Biochim. Biophys. Acta, 71, 58, 1963.
                       Balk, L. et al., Initial characterization of drug-metabolizing systems in the liver of the northern pike, Esox
                          lucius, Drug Metab. Disp., 8, 98, 1980.
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                       Barnhill, M. L. et al., Dieldrin stimulates biliary excretion of  C-benzo(a)pyrene polar metabolites but does
                          not change the biliary metabolite profile in rainbow trout (Oncorhynchus mykiss), Toxicol. Sci., 75, 249,
                          2003.
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