Mechanism of Phenoxy Compounds as an Endocrine Disrupter

Phenoxy계 화합물의 내분비장애작용 검색 및 기전연구

  • 김현정 (고려대학교 생명공학원) ;
  • 김원대 (고려대학교 생명공학원) ;
  • 권택헌 (고려대학교 생명공학원) ;
  • 김동현 (한국과학기술연구원 생체대사연구센터) ;
  • 박영인 (고려대학교 생명공학원) ;
  • 동미숙 (고려대학교 생명공학원)
  • Published : 2002.12.01

Abstract

Phenoxy compounds, 2,4-Dichlorophenol acetoxy acid (2,4-D) and 2,4-dichlorophenol (DCP), are widely used as a hormonal herbicide and intermediate for pesticide manufacturing, respectively. In order to assess the potential of these compounds as endocrine disruptors, we studied the androgenicity of them wing in vivo and in vitro androgenicity assay system. Administration of 2,4-D (50 mg/kg/day, p.o.) or DCP (100 mg/kg/day, p.o.) to rats caused an increase in the tissue weight of ventral prostate, Cowpers gland and glands penis. These increase of androgen-dependent tissues were additively potentiated when rats were simultaneously treated with low dose of testosterone (1 g/kg, s.c.). 2,4-D increased about 350% of the luciferase activity in the PC cells transiently cotransfected phAR and pMMTV-Luc at concentration of $10^{-9}$ M. In 2,4-D or DCP-treated castrated rats, testosterone 6$\beta$-hydroxylase activity was not significantly modulated even when rats were co-treated with testosterone. In vitro incubation of 2,4-D and DCP with microsomes at 50 $\mu$M inhibited testosterone 6$\beta$-hydroxylase activity about 27% and 66% in rat liver microsomes, about 44% and 54% in human liver microsomes and about 50% and 45% in recombinant CYP3A4 system, respectively. The amounts of total testosterone metabolites were reduced about 33% and 75% in rat liver microsomes, 69% and 73% in human liver microsomes and 54% and 64% in recombinant CYP3A4 by 2,4-D or DCP, respectively. Therefore, the additive androgenic effect of 2,4-D or DCP by the co-administration of the low dose of testosterone may be due to the increased plasma level of testosterone by inhibiting the cytochrome P450-mediated metabolism of testosterone. These results collectively suggested that 2,4-D and DCP may act as androgenic endocrine disrupter by binding to the androgen receptor as well as by inhibiting the metabolism of testosterone.

Keywords

References

  1. Chem. Biol. Interact. v.18 Disturbance of microsomal detoxication mechanisms in liver by chlorophenol pesticides Arrhenius,E.;Renberg,L.;Johansson,L.;Zetterqvist,M.A. https://doi.org/10.1016/0009-2797(77)90139-9
  2. Environ. Health Persp. v.105 The Challenge Posed by Endocrine-disrupting Chemicals Ashby,J.;Houthoff,E.;Kennedy,S.J.;Stevens,J.;Bars,R.;Jekat,F.W.;Campbell,P.;Miller,J.V.;Carpanini,F.M.;Randall,G.L.P. https://doi.org/10.2307/3433233
  3. Toxicol. Appl. Pharmacol. v.132 Human cytochrome P450 enzyme selectivities in the oxidation of chlorinated benzenes Bogaards,J.J.;van Ommen,B.;Wolf,C.R.;van Bladeren,P.J. https://doi.org/10.1006/taap.1995.1085
  4. Fundam. Appl. Toxicol. v.33 Comparative subchronic studies on 2,4-dichlorophenoxyacetic acid, amine, and ester in rats Charles,J.M.;Cunny,H.C.;Wilson,R.D.;Bus,J.S. https://doi.org/10.1006/faat.1996.0153
  5. Environ. Health Perspect v.101 Developmental effects of endocrine-disrupting chemicals in wildlife and humans Colborn,T.;vom Saal,F.S.;Soto,A.M. https://doi.org/10.2307/3431890
  6. Chem Biol Interact. v.137 In vivo and in vitro binding of 2,4-dichlorophenoxyacetic acid to a rat liver mitochondrial protein Di Paolo,O;de Duffard,A.M.E.;Duffard,R. https://doi.org/10.1016/S0009-2797(01)00255-1
  7. Proc. Soc. Exp. Biol. Med. v.83 Myotrophic activity of 19-nortestosterone and other sterodis determined by modified levator ani muscle methods Hershberger,L.G.;Shipley,E.G.;Meyer,R.K. https://doi.org/10.3181/00379727-83-20301
  8. Environ. Res. v.71 Pesticide residues in urine of adults living in the United States:reference range concentrations Hill,R.H.Jr.;Head,S.L.;Baker,S.;Gregg,M.;Shealy,D.B.;Bailey,S.L.;Williams,C.C.;Sympson,E.J.;Needham,L.L. https://doi.org/10.1006/enrs.1995.1071
  9. Biochem Pharmacol. v.59 Growth hormone regulation and developmental expression of rat hepatic CYP3A18, CYP3A9, and CYP3A2 Kawai,M.;Bandiera,S.M.;Chang,T.K.;Bellward,G.D. https://doi.org/10.1016/S0006-2952(00)00247-1
  10. Toxicol. Appl. Pharmacol. v.142 Vinclozolin and p,p-DDE alter androgendependent gene expression:in vivo confirmation of an androgen receptor-mediated mechanism Kelce,W.R.;Lambright,C.R.;Gray,L.E.Jr.;Roberts,K.P. https://doi.org/10.1006/taap.1996.7966
  11. Mutat. Res. v.262 Study of reproductive function in persons occupationally exposed to 2,4-dichlorophenoxyacetic acid(2,4D) Lerda,D.;Rizzl,R. https://doi.org/10.1016/0165-7992(91)90105-D
  12. Cancer Res. v.60 Antiandrogenic effect of novel androgen synthesis inhibitors on hormone-dependent prostate cancer Long,B.J.;Grigoryev.D.N.;Nnane,I.P.;Liu,Y.;Ling,Y.Z.;Brodie,A.M.
  13. Toxicol. Sci. v.52 Evaluation of the EDSTAC female pubertal assay in CD rats using 17β-estradiol, steroid biosynthesis inhibitors, and a thyroid inhibitor Marty,M.S.;Crissman,J.W.;Carney,E.W. https://doi.org/10.1093/toxsci/52.2.269
  14. Toxicol. Sci. v.60 Evaluation of the male pubertal onset assay to detect testosterone and steroid biosynthesis inhibitors in CD rats Marty,M.S.;Crissman,J.W.;Carney,E.W. https://doi.org/10.1093/toxsci/60.2.285
  15. Epidemiology v.9 Paternal dioxin, preterm birth, intrauterine growth retardation, and infant death Michalek,J.E.;Reah,A.J.;Boyle,C.A. https://doi.org/10.1097/00001648-199803000-00010
  16. Toxicol. Sci. v.43 Male reproductive tract malformations in rats following gestational and lactational exposure to Di(n-butyl) phthalate, an antiandrogenic mechanism? Mylchreest,E.;Cattley,R.C.;Foster,P.M. https://doi.org/10.1093/toxsci/43.1.47
  17. Hormones(2nd Ed.) Norman,A.W.;Litwack,G.
  18. Environ. Toxicol. Chem. v.15 Preliminary study to compare body residues and sublethal energetic responsis in benthic invertebrates exposed to sediment-bound 2,4,5-trichlorophenol Penttinen,O.P.;Kukkonen,J.;Pelinen,J. https://doi.org/10.1002/etc.5620150214
  19. Fundam. Appl. Toxicol. v.13 Teratogenic assessment of 2,4-dichlorophenol in Fischer 344 rats Rodwel'l,D.E.;Wilson,R.D.;Nemec,M.D.;Mercieca,M.D. https://doi.org/10.1016/0272-0590(89)90321-7
  20. Am. J. Ind. Med. v.30 Dioxins and dioxin-like chemicals in blood and semen of American Vietnam veterans from the state of Michigan Schecter,A.;McGee,H.;Stanley,J.S.;Boggess,K.;Brandt Rauf,P. https://doi.org/10.1002/(SICI)1097-0274(199612)30:6<647::AID-AJIM1>3.0.CO;2-O
  21. Toxicol. Sci. v.53 Examination of selectedfood addities and organochlorine food contaminates for androgenic activity in vitro Schrader,T.J.;Cooke,G.M. https://doi.org/10.1093/toxsci/53.2.278
  22. J. Steroid Biochem. Molec. Biol. v.65 An updated review of environmental estrogen and androgen mimics and antagonists Sonnenschein,C.;Soto,A.M. https://doi.org/10.1016/S0960-0760(98)00027-2
  23. J. Steroid Biochem. Biol. v.66 Differential gene induction by glucocorticoid and progesterone receptors Thackary,V.G.;Lieberman,B.A.;Nordeen,S.K. https://doi.org/10.1016/S0960-0760(98)00044-2
  24. J. Chromatogr. B Biomed. Sci. Appl. v.760 Rapid high-performance liquid chromatographic method for the separation of hydroxylated testosterone metabolites Whalley,P.M.;Bakes,D.;Grime,K.;Weaver,R.J. https://doi.org/10.1016/S0378-4347(01)00286-9
  25. Chlorophenols, Geneva, Environmental Health Criteria, No 93 Chlorophenols, EPA 600/1-79-012 WHO
  26. Epidemiology v.6 Paternal serum dioxin and reproductive outcomes among veterans of Operation Ranch Hand Wolfe,W.H.;Michalek,J.E.;Miner,J.C.;Rahe,A.J.;Moore,C.A.;Needham,L.L.;Patterson,D.G.Jr. https://doi.org/10.1097/00001648-199501000-00005
  27. Biochem Pharmacol. v.62 Influence of dietary zinc deficiency during development on hepatic CYP2C11, CYP2C12, CYP3A2, CYP3A9, and CYP3A18 expression in postpubertal male rats Xu,Z.;Kawai,M.;Bandiera,S.M.;Chang,T.K. https://doi.org/10.1016/S0006-2952(01)00776-6
  28. 수질오염공정시험방법해설(초판) 김종택