DOI QR코드

DOI QR Code

Chronic Low-Dose Nonylphenol or Di-(2-ethylhexyl) Phthalate has a Different Estrogen-like Response in Mouse Uterus

  • Kim, Juhye (Division of Developmental Biology and Physiology, School of Bioscience and Chemistry, Institute for Basic Sciences, Sungshin University) ;
  • Cha, Sunyeong (Division of Developmental Biology and Physiology, School of Bioscience and Chemistry, Institute for Basic Sciences, Sungshin University) ;
  • Lee, Min Young (Division of Developmental Biology and Physiology, School of Bioscience and Chemistry, Institute for Basic Sciences, Sungshin University) ;
  • Hwang, Yeon Jeong (Division of Developmental Biology and Physiology, School of Bioscience and Chemistry, Institute for Basic Sciences, Sungshin University) ;
  • Yang, Eunhyeok (Division of Developmental Biology and Physiology, School of Bioscience and Chemistry, Institute for Basic Sciences, Sungshin University) ;
  • Ryou, Chongsuk (Dept. of Pharmacy, College of Pharmacy, Hanyang University) ;
  • Jung, Hyo-Il (School of Mechanical Engineering, Yonsei University) ;
  • Cheon, Yong-Pil (Division of Developmental Biology and Physiology, School of Bioscience and Chemistry, Institute for Basic Sciences, Sungshin University)
  • 투고 : 2018.11.07
  • 심사 : 2018.12.08
  • 발행 : 2018.12.31

초록

Through the development of organic synthetic skill, chemicals that mimic signaling mediators such as steroid hormones have been exposed to the environment. Recently, it has become apparent that this circumstance should be further studied in the field of physiology. Estrogenic action of chronic low-dose nonylphenol (NP) and di-(2-ethylhexyl) phthalate (DEHP) in mouse uterus was assessed in this study. Ten to twelve-week-old female mice (CD-1) were fed drinking water containing NP (50 or $500{\mu}g/L$) or DEHP (133 or $1,330{\mu}g/L$) for 10 weeks. Uterine diameter, the thickness of myometrium and endometrium, and the height of luminal epithelial cells were measured and the number of glands were counted. The expression levels of the known $17{\beta}$-estradiol ($E_2$)-regulated genes were evaluated with real-time RT-PCR methodology. The ration of uterine weight to body weight increased in $133{\mu}g/L$ DEHP. Endometrial and myometrial thickness increased in 133 and $1,330{\mu}g/L$ DEHP treated groups, and in 50, $500{\mu}g/L$ NP and $133{\mu}g/L$ DEHP, respectively. The height of luminal epithelial cell decreased in NP groups. The numbers of luminal epithelial gland were decreased in NP groups but increased in $50{\mu}g/L$ DEHP group. The histological characters of glands were not different between groups. The mRNA expression profiles of the known $17{\beta}$-estradiol ($E_2$) downstream genes, Esr1, Esr2, Pgr, Lox, and Muc1, were also different between NP and DEHP groups. The expression levels dramatically increased in some genes by the NP or DEHP. Based on these results, it is suggested that the chronic low-dose NP or DEHP works as estrogen-like messengers in uterus with their own specific gene expression-regulation patterns.

키워드

참고문헌

  1. Bandiera SM (2006) Reproductive and endocrine effects of p-nonylphenol and methoxychlor: a review. Immun Endoc Metab Agents Med Chem 6:15-26. https://doi.org/10.2174/187152206775528833
  2. Blair RM, Fang H, Branham WS, Hass BS, Dial SL, Moland CL, Tong W, Shi L, Perkins R, Sheehan DM. (2000) The estrogen receptor relative binding affinities of 188 natural and xenochemicals: Structural diversity of ligands. Toxicol Sci 54:138-153. https://doi.org/10.1093/toxsci/54.1.138
  3. Browne P, Kleinstreuer NC, Ceger P, Deisenroth C, Baker N, Markey K, Thomas RS, Judson RJ, Casey W (2018) Development of a curated Hershberger database. Reprod Toxicol 81:259-271. https://doi.org/10.1016/j.reprotox.2018.08.016
  4. Brulport A, Le Corre L, Chagnon MC (2017) Chronic exposure of 2,3,7,8-tetrachlorodibenzo-p-dioxin (TCDD) induces an obesogenic effect in C57BL/6J mice fed a high fat diet. Toxicology 390:43-52. https://doi.org/10.1016/j.tox.2017.07.017
  5. Casals-Casas C, Desvergne B (2011) Endocrine disruptors: From endocrine to metabolic disruption. Annu Rev Physiol 73:135-162. https://doi.org/10.1146/annurev-physiol-012110-142200
  6. Cha S, Baek JW, Ji HJ, Choi JH, Kim C, Le MY, Hwang YJ, Yang E, Lee SH, Jung HI, Cheon YP (2017) Disturbing effects of chronic low-dose 4-nonylphenol exposing on gonadal weight and reproductive outcome over one-generation. Dev Reprod 21:121-130. https://doi.org/10.12717/DR.2017.21.2.121
  7. Cha S, Jung K, Lee MY, Hwang YJ, Yang E, Lee SH, Jung HI, Cheon YP (2018) Nonmonotinic effects of chronic low-dose di (2-ethylhexyl) phthalate on gonadal weight and reproductive. Dev Reprod 22:85-94. https://doi.org/10.12717/DR.2018.22.1.085
  8. Cunha GR, Cooke PS, Kurita T (2004) Role of stromalepithelial interactions in hormonal response. Arch Histol Cytol 67:417-434. https://doi.org/10.1679/aohc.67.417
  9. Danzo BJ, Shappell HW, Banerjee A, Hachey DL (2002) Effects of nonylphenol, 1,1-dichloro-2,2-bis (p-chlorophenyl) ethylene (p,p'-DDE), and pentachlorophenol on the adult female guinea pig reproductive tract. Reprod Toxicol 16:29-43. https://doi.org/10.1016/S0890-6238(01)00194-0
  10. Davis BJ, Maronpot RR, Heindel JJ (1994) Di-(2-ethylhexyl) phthalate suppresses estradiol and ovulation in cycling rats. Toxicol Appl Pharmacol 128:216-223. https://doi.org/10.1006/taap.1994.1200
  11. Di QN, Cao WX, Xu R, Lu L, Xu Q, Wang XB (2018) Chronic low-dose exposure of nonylphenol alters energy homeostasis in the reproductive system of female rats. Toxicol Appl Pharmacol 348:67-75. https://doi.org/10.1016/j.taap.2018.04.007
  12. Elia E, Vighi S, Lombardi E, Motta AB (2008) Detrimental effects of hyperandrogenism on uterine functions. Int Immunopharmacol 8:1827-1834. https://doi.org/10.1016/j.intimp.2008.09.002
  13. Frasor J, Barnett DH, Danes JM, Hess R, Parlow AF, Katzenellenbogen BS (2003) Response-specific and ligand dose-dependent modulation of estrogen receptor (ER) alpha activity by ERbeta in the uterus. Endocrinology 144:3159-3166. https://doi.org/10.1210/en.2002-0143
  14. Grande SW, Andrade AJM, Talsness CE, Grote K, Chahoud I (2006) A dose-response study following in utero and lactational exposure to di (2-ethylhexyl) phthalate: Effects on female rat reproductive development. Toxicol Sci 91:247-254. https://doi.org/10.1093/toxsci/kfj128
  15. Gunin AG, Mashin IN, Zakharov DA (2001) Proliferation, mitosis orientation and morphogenetic changes in the uterus of mice following chronic treatment with both estrogen and glucocorticoid hormones. J Endocrinol 169:23-31. https://doi.org/10.1677/joe.0.1690023
  16. Guo B, Tian XC, Li DD, Yang ZQ, Cao H, Zhang QL, Liu JX, Yue ZP (2014) Expression, regulation and function of Egr1 during implantation and decidualization in mice. Cell Cycle 13:2626-2640. https://doi.org/10.4161/15384101.2014.943581
  17. Halden RU (2010) Plastics and health risks. Annu Rev Public Health 31:179-194. https://doi.org/10.1146/annurev.publhealth.012809.103714
  18. Herbison AE (2008) Estrogen positive feedback to gonadotropin-releasing hormone (GnRH) neurons in the rodent: The case for the rostral periventricular area of the third ventricle (RP3V). Brain Res Rev 57:277-287. https://doi.org/10.1016/j.brainresrev.2007.05.006
  19. Huang C, Li X (2014) Maternal cypermethrin exposure during the perinatal period impairs testicular development in C57BL male offspring. PLOS ONE 9:e96781. https://doi.org/10.1371/journal.pone.0096781
  20. Julien B, Pinteur C, Vega N, Labaronne E, Vidal H, Naville D, Le Magueresse-Battistoni B (2018) Evidence for estrogeno-mimetic effects of a mixture of low-dose pollutants in a model of ovariectomized mice. Environ Toxicol Pharmacol 57:34-40. https://doi.org/10.1016/j.etap.2017.11.008
  21. Keith LH (1997) Environmental Endocrine Disruptors: A Handbook of Property Data. John Wiley & Sons, Inc, New York, pp1-1232.
  22. Kim JH (2018) Analysis of the in vitro effects of di-(2-ethylhexyl) phthalate exposure on human uterine leiomyoma cells. Exp Ther Med 15:4972-4978.
  23. Krimsky S (2000) Hormonal Chaos: The Scientific and Social Origins of the Environmental Endocrine Hypothesis. Johns Hopkins University Press, Baltimore, MD, pp1-284.
  24. Kuiper GG, Lemmen JG, Carlsson B, Corton JC, Safe SH, van der Saag PT, van der Burg B, Gustafsson JA (1998) Iteraction of estrogenic chemicals and phytoestrogens with estrogen receptor beta. Endocrinology 139:4252-4263. https://doi.org/10.1210/endo.139.10.6216
  25. Lorz PM, Towae FK, Enke W, Jackh R, Bhargava N, Hillesheim W (2007) Phthalic acid and derivatives. In: Ullmann F (ed), Ullmann's Encyclopedia of Industrial Chemistry. Wiley-Vch.
  26. Lovekamp-Swan T, Davis BJ (2003) Mechanisms of phthalate ester toxicity in the female reproductive system. Environ Health Perspect 111:139-145. https://doi.org/10.1289/ehp.5658
  27. Mersha MD, Sanchez KR, Temburni MK, Dhillon HS (2018) Long-term behavioral and reproductive consequences of embryonic exposure to low-dose toxicants. J Vis Exp 133:e56771.
  28. Paech K, Webb P, Kuiper GG, Nilsson S, Gustafsson J, Kushner PJ, Scanlan TS (1997) Differential ligand activation of estrogen receptors ERalpha and ERbeta at AP1 sites. Science 277:1508-1510. https://doi.org/10.1126/science.277.5331.1508
  29. Papaconstantinou AD, Umbreit TH, Fisher BR, Goering PL, Lappas NT, Brown KM (2000) Bisphenol Ainduced increase in uterine weight and alterations in uterine morphology in ovariectomized B6C3F1 mice: Role of the estrogen receptor. Toxicol Sci 56:332-339. https://doi.org/10.1093/toxsci/56.2.332
  30. Purdom CE, Hardiman PA, Bye VVJ, Eno NC, Tyler CR, Sumpter JP (1994) Estrogenic effects of effluents from sewage treatment works. Chem Ecol 8:275-285. https://doi.org/10.1080/02757549408038554
  31. Rebuli ME, Camacho L, Adonay ME, Relf DM, Aylor DL, Patisaul HB (2015) Impact of low-dose oral exposure to bisphenol A (BPA) on juvenile and adult rat exploratory and anxiety behavior: A CLARITY-BPA consortium study. Toxicol Sci 148:341-354. https://doi.org/10.1093/toxsci/kfv163
  32. Richardson KA, Hannon PR, Johnson-Walker YJ, Myint MS, Flaws JA, Nowak RA (2018). Di (2-ethylhexyl) phthalate (DEHP) alters proliferation and uterine gland numbers in the uteri of adult exposed mice. Reprod Toxicol 77:70-79. https://doi.org/10.1016/j.reprotox.2018.01.006
  33. Satoh K, Nagai F, Aoki N (2001) Several environmental pollutants have binding affinities for both androgen receptor and estrogen receptor ${\alpha}$. J Health Sci 47:495-501. https://doi.org/10.1248/jhs.47.495
  34. Scsukova S, Rollerova E, Bujnakova Mlynarcikova A (2016) Impact of endocrine disrupting chemicals on onset and development of female reproductive disorders and hormone-related cancer. Reprod Biol 16:243-254. https://doi.org/10.1016/j.repbio.2016.09.001
  35. Shelby MD, Newbold RR, Tully DB, Chae K, Davis VL (1996) Assessing environmental chemicals for estrogenicity using a combination of in vitro and in vivo assays. Environ Health Perspect 104:1296-1300. https://doi.org/10.1289/ehp.961041296
  36. Soares A, Guieysse B, Jefferson B, Cartmell E, Lester JN (2008) Nonylphenol in the environment: A critical review on occurrence, fate, toxicity and treatment in wastewaters. Environ Int 34:1033-1049. https://doi.org/10.1016/j.envint.2008.01.004
  37. Sobolewski M, Conrad K, Allen JL, Weston H, Martin K, Lawrence BP, Cory-Slechta DA (2014) Sex-specific enhanced and behavioral toxicity induced by maternal exposure to a mixture of low dose endocrine-disrupting chemicals. Nerurotoxicology 45:121-130. https://doi.org/10.1016/j.neuro.2014.09.008
  38. Somasundaram DB, Manokaran K, Selvanesan BC, Bhaskaran RS (2016) Impact of di-(2-ethylhexyl) phthalate on the uterus of adult Wistar rats. Hum Exp Toxicol 36:565-572.
  39. Soto AM, Justicia H, Wray JW, Sonnenschein C (1991) pnonyl-phenol: An estrogenic xenobiotic released from "modified" polystyrene. Environ Health Perspect 92:167-173. https://doi.org/10.1289/ehp.9192167
  40. Takeuchi S, Iida M, Kobayashi S, Jin K, Matsuda T, Kojima H (2005) Differential effects of phthalate esters on transcriptional activities via human estrogen receptors alpha and beta, and androgen receptor. Toxicology 210:223-233. https://doi.org/10.1016/j.tox.2005.02.002
  41. USEPA (2017) What is endocrine disruption? https://www.epa.gov/endocrine-disruption/what-ndocrine-disruption [cited 2018 Dec 20].
  42. Vandenberg LN, Colborn T, Hayes TB, Heindel JJ, Jacobs DR Jr, Lee DH, Shioda T, Soto AM, vom Saal FS, Welshons WV, Zoeller RT, Myers JP (2012). Hormones and endocrine-disrupting chemicals: Low-dose effects and nonmonotonic dose responses. Endocr Rev 33:378-455. https://doi.org/10.1210/er.2011-1050
  43. van der Weijden VA, Floter VL, Ulbrich SE (2018) Gestational oral low-dose estradiol-$17{\beta}$ induces altered DNA methylation of CDKN2D and PSAT1 in embryos and adult offspring. Sci Rep 8:7494. doi:10.1038/s41598-018-25831-9.
  44. Wada-Hiraike O, Hiraike H, Okinaga H, Imamov O, Barros RP, Morani A, Omoto Y, Warner M, Gustafsson JA (2006) Role of estrogen receptor beta in uterine stroma and epithelium: Insights from estrogen receptor $beta^{-/-}$ mice. Proc Natl Acad Sci USA 103:18350-18355. https://doi.org/10.1073/pnas.0608861103
  45. Weihua Z, Saji S, Makinen S, Cheng G, Jensen EV, Warner M, Gustafsson JA (2000) Estrogen receptor (ER) beta, a modulator of ERalpha in the uterus. Proc Natl Acad Sci USA 97:5936-5941. https://doi.org/10.1073/pnas.97.11.5936
  46. Zama AM, Uzumcu M (2013) Targeted genome-wide methylation and gene expression analyses reveal signaling pathways involved in ovarian dysfunction after developmental EDC exposure in rats. Biol Reprod 88:52. doi:10.1095/biolreprod.112.104802.
  47. Zhang W, Yang J, Wang J, Xia P, Xu Y, Jia H, Chen Y (2007) Comparative studies on the increase of uterine weight and related mechanisms of cadmium and p-nonylphenol. Toxicology 24:84-91.