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Effects of daidzein on testosterone secretion in cultured immature mouse testis Cover

Effects of daidzein on testosterone secretion in cultured immature mouse testis

Open Access
|Feb 2017

References

  1. 1. Zhang LP, Cui S. Effects of daidzein on testosterone synthesis and secretion in cultured mouse Leydig cells. Asian-Aust J Anim Sci. 2009; 22:618-25.10.5713/ajas.2009.80695
  2. 2. Wang G, Zhang X, Han Z, Liu Z, Liu W. Effects of daidzein on body weight gain, serum IGF-I level and cellular immune function in intact male piglets. Asian- Aust J Anim Sci. 2002; 15:1066-70.10.5713/ajas.2002.1066
  3. 3. Han D, Tachibana H, Yamada K. Inhibition of environmental estrogen-induced proliferation of human breast carcinoma MCF-7 cells by flavonoids. In Vitro Cell Dev Biol Anim. 2001; 37:275-82.
  4. 4. Choi J, Song J, Choi YM, Jang DJ, Kim E, Kim I, et al. Daidzein modulations of apolipoprotein B and fatty acid synthase mRNA expression in chick liver vary depending on dietary protein levels. Asian-Aust J Anim Sci. 2006; 19:236-44.10.5713/ajas.2006.236
  5. 5. Anthony MS, Clarkson TB, Hughes CL Jr, Morgan TM, Burke GL. Soybean isoflavones improve cardiovascular risk factors without affecting the reproductive system of peripubertal rhesus monkeys. J Nutr. 1996; 126:43-50.10.1093/jn/126.1.438558324
  6. 6. Pan L, Xia X, Feng Y, Jiang C, Cui Y, Huang Y. Exposure of juvenile rats to phytoestrogen daidzein impairs erectile function in a dose-related manner at adulthood. J Androl. 2008; 29:55-62.10.2164/jandrol.107.00339217673432
  7. 7. Sharpe RM, Martin B, Morris K, Greig I, McKinnell C, McNeilly AS, et al. Infant feeding with soy formula milk: effects on the testis and on blood testosterone levels in marmoset monkeys during the period of neonatal testicular activity. Hum Reprod. 2002; 17: 1692-703.10.1093/humrep/17.7.169212093826
  8. 8. Akingbemi BT, Braden TD, Kemppainen BW, Hancock KD, Sherrill JD, Cook SJ, et al. Exposure to phytoestrogens in the perinatal period affects androgen secretion by testicular Leydig cells in the adult rat. Endocrinology. 2007; 148:4475-88.10.1210/en.2007-032717569756
  9. 9. Piotrowska K, Baranowska-Bosiacka I, Marchlewicz M, Gutowska I, Nocen I, Zawislak M, et al. Changes in male reproductive system and mineral metabolism induced by soy isoflavones administered to rats from prenatal life until sexual maturity. Nutrition. 2011; 27: 372-9.10.1016/j.nut.2010.03.01021167684
  10. 10. Sherrill JD, Sparks M, Dennis J, Mansour M, Kemppainen BW, Bartol FF, et al. Developmental exposures of male rats to soy isoflavones impact Leydig cell differentiation. Biol Reprod. 2010; 83: 488-501.10.1095/biolreprod.109.082685636639720554919
  11. 11. Cherradi N, Rossier MF, Vallotton MB, Timberg R, Friedberg I, Orly J, et al. Submitochondrial distribution of three key steroidogenic proteins (steroidogenic acute regulatory protein and cytochrome P450scc and 3β-hydroxysteroid dehydrogenase isomerase enzymes) upon stimulation by intracellular calcium in adrenal glomerulosa cells. J Biol Chem. 1997; 272: 7899-907.10.1074/jbc.272.12.78999065457
  12. 12. Stocco DM. Recent advances in the role of StAR. Rev Reprod. 1998; 3:82-5.10.1530/ror.0.0030082
  13. 13. Walsh LP, Webster DR, Stocco DM. Dimethoate inhibits steroidogenesis by disrupting transcription of the steroidogenic acute regulatory (StAR) gene. J Endocrinol. 2000; 167:253-63.10.1677/joe.0.1670253
  14. 14. Livera G, Delbes G, Pairault C, Rouiller-Fabre V, Habert R. Organotypic culture, a powerful model for studying rat and mouse fetal testis development. Cell Tissue Res. 2006; 324:507-21.10.1007/s00441-006-0167-7
  15. 15. Laughlin AM, Welsh TH Jr, Love CC, Varner DD, Parrish AR, Forrest DW, et al. In vitro culture of precision-cut testicular tissue as a novel tool for the study of responses to LH. In Vitro Cell Dev Biol Anim. 2010; 46:45-53.10.1007/s11626-009-9242-1
  16. 16. Vergouwen RP, Jacobs SG, Huiskamp R, Davids JA, de Rooij DG. Proliferative activity of gonocytes, Sertoli cells and interstitial cells during testicular development in mice. J Reprod Fertil. 1991; 93:233-43.10.1530/jrf.0.0930233
  17. 17. Benton L, Shan LX, Hardy MP. Differentiation of adult Leydig cells. J Steroid Biochem Mol Biol. 1995; 53:61-8.10.1016/0960-0760(95)00022-R
  18. 18. Habert R, Devif I, Gangnerau MN, Lecerf L. Ontogenesis of the in vitro response of rat testis to gonadotropin-releasing hormone. Mol Cell Endocrinol. 1991; 82:199-206.10.1016/0303-7207(91)90032-N
  19. 19. Jin L, Zhang S, Burguera BG, Couce ME, Osamura RY, Kulig E, et al. Leptin and leptin receptor expression in rat and mouse pituitary cells. Endocrinology. 2000; 141:333-9.10.1210/endo.141.1.726010614655
  20. 20. Akingbemi BT, Ge R, Rosenfeld CS, Newton LG, Hardy DO, Catterall JF, et al. Estrogen receptor-α gene deficiency enhances androgen biosynthesis in the mouse Leydig cell. Endocrinology. 2003; 144:84-93.10.1210/en.2002-22029212488333
  21. 21. Kwon SM, Kim SI, Chun DC, Cho NH, Chung BC, Park BW, et al. Development of rat prostatitis model by oral administration of isoflavone and its characteristics. Yonsei Med J. 2001; 42:395-404.10.3349/ymj.2001.42.4.39511519081
  22. 22. Murkies AL, Wilcox G, Davis SR. Clinical review 92: Phytoestrogens. J Clin Endocrinol Metab. 1998; 83: 297-303.
  23. 23. Tham DM, Gardner CD, Haskell WL. Clinical review 97: Potential health benefits of dietary phytoestrogens: a review of the clinical, epidemiological, and mechanistic evidence. J Clin Endocrinol Metab. 1998; 83:2223-35.
  24. 24. Lund TD, Munson DJ, Haldy ME, Setchell KD, Lephart ED, Handa RJ. Equol is a novel anti-androgen that inhibits prostate growth and hormone feedback. Biol Reprod. 2004; 70:1188-95.10.1095/biolreprod.103.023713
  25. 25. Arai Y, Mori T, Suzuki Y, Bern HA. Long-term effects of perinatal exposure to sex steroids and diethylstilbestrol on the reproductive system of male mammals. Int Rev Cytol. 1983; 84:235-68.10.1016/S0074-7696(08)61019-0
  26. 26. Williams K, McKinnell C, Saunders PT, Walker M, Fisher JS, Turner KJ, et al. Neonatal exposure to potent and environmental oestrogens and abnormalities of the male reproductive system in the rat: evidence for importance of the androgen-oestrogen balance and assessment of the relevance to man. Hum Reprod Update. 2001; 7:236-47.10.1093/humupd/7.3.23611392370
  27. 27. Lassurguere J, Livera G, Habert R, Jegou B. Time-and dose-related effects of estradiol and diethylstilbestrol on the morphology and function of the fetal rat testis in culture. Toxicol Sci. 2003; 73:160-9.10.1093/toxsci/kfg06512657744
  28. 28. Atanassova N, McKinnell C, Turner KJ, Walker M, Fisher JS, Morley M, et al. Comparative effects of neonatal exposure of male rats to potent and weak (environmental) estrogens on spermatogenesis at puberty and the relationship to adult testis size and fertility: evidence for stimulatory effects of low estrogen levels. Endocrinology. 2000; 141:3898-907.10.1210/endo.141.10.772311014247
  29. 29. Ebling FJP, Brooks AN, Cronin AS, Ford H, Kerr JB. Estrogenic induction of spermatogenesis in the hypogonadal mouse. Endocrinology. 2000; 141: 2861-9.10.1210/endo.141.8.759610919273
  30. 30. Kuiper GG, Carlsson B, Grandien K, Enmark E, Haggblad J, Nilsson S, et al. Comparison of the ligand binding specificity and transcript tissue distribution of estrogen receptors α and β. Endocrinology. 1997; 138:863-70.10.1210/endo.138.3.49799048584
  31. 31. Kuiper GG, Lemmen JG, Carlsson B, Corton JC, Safe SH, van der Saag PT, et al. Interaction of estrogenic chemicals and phytoestrogens with estrogen receptor β. Endocrinology. 1998; 139:4252-63.10.1210/endo.139.10.62169751507
  32. 32. Delbes G, Duquenne C, Szenker J, Taccoen J, Habert R, Levacher C. Developmental changes in testicular sensitivity to estrogens throughout fetal and neonatal Life. Toxicol Sci. 2007; 99:234-43.10.1093/toxsci/kfm16017569695
  33. 33. Hilscherova K, Jones PD, Gracia T, Newsted JL, Zhang X, Sanderson JT, et al. Assessment of the effects of chemicals on the expression of ten steroidogenic genes in the H295R cell line using real-time PCR. Toxicol Sci. 2004; 81:78-89.10.1093/toxsci/kfh19115187238
  34. 34. Sanderson JT. The steroid hormone biosynthesis pathway as a target for endocrine-disrupting chemicals. Toxicol Sci. 2006; 94:3-21.10.1093/toxsci/kfl05116807284
  35. 35. Stocco DM, Clark BJ. Regulation of the acute production of steroids in steroidogenic cells. Endocr Rev. 1996; 17:221-44.
  36. 36. Payne AH, Hales DB. Overview of steroidogenic enzymes in the pathway from cholesterol to active steroid hormones. Endocr Rev. 2004; 25:947-70. 10.1210/er.2003-003015583024
DOI: https://doi.org/10.5372/1905-7415.0802.286 | Journal eISSN: 1875-855X | Journal ISSN: 1905-7415
Language: English
Page range: 247 - 253
Published on: Feb 4, 2017
Published by: Chulalongkorn University
In partnership with: Paradigm Publishing Services
Publication frequency: 6 issues per year

© 2017 Liuping Zhang, Genbao Shao, Yaoqian Pan, published by Chulalongkorn University
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.