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Aberrant Expression of Connexin Isoforms in the Corpus Epididymis of the Adult Rat by Exposure to Estradiol Benzoate or Flutamide at the Weaning Age

  • Lee, Seong-Kyu (Dept. of Biochemistry and Molecular Biology, College of Medicine, Eulji University) ;
  • Lee, Ki-Ho (Dept. of Biochemistry and Molecular Biology, College of Medicine, Eulji University)
  • 투고 : 2015.11.03
  • 심사 : 2015.11.20
  • 발행 : 2015.12.31

초록

A proper development of the epididymis during the early postnatal development is required for successful fertility in the adult male. Direct cell-cell communication via connexin (Cx) molecules is a common way of cellular interactions to achieve normal development of a given tissue consisting of different cell types. The present research was attempted to determine the effect of exogenous exposure to estrogenic agonist or antiandrogen at the weaning age on expression of Cx isoforms in the adult corpus epididymis. Male rats were subcutaneously administrated with estradiol benzoate (EB) or flutamide (Flu) at the weaning age. The tissue was collected at 4 months of age. Expressional levels of Cx isoforms were determined by a quantitative real-time PCR. Statistical comparison showed significant increases of Cxs31, 32, 37, 40, and 43 transcript amounts by a treatment of $0.015{\mu}g$ of EB /kg body weight (BW). A treatment of $1.5{\mu}g$ of EB /kg BW caused a significant decrease of Cx43 gene expression but increases of Cxs26, 31, 32, 37, and 40 transcript levels. Exposure to $500{\mu}g$ of Flu/kg BW induced an increase of Cx37 expression but significant decreases of Cxs43 and 45 mRNA levels. Expression of Cx37 was increased by a treatment of 5 mg of Flu/kg BW, while transcript levels of Cxs26, 30.3, 31, 31.1, 32, and 43 were significantly decreased by same treatment. These results demonstrate that exposure to steroidal compounds at the early developmental age alters expression of Cx isoforms in the adult corpus epididymis.

키워드

참고문헌

  1. Arroteia KF, Garcia PV, Barbieri MF, Justino ML, Pereira LAV (2012) The epididymis: Embryology, structure, function and its role in fertilization and infertility. In: Pereira LAV (ed). Embryology-Updates and Highlights on Classic Topics. In Tech, Croatia, pp 41-66.
  2. Atanassova N, McKinnell C, Williams K, Turner KJ, Fisher JS, Saunders PT, Millar MR, Sharpe RM (2001). Age-, cell- and region-specific immunoexpression of estrogen receptor alpha (but not estrogen receptor beta) during postnatal development of the epididymis and vas deferens of the rat and disruption of this pattern by neonatal treatment with diethylstilbestrol. Endocrinology 142:874-886. https://doi.org/10.1210/endo.142.2.7978
  3. Cooke PS, Young P, Cunha GR (1991). Androgen receptor expression in developing male reproductive organs. Endocrinology 128:2867-2873. https://doi.org/10.1210/endo-128-6-2867
  4. Cry DG (2011) Connexins and pannexins: Coordinating cellular communication in the testis and epididymis. Spermatogenesis 1:325-338. https://doi.org/10.4161/spmg.1.4.18948
  5. Dufresne J, Finnson KW, Gregory M, Cyr DG (2003) Expression of multiple connexins in the rat epididymis indicates a complex regulation of gap junctional communication. Am J Physiol Cell Physiol 284:C33-43. https://doi.org/10.1152/ajpcell.00111.2002
  6. Goodenough DA. and Paul DL (2009) Gap junctions. Cold Spring Harb. Perspect. Biol. 1:a003061.
  7. Gorowska E, Zarzycka M, Chojnacka K, Bilinska B, Hejmej A (2014) Postnatal exposure to flutamide affects CDH1 and CTNNB1 gene expression in adult pig epididymis and prostate and alters metabolism of testosterone. Andrology 2:186-197. https://doi.org/10.1111/j.2047-2927.2013.00172.x
  8. Hess RA (2003) Estrogen in the adult male reproductive tract: a review. Reprod Biol Endocrinol 1:52. https://doi.org/10.1186/1477-7827-1-52
  9. Hess RA, Fermandes SA, Gomes GR, Oliveira CA, Lazari MF, Porto CS (2011) Estrogen and its receptors in efferent ductules and epididymis. J Androl 32:600-613. https://doi.org/10.2164/jandrol.110.012872
  10. Lawrence TS, Beers WH, Gilula NB (1978) Transmission of hormonal stimulation by cell-to-cell communication. Nature 272:501-506. https://doi.org/10.1038/272501a0
  11. Lee K-H (2013) Differential expression of multiple connexins in rat corpus and cauda epididymis at various postnatal stages. J Ani Sci Tech 55:521-530. https://doi.org/10.5187/JAST.2013.55.6.521
  12. Lee K-H (2014) Expressional modulation of connexin isoforms in the initial segment of male rat treated with estradiol benzoate or flutamide. Dev Reprod 18:293-300. https://doi.org/10.12717/DR.2014.18.4.293
  13. Lee K-H (2015a) Exogenous exposure to estradiol benzoate or flutamide at the weaning age alters expression of connexin isoforms in the initial segment of male rat. Dev Reprod 19:43-51. https://doi.org/10.12717/DR.2015.19.1.043
  14. Lee K-H (2015b) Modification of gene expression of connexins in the rat corpus epididymis by estradiol benzoate or flutamide exposure at the early neonatal age. Dev Reprod 19:69-77. https://doi.org/10.12717/DR.2015.19.2.069
  15. Lee VW, DE Kretser DM, Hudson B, Wang C (1975) Variations in serum FSH, LH and testosterone levels in male rats from birth to sexual maturity. J Reprod Fertil 42:121-126. https://doi.org/10.1530/jrf.0.0420121
  16. Mese G, Richard G, White TW (2007) Gap junctions: basic structure and function. J Invest Dermatol 127:2516-2524. https://doi.org/10.1038/sj.jid.5700770
  17. Robaire B, Hamzeh M (2011) Androgen action in the epididymis. J Androl 32:592-599. https://doi.org/10.2164/jandrol.111.014266
  18. Robaire B, Hermo L (1988) Efferent ducts, epididymis, and vas deferens: structure, functions, and their regulation. In: Knobil E et al (eds.). The Physiology of Reproduction. Raven Press, New York, NY, pp 999-1080.
  19. Rodriguez CM, Kirby JL, Hinton BT (2002) The development of the epididymis. In: Robaire B and Hinton BT (eds.). The Epididymis: From Molecules to Clinical Practice, Kluwer Academic/Plenum, New York, NY, pp 251-267.
  20. Seo H-H, Seon C-W, Choi I, Cheon Y-P, Cheon T-H, Lee K-H (2010) Expressional profiling of connexin isoforms in the initial segment of the male reproductive tract during postnatal development. Reprod Dev Biol 34:103-109.
  21. Valiunas V, Polosina YY, Miller H, Potapova IA, Valiuniene L, Doronin S, Mathias RT, Robinson RB, Rosen MR, Cohen IS, Brink PR (2005) Connexin-specific cell-to-cell transfer of short interfering RNA by gap junctions. J Physiol 568:459-468. https://doi.org/10.1113/jphysiol.2005.090985