Putative molecular mechanism underlying sperm chromatin remodelling is regulated by reproductive hormones

Manjeet Kaur Gill-Sharma1, Jyoti Choudhuri, Mukhtar Aleem Ansari

  • 1Department of Neuroendocrinology, National Institute for Research in Reproductive Health, J,M, Street, Parel, Mumbai 400012, India. manjitgill_sharma@hotmail.com.

Clinical Epigenetics
|December 18, 2012
PubMed
Abstract

Insights

Male reproductive hormones like testosterone and FSH are crucial for sperm chromatin remodeling. Deficits in these hormones disrupt histone turnover and DNA repair, impacting sperm quality and epigenetic state.

Area of Science:

  • Reproductive Biology
  • Molecular Endocrinology
  • Spermatogenesis

Background:

  • The role of male reproductive hormones in sperm chromatin condensation is not well understood.
  • Established rat models with functional deficits in testosterone or FSH were used.
  • These models exhibit altered sperm chromatin decondensation rates.

Purpose of the Study:

  • To investigate the roles of testosterone and FSH in the molecular mechanisms of sperm chromatin remodeling.
  • To delineate the impact of hormonal deficits on the testis transcriptome and proteome.
  • To understand how hormonal imbalances affect sperm DNA integrity and epigenetic modifications.

Main Methods:

  • Utilized rat models with induced testosterone and FSH deficits (CPA and FD treatments).
  • Analyzed changes in histone ubiquitylation, gene expression (MIWI, HDAC1, UBE1, UBE2D2, CDYL, BRDT, HDAC6, PEM/RhoX5, H2B, TH3).
  • Assessed protein levels (HDAC1, URE-B1/E3, 20S proteasome α1) and sperm chromatin structure.

Main Results:

  • Testosterone and FSH deficits increased polyubiquitylated histone accumulation in the testis.
  • Testosterone deficiency reduced MIWI, HDAC1, UBE1, UBE2D2, CDYL, BRDT, HDAC6, PEM/RhoX5, H2B, and TH3.
  • FSH deficiency decreased CDYL and BRDT, impaired DNA repair, and led to damaged sperm release.

Conclusions:

  • Testosterone and FSH deficits differentially impact sperm chromatin remodeling via the 'chromatin condensation transcriptome and proteome'.
  • Hormonal imbalances stall histone-to-protamine replacement, altering the epigenetic state of sperm chromatin.
  • Inappropriately condensed chromatin leads to ultrastructural nuclear changes in immature sperm.

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