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Published on: June 17, 2025
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.
Background:
The putative regulatory role of the male reproductive hormones in the molecular mechanism underlying chromatin condensation remains poorly understood. In the past decade, we developed two adult male rat models wherein functional deficits of testosterone or FSH, produced after treatments with 20 mg/Kg/d of cyproterone acetate (CPA) per os, for a period of 15 days or 3 mg/Kg/d of fluphenazine decanoate (FD) subcutaneously, for a period of 60 days, respectively, affected the rate of sperm chromatin decondensation in vitro. These rat models have been used in the current study in order to delineate the putative roles of testosterone and FSH in the molecular mechanism underlying remodelling of sperm chromatin.
Results:
We report that deficits of both testosterone and FSH affected the turnover of polyubiquitylated histones and led to their accumulation in the testis. Functional deficits of testosterone reduced expression of MIWI, the 5-methyl cap binding RNA-binding protein (PIWIlike murine homologue of the Drosophila protein PIWI/P-element induced wimpy testis) containing a PAZ/Piwi-Argonaut-Zwille domain and levels of histone deacetylase1 (HDAC1), ubiquitin ligating enzyme (URE-B1/E3), 20S proteasome α1 concomitant with reduced expression of ubiquitin activating enzyme (ube1), conjugating enzyme (ube2d2), chromodomain Y like protein (cdyl), bromodomain testis specific protein (brdt), hdac6 (histone deacetylase6), androgen-dependent homeobox placentae embryonic protein (pem/RhoX5), histones h2b and th3 (testis-specific h3). Functional deficits of FSH reduced the expression of cdyl and brdt genes in the testis, affected turnover of ubiquitylated histones, stalled the physiological DNA repair mechanism and culminated in spermiation of DNA damaged sperm.
Conclusions:
We aver that deficits of both testosterone and FSH differentially affected the process of sperm chromatin remodelling through subtle changes in the 'chromatin condensation transcriptome and proteome', thereby stalling the replacement of 'dynamic' histones with 'inert' protamines, and altering the epigenetic state of condensed sperm chromatin. The inappropriately condensed chromatin affected the sperm chromatin cytoarchitecture, evident from subtle ultrastructural changes in the nuclei of immature caput epididymal sperm of CPA- or FD-treated rats, incubated in vitro with dithiothreitol.
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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