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Serial Enrichment of Spermatogonial Stem and Progenitor Cells SSCs in Culture for Derivation of Long-term Adult Mouse SSC Lines
Published on: February 25, 2013
Peritubular myoid cells participate in male mouse spermatogonial stem cell maintenance
Liang-Yu Chen1, Paula R Brown, William B Willis
1Gamete Biology Group (L.-Y.C., W.B.W., E.M.E.) and Reproductive Developmental Biology Group (P.R.B.), Laboratory of Reproductive and Developmental Toxicology, National Institute of Environmental Health Sciences, National Institutes of Health, Research Triangle Park, North Carolina 27709.
Abstract:
Peritubular myoid (PM) cells surround the seminiferous tubule and together with Sertoli cells form the cellular boundary of the spermatogonial stem cell (SSC) niche. However, it remains unclear what role PM cells have in determining the microenvironment in the niche required for maintenance of the ability of SSCs to undergo self-renewal and differentiation into spermatogonia. Mice with a targeted disruption of the androgen receptor gene (Ar) in PM cells experienced a progressive loss of spermatogonia, suggesting that PM cells require testosterone (T) action to produce factors influencing SSC maintenance in the niche. Other studies showed that glial cell line-derived neurotrophic factor (GDNF) is required for SSC self-renewal and differentiation of SSCs in vitro and in vivo. This led us to hypothesize that T-regulated GDNF expression by PM cells contributes to the maintenance of SSCs. This hypothesis was tested using an adult mouse PM cell primary culture system and germ cell transplantation. We found that T induced GDNF expression at the mRNA and protein levels in PM cells. Furthermore, when thymus cell antigen 1-positive spermatogonia isolated from neonatal mice were cocultured with PM cells with or without T and transplanted to the testes of germ cell-depleted mice, the number and length of transplant-derived colonies was increased considerably by in vitro T treatment. These results support the novel hypothesis that T-dependent regulation of GDNF expression in PM cells has a significant influence on the microenvironment of the niche and SSC maintenance.
Insights
Testosterone (T) regulates glial cell line-derived neurotrophic factor (GDNF) in peritubular myoid cells, which is crucial for maintaining spermatogonial stem cells (SSCs) and supporting their self-renewal and differentiation.
Area of Science:
- Reproductive biology
- Stem cell biology
- Endocrinology
Background:
- Peritubular myoid (PM) cells and Sertoli cells form the spermatogonial stem cell (SSC) niche boundary.
- The precise role of PM cells in maintaining SSC self-renewal and differentiation remains unclear.
- Androgen receptor disruption in PM cells leads to spermatogonia loss, suggesting a role for testosterone (T).
Purpose of the Study:
- To investigate the hypothesis that T-regulated GDNF expression by PM cells maintains SSCs.
- To elucidate the mechanism by which PM cells influence the SSC niche microenvironment.
Main Methods:
- Primary adult mouse PM cell culture.
- T treatment of PM cells and assessment of GDNF expression (mRNA and protein).
- Germ cell transplantation of spermatogonia co-cultured with PM cells +/- T into recipient testes.
Main Results:
- Testosterone (T) significantly induced GDNF expression at both mRNA and protein levels in PM cells.
- Co-culture of spermatogonia with T-treated PM cells enhanced the number and length of transplant-derived colonies.
- In vitro T treatment of PM cells positively impacted SSC maintenance and proliferation in vivo.
Conclusions:
- T-dependent GDNF regulation by PM cells is a key factor in maintaining the SSC niche.
- PM cells actively contribute to SSC maintenance through T-mediated signaling pathways.
- This study identifies a novel mechanism influencing SSC behavior and male fertility.
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