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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
Mesenchymal stem cells promote spermatogonial stem/progenitor cell pool and spermatogenesis in neonatal mice in vitro
Selin Önen1,2, Sevil Köse3, Nilgün Yersal4
1Department of Stem Cell Sciences, Graduate School of Health Sciences, Hacettepe University, 06100, Ankara, Turkey.
Abstract:
Prepubertal cancer treatment leads to irreversible infertility in half of the male patients. Current in vitro spermatogenesis protocols and cryopreservation techniques are inadequate to expand spermatogonial stem/progenitor cells (SSPC) from testicles. Bone marrow derived mesenchymal stem cells (BM-MSC) bearing a close resemblance to Sertoli cells, improved spermatogenesis in animal models. We asked if a co-culture setup supported by syngeneic BM-MSC that contributes to the air-liquid interphase (ALI) could lead to survival, expansion and differentiation of SSPCs in vitro. We generated an ALI platform able to provide a real-time cellular paracrine contribution consisting of syngeneic BM-MSCs to neonatal C57BL/6 mice testes. We aimed to evaluate the efficacy of this culture system on SSPC pool expansion and spermatogenesis throughout a complete spermatogenic cycle by measuring the number of total germ cells (GC), the undifferentiated and differentiating spermatogonia, the spermatocytes and the spermatids. Furthermore, we evaluated the testicular cell cycle phases, the tubular and luminal areas using histochemical, immunohistochemical and flow cytometric techniques. Cultures in present of BM-MSCs displayed survival of ID4(+) spermatogonial stem cells (SSC), expansion of SALL4(+) and OCT4(+) SSPCs, VASA(+) total GCs and Ki67(+) proliferative cells at 42 days and an increased number of SCP3(+) spermatocytes and Acrosin(+) spermatids at 28 days. BM-MSCs increased the percentage of mitotic cells within the G2-M phase of the total testicular cell cycle increased for 7 days, preserved the cell viability for 42 days and induced testicular maturation by enlargement of the tubular and luminal area for 42 days in comparison to the control. The percentage of PLZF(+) SSPCs increased within the first 28 days of culture, after which the pool started to get smaller while the number of spermatocytes and spermatids increased simultaneously. Our findings established the efficacy of syngeneic BM-MSCs on the survival and expansion of the SSPC pool and differentiation of spermatogonia to round spermatids during in vitro culture of prepubertal mice testes for 42 days. This method may be helpful in providing alternative cures for male fertility by supporting in vitro differentiated spermatids that can be used for round spermatid injection (ROSI) to female oocyte in animal models. These findings can be further exploited for personalized cellular therapy strategies to cure male infertility of prepubertal cancer survivors in clinics.
Insights
Bone marrow-derived mesenchymal stem cells (BM-MSCs) support the survival and expansion of spermatogonial stem/progenitor cells (SSPCs) in vitro. This method shows promise for treating male infertility in prepubertal cancer survivors.
Area of Science:
- Reproductive Biology
- Stem Cell Biology
- Oncology
Background:
- Cancer treatments can cause irreversible infertility in young males.
- Current methods for preserving fertility, like in vitro spermatogenesis and cryopreservation, are insufficient for expanding spermatogonial stem/progenitor cells (SSPCs).
- Bone marrow-derived mesenchymal stem cells (BM-MSCs) exhibit similarities to Sertoli cells and have shown potential in improving spermatogenesis in animal models.
Purpose of the Study:
- To investigate if a co-culture system using syngeneic BM-MSCs on an air-liquid interphase (ALI) platform can support the survival, expansion, and differentiation of SSPCs in vitro.
- To evaluate the efficacy of this culture system on SSPC pool expansion and spermatogenesis over a complete spermatogenic cycle.
Main Methods:
- Generation of an ALI platform for co-culturing neonatal C57BL/6 mouse testes with syngeneic BM-MSCs.
- Assessment of SSPC survival, expansion, and differentiation using markers like ID4, SALL4, OCT4, VASA, SCP3, and Acrosin.
- Evaluation of testicular cell cycle, cell viability, and tubular/luminal areas using histochemical, immunohistochemical, and flow cytometric techniques.
Main Results:
- BM-MSC co-culture supported the survival of spermatogonial stem cells (SSCs) and expanded SSPCs, total germ cells, and proliferative cells over 42 days.
- An increased number of spermatocytes and spermatids were observed at 28 days.
- BM-MSCs enhanced the mitotic cell population in the G2-M phase, preserved cell viability for 42 days, and promoted testicular maturation by increasing tubular and luminal areas.
Conclusions:
- Syngeneic BM-MSCs effectively promote the survival and expansion of the SSPC pool and the differentiation of spermatogonia into round spermatids in vitro.
- This approach may offer a novel strategy for fertility preservation in prepubertal males undergoing cancer treatment.
- The method holds potential for future clinical applications in personalized cellular therapy for male infertility, including round spermatid injection (ROSI) in animal models.

