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Updated: Mar 14, 2026

Germ Cell Transplantation and Testis Tissue Xenografting in Mice
Published on: February 6, 2012
Underlying Mechanisms that Restore Spermatogenesis on Transplanting Healthy Niche Cells in Busulphan Treated Mouse
Sandhya Anand1, Deepa Bhartiya2, Kalpana Sriraman1
1Stem Cell Biology Department, National Institute for Research in Reproductive Health, JM Street, Parel, Mumbai, 400 012, India.
Abstract:
Very small embryonic-like stem cells (VSELs) exist among spermatogonial stem cells and survive chemotherapy in both mice and human testes because of their relatively quiescent nature. Our earlier study revealed that inter-tubular transplantation of niche (Sertoli or bone marrow derived mesenchymal) cells can restore spermatogenesis from endogenous surviving VSELs. Present study was undertaken to delineate the effect of busulphan on testicular stem/germ/Sertoli cells and to comprehend the underlying mechanisms of how transplanted niche cells restore spermatogenesis. Ploidy analysis showed an increase in diploid cells on D7 and VSELs (2-6 μm; LIN-/CD45-/SCA-1+) were detected at all time-points studied and were maximum on D15 after busulphan treatment. They were visualized in cell smears, expressed nuclear NANOG and SOX2 and BrdU uptake on D15 suggested they were proliferating in response to stress induced by busulphan. Verapamil-sensitive side population detected comprised SCA-1 positive stem cells (5 ± 0.02 % in normal and 8.6 ± 2.02 % in chemoablated testis). Adverse effects of busulphan on Sertoli cells by transcriptome analysis included altered expression of Gdnf, Scf, Fgf, Bmp4, androgen binding protein, components of blood-testis-barrier and also stem cells related signaling pathways including Wnt. GFP positive transplanted cells aligned themselves as 'neo-tubules' and were visualized adjacent to 'native' germ cells depleted tubules. 'Neo-tubules' provide paracrine support to endogenous VSELs to undergo spermatogenesis. Quantitative analysis was done to track proliferation (PCNA) and differentiation (MVH) of stem cells by immuno-localization studies at different time intervals. Results provide an alternative strategy to restore spermatogenesis in cancer survivors from endogenous stem cells which needs to be further researched.
Insights
Chemotherapy damages testicular stem cells, but transplanted niche cells can restore spermatogenesis by supporting very small embryonic-like stem cells (VSELs). This offers a potential strategy for cancer survivors to regain fertility.
Area of Science:
- Reproductive biology
- Stem cell research
- Cancer survivorship
Background:
- Very small embryonic-like stem cells (VSELs) are quiescent and survive chemotherapy in testes.
- Previous research showed niche cell transplantation can restore spermatogenesis from endogenous VSELs.
Purpose of the Study:
- To investigate busulphan's effects on testicular cells.
- To understand how transplanted niche cells restore spermatogenesis.
Main Methods:
- Busulphan treatment in mice.
- Ploidy analysis and VSEL detection (LIN-/CD45-/SCA-1+).
- Transcriptome analysis of Sertoli cells and immunolocalization of stem cell markers (NANOG, SOX2, BrdU, PCNA, MVH).
Main Results:
- Busulphan increased diploid cells and VSELs, which proliferated under stress.
- Sertoli cells showed altered gene expression affecting stem cell pathways.
- Transplanted niche cells formed 'neo-tubules' supporting endogenous VSELs.
Conclusions:
- Transplanted niche cells support endogenous VSELs to restore spermatogenesis.
- This approach may offer a fertility restoration strategy for cancer survivors.
- Further research is needed to validate this therapeutic potential.
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