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Updated: Jul 3, 2026

Functional Assessment of Kinesin-7 CENP-E in Spermatocytes Using In Vivo Inhibition, Immunofluorescence and Flow Cytometry
Published on: December 28, 2021
siRNA-mediated silencing of c-kit in mouse primary spermatogonial cells induces cell cycle arrest
1Immunology Laboratory, National Institute for Research in Reproductive Health, Indian Council of Medical Research, Parel, Mumbai, India.
Abstract:
Several genes/gene products are known to act in a concert to regulate the process of spermatogenesis. One such gene is c-kit, a transmembrane tyrosine kinase receptor which plays an indispensable role in the maturation and differentiation of spermatogonial germ cells (SGCs). In the present study, siRNA approach was used to assess the role of c-kit in survival and proliferation of murine primary SGCs. The effect of different concentrations of anti-c-kit siRNA-1 and siRNA-2 (0.15, 0.315, 0.625, 1.25, 2.50, 5, and 10 nM) on c-kit protein and mRNA expression at post-transfection time (0, 6, 12, 24, 48, and 72 hours) was assessed using an array of techniques such as flow cytometry, ELISA, Western blot, and RT-PCR. Transfection of cells with anti-c-kit siRNAs (0.15-10 nM) at various time points after (0-72 hours) showed significant knockdown c-kit mRNA and protein expression. MTT, Alamar blue assays, and RT-PCR were used to investigate the effects of c-kit silencing on survival, proliferation, distribution, and apoptosis of cells. Experiments were also conducted to determine the effects of c-kit knockdown on cell cycle distribution, DNA laddering, and apoptosis. The results indicated that the transfection with anti-c-kit siRNA induces DNA fragmentation and cell cycle arrest at G(2)/M phase leading to significant reduction in cell viability and proliferation. In addition, enhanced suppression of c-kit protein in P815 cells was observed after transfection as compared to ES-E14TG2alpha cells, suggesting early onset of c-kit protein repression in P815 cells leading to prolongation in cell doubling time. In conclusion, our data provide the first evidence of specific knockdown of c-kit expression in mouse primary SGCs, which emphasizes the critical role played by c-kit in germ cell survival, proliferation, and apoptosis.
Insights
Silencing c-kit in mouse spermatogonial germ cells (SGCs) using siRNA reduces cell viability and proliferation. This study highlights c-kit
Area of Science:
- Reproductive Biology and Genetics
- Molecular Cell Biology
Background:
- Spermatogenesis involves multiple gene products regulating germ cell maturation.
- The c-kit receptor tyrosine kinase is crucial for spermatogonial germ cell (SGC) differentiation and survival.
Purpose of the Study:
- To investigate the role of c-kit in the survival and proliferation of murine primary SGCs.
- To assess the effects of c-kit gene silencing on SGCs.
Main Methods:
- Utilized siRNA approach to specifically knockdown c-kit expression in murine primary SGCs.
- Quantified c-kit mRNA and protein levels using RT-PCR, Western blot, ELISA, and flow cytometry.
- Assessed cell viability, proliferation, apoptosis, and cell cycle distribution via MTT, Alamar blue assays, and DNA laddering.
Main Results:
- Significant knockdown of c-kit mRNA and protein expression was achieved with anti-c-kit siRNAs.
- c-kit silencing induced DNA fragmentation, cell cycle arrest at G2/M phase, and reduced cell viability and proliferation.
- Enhanced c-kit suppression was observed in P815 cells compared to ES-E14TG2alpha cells, prolonging cell doubling time.
Conclusions:
- This study provides the first evidence of specific c-kit knockdown in mouse primary SGCs.
- Demonstrates the critical role of c-kit in regulating germ cell survival, proliferation, and apoptosis.
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