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Antagonistic interaction between miR-143 and KRAS gene regulating male mouse germ cell apoptosis
Yu Lu1, Shudong Niu1, Guisheng Zhang1
1College of Agriculture and Bioengineering, Heze University, Heze, 274000, China.
Abstract:
Precisely regulated spermatocyte growth, differentiation, and apoptosis are crucial for sustainable male fertility. miR-143 has been demonstrated to regulate gene expression and cell apoptosis in various human cancers. However, the function of mmu-mir-143 (miR-143) in mammalian testes and its underlying mechanism remains unexplored. In this study, the expression of miR-143 was detected in C57BL/6 mice spermatocytes by in situ hybridization (ISH) and immunofluorescence (IF) co-staining and transfecting miR-143 inhibitor into GC-2 cells (mouse spermatogenic cells) shows that miR-143 inhibits cleaved Caspase 3 (CC3)-induced male germ cell death. The current study used IF co-staining of KI67 and γ-H2A.X in the testes of C57BL/6 mice at different developmental stages, revealing that active proliferation and apoptosis of spermatocytes occurred simultaneously in the testes at 14 day post-partum (dpp). Kras was predicted as a potential target of miR-143 in mice using of the online database TargetScan, verified by quantitative real-time PCR (qPCR), western blotting (WB), and Dual-luciferase reporter gene assay. Co-transfection of miR-143 inhibitor and Kras siRNA into GC-2 cells revealed an antagonistic correlation between miR-143 and Kras in regulating male germ cell death. Finally, miR-143 inhibitor and mimics were administered into the seminiferous tubule of 3-week-old C57BL/6 mice. The histomorphology, IF co-staining, and WB data indicated that the testes treated with the miR-143 inhibitor showed significantly aberrant phenotypes, including damaged seminiferous tubules, reduced spermatocyte quantity, and elevated levels of apoptosis. This study uncovered the mechanism by which miR-143 inhibits male germ cell apoptosis through the repression of Kras/KRAS levels and the inhibition of Caspase 3 activation, providing insight into the role of miRNA in spermatogenesis and the maintenance of male fertility.
Insights
MicroRNA-143 (miR-143) plays a vital role in male fertility by inhibiting germ cell apoptosis. It achieves this by repressing Kras expression and preventing Caspase 3 activation, crucial for spermatogenesis.
Area of Science:
- Reproductive Biology
- Molecular Biology
- Genetics
Background:
- Spermatocyte growth, differentiation, and apoptosis are critical for male fertility.
- MicroRNA-143 (miR-143) is known to regulate apoptosis in cancers, but its role in mammalian testes is unknown.
Purpose of the Study:
- To investigate the function and mechanism of miR-143 in mammalian spermatogenesis and male fertility.
- To determine if miR-143 regulates male germ cell apoptosis and identify its molecular targets.
Main Methods:
- In situ hybridization (ISH) and immunofluorescence (IF) for miR-143 expression in mouse spermatocytes.
- Transfection of miR-143 inhibitors/mimics and Kras siRNA into GC-2 cells.
- Quantitative real-time PCR (qPCR), Western blotting (WB), and Dual-luciferase reporter gene assay to verify Kras as a target.
- Administration of miR-143 inhibitor/mimics into mouse seminiferous tubules followed by histological and molecular analysis.
Main Results:
- miR-143 was detected in mouse spermatocytes and inhibited cleaved Caspase 3 (CC3)-induced germ cell death.
- miR-143 directly targets Kras, showing an antagonistic correlation in regulating germ cell death.
- Inhibition of miR-143 in vivo led to aberrant testicular phenotypes, including increased apoptosis and reduced spermatocyte quantity.
Conclusions:
- miR-143 inhibits male germ cell apoptosis by repressing Kras expression and preventing Caspase 3 activation.
- This study elucidates the mechanism of miR-143 in spermatogenesis, highlighting its importance for maintaining male fertility.
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