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整合微阵列数据和单细胞RNA测序揭示了小鼠精原干细胞群体中kit和nmyc之间的相关性。

Integrating microarray data and single-cell RNA-seq reveals correlation between kit and nmyc in mouse spermatogonia stem cell population.

作者信息

Hashemi Karoii Danial, Azizi Hossein, Skutella Thomas

机构信息

Faculty of Biotechnology, Amol University of Special Modern Technologies, Amol, Iran.

Department of Cell and Molecular Biology, School of Biology, College of Science, University of Tehran, Tehran, Iran.

出版信息

Front Cell Dev Biol. 2025 Aug 29;13:1634347. doi: 10.3389/fcell.2025.1634347. eCollection 2025.

Abstract

Spermatogonial stem cells (SSCs) are essential for the continuous production of sperm and the maintenance of male fertility. Their selection, culture, and molecular characterization provide critical insights into spermatogenesis and potential therapeutic applications for male infertility. This study utilized CD49f-MACS and matrix selection techniques to isolate SSCs from mouse testicular samples. The molecular profile of the selected SSCs was analyzed through immunocytochemistry, gene ontology enrichment, weighted gene co-expression network analysis (WGCNA), and single-cell RNA sequencing (scRNA-seq). Additionally, protein-protein interaction (PPI) networks were constructed to identify key regulatory factors in SSC maintenance and differentiation. The selected SSCs exhibited a distinct molecular signature, with high expression of Dazl, Pou5f1 (Oct4), Gfra1, Nanog, and Kit. The Kit gene (c-kit) emerged as a crucial regulator of SSC differentiation, strongly associated with retinoic acid (RA)-mediated signaling pathways. Co-expression analysis revealed significant interactions between Kit, Nmyc, and other pluripotency-associated genes, highlighting its role in SSC development. Furthermore, single-cell RNA sequencing confirmed the dynamic expression of Kit during SSC differentiation and early meiosis initiation. Our findings underscore the pivotal role of Kit in spermatogenesis, reinforcing its potential as a therapeutic target for treating male infertility. The study also provides a comprehensive molecular framework for understanding SSC biology, with implications for regenerative medicine, fertility preservation, and gametogenesis. Further research integrating gene-editing technologies and models will be essential to explore the full therapeutic potential of SSC-based treatments.

摘要

精原干细胞(SSCs)对于精子的持续产生和男性生育能力的维持至关重要。它们的筛选、培养和分子特征为精子发生以及男性不育症的潜在治疗应用提供了关键见解。本研究利用CD49f磁珠分选法(MACS)和基质筛选技术从小鼠睾丸样本中分离精原干细胞。通过免疫细胞化学、基因本体富集分析、加权基因共表达网络分析(WGCNA)和单细胞RNA测序(scRNA-seq)对所选精原干细胞的分子谱进行了分析。此外,构建了蛋白质-蛋白质相互作用(PPI)网络以识别精原干细胞维持和分化中的关键调节因子。所选精原干细胞表现出独特的分子特征,Dazl、Pou5f1(Oct4)、Gfra1、Nanog和Kit高表达。Kit基因(c-kit)成为精原干细胞分化的关键调节因子,与视黄酸(RA)介导的信号通路密切相关。共表达分析揭示了Kit、Nmyc和其他多能性相关基因之间的显著相互作用,突出了其在精原干细胞发育中的作用。此外,单细胞RNA测序证实了Kit在精原干细胞分化和减数分裂早期启动过程中的动态表达。我们的研究结果强调了Kit在精子发生中的关键作用,强化了其作为治疗男性不育症治疗靶点的潜力。该研究还为理解精原干细胞生物学提供了一个全面的分子框架,对再生医学、生育力保存和配子发生具有重要意义。整合基因编辑技术和模型的进一步研究对于探索基于精原干细胞治疗的全部治疗潜力至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d108/12426065/a385a4a8719a/fcell-13-1634347-g001.jpg

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