Single-cell RNA sequencing reveals the critical role of alternative splicing in cattle testicular spermatagonia.

IF 5.7 2区 生物学 Q1 BIOLOGY Biology Direct Pub Date : 2024-12-26 DOI:10.1186/s13062-024-00579-7
Xiuge Wang, Chunhong Yang, Xiaochao Wei, Yaran Zhang, Yao Xiao, Jinpeng Wang, Qiang Jiang, Zhihua Ju, Yaping Gao, Yanqin Li, Yundong Gao, Jinming Huang
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Abstract

Spermatogonial stem cells (SSCs) form haploid gametes through the precisely regulated process of spermatogenesis. Within the testis, SSCs undergo self-renewal through mitosis, differentiation, and then enter meiosis to generate mature spermatids. This study utilized single-cell RNA sequencing on 26,888 testicular cells obtained from five Holstein bull testes, revealing the presence of five distinct germ cell types and eight somatic cell types in cattle testes. Gene expression profiling and enrichment analysis were utilized to uncover the varied functional roles of different cell types involved in cattle spermatogenesis. Additionally, unique gene markers specific to each testicular cell type were identified. Moreover, differentially expressed genes in spermatogonia exhibited notable enrichment in GO terms and KEGG pathway linked to alternative splicing. Notably, our study has shown that the activity of the YY1 regulation displays distinct expression patterns in spermatogonia, specifically targeting spliceosome proteins including RBM39, HNRNPA2B1, HNRNPH3, CPSF1, PCBP1, SRRM1, and SRRM2, which play essential roles in mRNA splicing. These results emphasize the importance of mRNA processing in spermatogonia within cattle testes, providing a basis for further investigation into their involvement in spermatogonial development.

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单细胞RNA测序揭示了选择性剪接在牛睾丸精原体中的关键作用。
精原干细胞(ssc)通过精确调控的精子发生过程形成单倍体配子。在睾丸内,ssc通过有丝分裂、分化进行自我更新,然后进入减数分裂产生成熟的精细胞。本研究利用单细胞RNA测序技术对5只荷斯坦公牛睾丸的26888个睾丸细胞进行测序,发现牛睾丸中存在5种不同的生殖细胞类型和8种体细胞类型。利用基因表达谱和富集分析揭示了不同类型细胞在牛精子发生过程中的不同功能作用。此外,鉴定了每种睾丸细胞类型的独特基因标记。此外,精原细胞中差异表达的基因在GO术语和与选择性剪接相关的KEGG途径中表现出显著的富集。值得注意的是,我们的研究表明,YY1的调控活性在精原细胞中表现出不同的表达模式,特异性地靶向剪接体蛋白,包括RBM39、HNRNPA2B1、HNRNPH3、CPSF1、PCBP1、SRRM1和SRRM2,这些蛋白在mRNA剪接中起重要作用。这些结果强调了mRNA加工在牛睾丸精原细胞中的重要性,为进一步研究其在精原细胞发育中的作用提供了基础。
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来源期刊
Biology Direct
Biology Direct 生物-生物学
CiteScore
6.40
自引率
10.90%
发文量
32
审稿时长
7 months
期刊介绍: Biology Direct serves the life science research community as an open access, peer-reviewed online journal, providing authors and readers with an alternative to the traditional model of peer review. Biology Direct considers original research articles, hypotheses, comments, discovery notes and reviews in subject areas currently identified as those most conducive to the open review approach, primarily those with a significant non-experimental component.
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