HnRNPM modulates alternative splicing in germ cells by recruiting PTBP1.

IF 4.2 2区 医学 Q1 ENDOCRINOLOGY & METABOLISM Reproductive Biology and Endocrinology Pub Date : 2025-01-08 DOI:10.1186/s12958-024-01340-5
Peng Lv, Wenchao Xu, Sheng Xin, Yuanxuan Deng, Bin Yang, Dengjianyi Xu, Jian Bai, Deilin Ma, Tao Wang, Jihong Liu, Xiaming Liu
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Abstract

Background: Heterogeneous nuclear ribonucleoprotein M (HnRNPM) is a key splicing factor involved in various biological processes, including the epithelial‒mesenchymal transition and cancer development. Alternative splicing is widely involved in the process of spermatogenesis. However, the function of hnRNPM as a splicing factor during spermatogenesis remains unknown.

Methods: The expression of hnRNPM in germ cells at different stages was detected by polymerase chain reaction, western blotting, a single-cell database, and chromosome spreading assays. Conditional hnRNPM knockout mice were generated to observe the development of testes and germ cells in male mice. Histological staining, immunofluorescence staining and transmission electron microscopy were used to observe the abnormal development of sperm from conditional hnRNPM-deficient mice. Coimmunoprecipitation and mass spectrometry analyses revealed the proteins that interact with hnRNPM. RNA sequencing was performed to analyse the different alternative splicing events in the testes of control and hnRNPM-deficient mice.

Results: In this study, we revealed that hnRNPM is highly expressed in spermatocytes and round spermatids, with the exception of XY bodies and metaphase. Therefore, we generated a germ cell-specific hnRNPM conditional knockout mouse model to investigate the role of hnRNPM in spermatogenesis. A lack of hnRNPM led to male infertility under natural conditions. Male hnRNPM-deficient mice presented lower numbers of sperm, lower motility, significantly more malformed sperm and even tailless sperm. Moreover, we found that hnRNPM interacted with PTBP1 to collectively regulate the process of spermatogenesis. In addition, we found that hnRNPM deficiency caused 1617 different alternative splicing events, and we detected abnormal exon skipping events in Cep152, Cyld, Inpp4b and Cd59b.

Conclusions: Together, our results suggest that hnRNPM regulates the alternative splicing of mRNAs during spermatogenesis by recruiting PTBP1 and is required for male mouse fertility.

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HnRNPM通过募集PTBP1调节生殖细胞中的选择性剪接。
背景:异质核核糖核蛋白M (HnRNPM)是参与多种生物过程的关键剪接因子,包括上皮-间质转化和癌症发展。选择性剪接广泛参与精子发生过程。然而,hnRNPM在精子发生过程中作为剪接因子的功能尚不清楚。方法:采用聚合酶链反应法、western blotting法、单细胞数据库法和染色体扩增法检测hnRNPM在不同时期生殖细胞中的表达。制备条件hnRNPM敲除小鼠,观察雄性小鼠睾丸和生殖细胞的发育。采用组织学染色、免疫荧光染色和透射电镜观察条件性hnrnpm缺陷小鼠精子的异常发育。共免疫沉淀和质谱分析揭示了与hnRNPM相互作用的蛋白质。通过RNA测序分析对照组和hnrnpm缺陷小鼠睾丸中不同的选择性剪接事件。结果:本研究发现,除XY小体和中期外,hnRNPM在精母细胞和圆形精母细胞中均有高表达。因此,我们建立了生殖细胞特异性hnRNPM条件敲除小鼠模型来研究hnRNPM在精子发生中的作用。缺乏hnRNPM导致男性在自然条件下不育。雄性hnrnpm缺陷小鼠精子数量减少,活力降低,畸形精子明显增多,甚至无尾精子。此外,我们发现hnRNPM与PTBP1相互作用,共同调节精子发生过程。此外,我们发现hnRNPM缺陷导致1617种不同的选择性剪接事件,我们在Cep152、Cyld、Inpp4b和Cd59b中检测到异常的外显子跳变事件。总之,我们的研究结果表明,hnRNPM通过募集pptbp1调节精子发生过程中mrna的选择性剪接,这是雄性小鼠生育所必需的。
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来源期刊
Reproductive Biology and Endocrinology
Reproductive Biology and Endocrinology 医学-内分泌学与代谢
CiteScore
7.90
自引率
2.30%
发文量
161
审稿时长
4-8 weeks
期刊介绍: Reproductive Biology and Endocrinology publishes and disseminates high-quality results from excellent research in the reproductive sciences. The journal publishes on topics covering gametogenesis, fertilization, early embryonic development, embryo-uterus interaction, reproductive development, pregnancy, uterine biology, endocrinology of reproduction, control of reproduction, reproductive immunology, neuroendocrinology, and veterinary and human reproductive medicine, including all vertebrate species.
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