The subcortical maternal complex safeguards mouse oocyte-to-embryo transition by preventing nuclear entry of SPIN1

IF 10.1 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Nature Structural & Molecular Biology Pub Date : 2025-04-17 DOI:10.1038/s41594-025-01538-0
Chengpeng Xu, Dandan Qin, Xukun Lu, Qianqian Qi, Yu Wu, Qizhi Wang, Zhuo Han, Xiaoqing Nie, Yongmei Jiang, Dong Deng, Wei Xie, Zheng Gao, Lei Li
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Abstract

How cytoplasmic regulators control nuclear events in mammalian oocytes and early embryos remains largely enigmatic. We previously identified a subcortical maternal complex (SCMC) that specifically resides in the cytoplasm of mammalian oocytes and early embryos but is also involved in nuclear events. Nevertheless, how the cytoplasmic SCMC exerts its role in nuclear processes remains unknown. In this study, we unveil SPIN1, a histone methylation reader, as a novel member of the SCMC. The SCMC component FILIA tightly regulates the expression and cytoplasmic localization of SPIN1 through direct interaction. When the expression of FILIA is decreased because of genetic mutations of SCMC genes, SPIN1 expression is dramatically reduced but the residual SPIN1 translocates into the nucleus. The abnormal nuclear presence of SPIN1 impairs H3K4me3 reprogramming, zygotic genome activation and physiological embryonic development. Inhibiting the interaction between SPIN1 and H3K4me3 partially rescues the abnormal phenotype in FILIA-null embryos. Mechanistically, SPIN1 partially perturbs the demethylation process by competing with KDM5B for binding to H3K4me3. Collectively, our work highlights the complexity of the mammalian SCMC and oocyte-to-embryo transition, revealing an intricate regulatory mechanism that facilitates the smooth progression of this process. Here, the authors identify SPIN1 as a member of the subcortical maternal complex (SCMC). The SCMC component FILIA protects H3K4me3 reprogramming and zygotic genome initiation by preventing nuclear entry of SPIN1.

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皮层下母体复合物通过阻止SPIN1的核进入来保护小鼠卵细胞向胚胎的转变
细胞质调节因子如何控制哺乳动物卵母细胞和早期胚胎的核事件仍然是一个谜。我们之前发现了一种皮层下母体复合物(SCMC),它专门存在于哺乳动物卵母细胞和早期胚胎的细胞质中,但也参与核事件。然而,细胞质SCMC如何在核过程中发挥其作用仍然未知。在这项研究中,我们揭示了SPIN1,一个组蛋白甲基化解读器,作为SCMC的新成员。SCMC组分FILIA通过直接相互作用紧密调控SPIN1的表达和胞质定位。当SCMC基因突变导致FILIA表达减少时,SPIN1的表达显著减少,但剩余的SPIN1易位到细胞核中。SPIN1在细胞核中的异常存在会损害H3K4me3重编程、合子基因组激活和胚胎的生理发育。抑制SPIN1和H3K4me3之间的相互作用部分地挽救了FILIA-null胚胎的异常表型。从机制上讲,SPIN1通过与KDM5B竞争与H3K4me3的结合,部分扰乱了去甲基化过程。总的来说,我们的工作强调了哺乳动物SCMC和卵母细胞向胚胎转变的复杂性,揭示了促进这一过程顺利进行的复杂调控机制。
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来源期刊
Nature Structural & Molecular Biology
Nature Structural & Molecular Biology BIOCHEMISTRY & MOLECULAR BIOLOGY-BIOPHYSICS
CiteScore
22.00
自引率
1.80%
发文量
160
审稿时长
3-8 weeks
期刊介绍: Nature Structural & Molecular Biology is a comprehensive platform that combines structural and molecular research. Our journal focuses on exploring the functional and mechanistic aspects of biological processes, emphasizing how molecular components collaborate to achieve a particular function. While structural data can shed light on these insights, our publication does not require them as a prerequisite.
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