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首页> 外文期刊>Developmental cell >RSK-MASTL Pathway Delays Meiotic Exit in Mouse Zygotes to Ensure Paternal Chromosome Stability
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RSK-MASTL Pathway Delays Meiotic Exit in Mouse Zygotes to Ensure Paternal Chromosome Stability

机译:RSK-Mastl途径延迟小鼠Zygotes中的减数分裂出口,以确保父母染色体稳定性

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摘要

During vertebrate fertilization, sperm chromatin remodeling occurs concomitantly with maternal chromosome segregation at anaphase II, leading to simultaneous formation of two pronuclei. In mammals, these processes take much longer than in other vertebrates. Here, we explore the molecular basis and physiological importance of this mammalian-specific temporal regulation using mouse oocytes. We demonstrate the involvement of protein phos-phatase in temporal regulation. Early onset of pronuclear formation causes paternal-biased abnormalities in pronuclear morphology and chromosome segregation at the first mitosis. After oocyte activation, CDK1-MASTL-ENSA, a protein phosphatase 2A-suppressive pathway, remains active despite the absence of cyclin B and contributes to delayed pronuclear formation. Sustained activation of MASTL involves ribosomal S6 kinase (RSK)-mediated phos-phorylation of Thr297, which is conserved only among mammalian MASTLs. Our findings reveal the role of RSK in mouse oocytes, showing that the RSK-MASTL pathway allows mammalian-specific prolonged meiotic exit and ensures the faithful conversion from sperm to paternal pronuclei.
机译:在脊椎动物施肥期间,精子染色质重塑在母体II时伴随着母体染色体隔离,导致同时形成两种前核。在哺乳动物中,这些过程比其他脊椎动物更长。在这里,我们使用小鼠卵母细胞探讨这种哺乳动物特异性时间调节的分子基础和生理重要性。我们证明了蛋白质phos-phat序列在时间调节中的参与。经核形成的早期发作会导致父偏见的异常在第一次有丝分裂处发生核形态和染色体隔离。在卵母细胞活化后,尽管没有细胞周期蛋白B,CDK1-Mastl-EnaA,蛋白质磷酸酶2A抑制途径保持活性,并且有助于延迟强核形成。雌马的持续活化涉及核糖体S6激酶(RSK)介导的PHOS-PHORE-PHORYLATION,仅在哺乳动物乳房中保守。我们的研究结果揭示了RSK在小鼠卵母细胞中的作用,表明RSK-Mastl途径允许哺乳动物特异性的延长的减数分裂,并确保从精子到父母的preclece忠实转化。

著录项

  • 来源
    《Developmental cell》 |2018年第3期|共14页
  • 作者单位

    Univ Tokyo Grad Sch Arts &

    Sci Dept Life Sci Tokyo 1538902 Japan;

    Univ Tokyo Grad Sch Arts &

    Sci Dept Life Sci Tokyo 1538902 Japan;

    Univ Tokyo Grad Sch Arts &

    Sci Dept Life Sci Tokyo 1538902 Japan;

    Univ Tokyo Grad Sch Arts &

    Sci Dept Life Sci Tokyo 1538902 Japan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 细胞生物学;
  • 关键词

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