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Rad9a is involved in chromatin decondensation and post-zygotic embryo development in mice

机译:Rad9a参与染色质裂缝和小鼠后的后肾上腺胚胎发育

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摘要

Zygotic chromatin undergoes extensive reprogramming immediately after fertilization. It is generally accepted that maternal factors control this process. However, little is known about the underlying mechanisms. Here we report that maternal RAD9A, a key protein in DNA damage response pathway, is involved in post-zygotic embryo development, via a mouse model with conditional depletion of Rad9a alleles in oocytes of primordial follicles. Post-zygotic losses originate from delayed zygotic chromatin decondensation after depletion of maternal RAD9A. Pronucleus formation and DNA replication of most mutant zygotes are therefore deferred, which subsequently trigger the G2/M checkpoint and arrest development of most mutant zygotes. Delayed zygotic chromatin decondensation could also lead to increased reabsorption of post-implantation mutant embryos. In addition, our data indicate that delayed zygotic chromatin decondensation may be attributed to deferred epigenetic modification of histone in paternal chromatin after fertilization, as fertilization and resumption of secondary meiosis in mutant oocytes were both normal. More interestingly, most mutant oocytes could not support development beyond one-cell stage after parthenogenetic activation. Therefore, RAD9A may also play an important role in maternal chromatin reprogramming. In summary, our data reveal an important role of RAD9A in zygotic chromatin reprogramming and female fertility.
机译:施肥后,Zygotic Chromatin经历了大量的重编程。普遍认为母体因素控制此过程。但是,关于潜在机制知之甚少。在这里,我们通过小鼠模型报告,DNA损伤响应途径中的关键蛋白是DNA损伤响应途径中的关键蛋白质,其涉及基于原始卵泡的卵母细胞的Rad9a等位基因的条件枯萎病。后泌虫后损失来自母体Rad9a耗尽后的延迟的染色染色质解。因此,延迟了大多数突变性Zygotes的原版和DNA复制,随后触发G2 / M检查点并捕获大多数突变性Zygotes的捕获。延迟的染色质染色质裂解也可能导致植入后突变体胚的吸收增加。此外,我们的数据表明,延迟的Zygotic染色质解囊可归因于施肥后患者染色质中组蛋白的延迟表观遗传修饰,因为突变卵母细胞中的二级减数分裂的施肥和恢复都是正常的。更有趣的是,大多数突变的卵母细胞不能在单性激活后的单细胞阶段超出一个细胞阶段的发展。因此,Rad9a也可能在母体染色质重编程中发挥重要作用。总之,我们的数据揭示了Rad9a在Zygotic染色质重编程和女性生育中的重要作用。

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  • 来源
    《Cell death and differentiation》 |2019年第5期|共12页
  • 作者单位

    Chinese Acad Sci State Key Lab Stem Cell &

    Reprod Biol Inst Zool Beijing Peoples R China;

    Chinese Acad Sci State Key Lab Stem Cell &

    Reprod Biol Inst Zool Beijing Peoples R China;

    Chinese Acad Sci State Key Lab Stem Cell &

    Reprod Biol Inst Zool Beijing Peoples R China;

    Chinese Acad Sci State Key Lab Stem Cell &

    Reprod Biol Inst Zool Beijing Peoples R China;

    Chinese Acad Sci State Key Lab Stem Cell &

    Reprod Biol Inst Zool Beijing Peoples R China;

    Chinese Acad Sci State Key Lab Stem Cell &

    Reprod Biol Inst Zool Beijing Peoples R China;

    Chinese Acad Sci State Key Lab Stem Cell &

    Reprod Biol Inst Zool Beijing Peoples R China;

    Chinese Acad Sci State Key Lab Stem Cell &

    Reprod Biol Inst Zool Beijing Peoples R China;

    Chinese Acad Sci State Key Lab Stem Cell &

    Reprod Biol Inst Zool Beijing Peoples R China;

    Chinese Acad Sci State Key Lab Stem Cell &

    Reprod Biol Inst Zool Beijing Peoples R China;

    Chinese Acad Sci State Key Lab Stem Cell &

    Reprod Biol Inst Zool Beijing Peoples R China;

    Chinese Acad Sci State Key Lab Stem Cell &

    Reprod Biol Inst Zool Beijing Peoples R China;

    Chinese Acad Sci State Key Lab Stem Cell &

    Reprod Biol Inst Zool Beijing Peoples R China;

    Chinese Acad Sci State Key Lab Biomembrane Inst Zool Beijing Peoples R China;

    Chinese Acad Sci State Key Lab Stem Cell &

    Reprod Biol Inst Zool Beijing Peoples R China;

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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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