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Characterization of zygotic genome activation-dependent maternal mRNA clearance in mouse

机译:小鼠中的Zygotic基因组激活依赖性母体mRNA间隙的表征

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摘要

An important event of the maternal-to-zygotic transition (MZT) in animal embryos is the elimination of a subset of the maternal transcripts that accumulated during oogenesis. In both invertebrates and vertebrates, a maternally encoded mRNA decay pathway (M-decay) acts before zygotic genome activation (ZGA) while a second pathway, which requires zygotic transcription, subsequently clears additional mRNAs (Z-decay). To date the mechanisms that activate the Z-decay pathway in mammalian early embryos have not been investigated. Here, we identify murine maternal transcripts that are degraded after ZGA and show that inhibition of de novo transcription stabilizes these mRNAs in mouse embryos. We show that YAP1-TEAD4 transcription factor-mediated transcription is essential for Z-decay in mouse embryos and that TEAD4-triggered zygotic expression of terminal uridylyltransferases TUT4 and TUT7 and mRNA 3 '-oligouridylation direct Z-decay. Components of the M-decay pathway, including BTG4 and the CCR4-NOT deadenylase, continue to function in Z-decay but require reinforcement from the zygotic factors for timely removal of maternal mRNAs. A long 3 '-UTR and active translation confer resistance of Z-decay transcripts to M-decay during oocyte meiotic maturation. The Z-decay pathway is required for mouse embryo development beyond the four-cell stage and contributes to the developmental competence of preimplantation embryos.
机译:动物胚胎中母动对血小毒术过渡(MZT)的重要事件是消除在OECOORYES中累积的母体转录物的子集。在无脊椎动物和脊椎动物中,母体编码的mRNA衰变途径(M-Decay)在Zygotic Genome激活(ZGA)之前作用,而需要Zygotic转录的第二个途径随后清除额外的MRNA(Z-腐烂)。迄今为止,尚未研究激活哺乳动物早期胚胎中Z衰变途径的机制。在这里,我们鉴定ZGA后降解的鼠母体转录物,并表明De Novo转录的抑制稳定在小鼠胚胎中的这些mRNA。我们表明,YAP1-Tead4转录因子介导的转录对于小鼠胚胎中的Z衰减是必需的,并且Tead4-触发末端尿素增生酶Tut4和Tut7和mRNA 3' - oliguridylation的直接Z-腐蚀的Z型触发的Zygotic表达。 M-衰变途径的组分,包括BTG4和CCR4-NOT硬化酶,继续在Z衰减中起作用,但需要从益智因子中加强,以及时去除母体MRNA。在卵母细胞生成期间,长3'-UTR和Z-Decay转录物对M衰减的抵抗力。小鼠胚胎发育需要超出四个细胞阶段的Z衰变途径,有助于胚胎胚胎的发育能力。

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  • 来源
    《Nucleic Acids Research》 |2020年第2期|共16页
  • 作者单位

    Zhejiang Univ MOE Key Lab Biosyst Homeostasis &

    Protect Life Sci Inst Hangzhou 310058 Peoples R China;

    Zhejiang Univ MOE Key Lab Biosyst Homeostasis &

    Protect Life Sci Inst Hangzhou 310058 Peoples R China;

    Guangdong Second Prov Gen Hosp Fertil Preservat Lab Reprod Med Ctr Guangzhou 510317 Peoples R China;

    Zhejiang Univ MOE Key Lab Biosyst Homeostasis &

    Protect Life Sci Inst Hangzhou 310058 Peoples R China;

    Zhejiang Univ MOE Key Lab Biosyst Homeostasis &

    Protect Life Sci Inst Hangzhou 310058 Peoples R China;

    Guangdong Second Prov Gen Hosp Fertil Preservat Lab Reprod Med Ctr Guangzhou 510317 Peoples R China;

    Zhejiang Univ MOE Key Lab Biosyst Homeostasis &

    Protect Life Sci Inst Hangzhou 310058 Peoples R China;

    Guangdong Second Prov Gen Hosp Fertil Preservat Lab Reprod Med Ctr Guangzhou 510317 Peoples R China;

    Zhejiang Univ MOE Key Lab Biosyst Homeostasis &

    Protect Life Sci Inst Hangzhou 310058 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;
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