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Conditional inactivation of Miwi2 reveals that MIWI2 is only essential for prospermatogonial development in mice

机译:Miwi2的条件失活表明,MIWI2仅对小鼠的前列腺素发育至关重要

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The PIWI-piRNA pathway serves as a critical defense mechanism through which the genome of the male germline is protected from invasion by transposable elements (TEs). MIWI2/PIWIL4, a member of the murine PIWI subclade of the Argonaute family, has been shown to be expressed in primordial germ cells (PGCs) and prospermatogonia in fetal and prepubertal testes. Global inactivation of Miwi2 leads to male sterility due to an early meiotic arrest, which correlates with retrotransposon desuppression. However, it remains unclear whether MIWI2 functions beyond the PGC stage and whether MIWI2 has a role beyond TE suppression during male germ line development. Through conditional inactivation of Miwi2, we demonstrate herein that MIWI2 function is restricted to a narrow time window during male PGC reprograming and that Miwi2 is dispensable for postnatal male germline development and testicular function in mice. Moreover, persistent activation of LINE1 and IAP retrotransposons caused by Miwi2 inactivation is compatible with mitotic cell cycle progression of spermatogonia during the first wave of spermatogenesis, but can cause zygotene to pachytene arrest in early meiosis due to multiple defects including enhanced DNA double-strand breaks, aberrant histone modifications and altered mRNA transcriptome. Our data not only validate those from global Miwi2 KO studies, but also suggest that MIWI2 and MIWI2-associated piRNAs have functions beyond TE suppression.
机译:PIWI-piRNA途径是一种重要的防御机制,通过该机制可以保护雄性种系的基因组免受转座因子(TEs)的侵袭。 MIWI2 / PIWIL4是Argonaute家族鼠类PIWI子小节的成员,已显示在胎儿和青春期前睾丸的原始生殖细胞(PGC)和早熟症中表达。由于早期减数分裂停滞,Miwi2的整体失活导致雄性不育,这与逆转座子的抑制有关。但是,尚不清楚MIWI2是否在PGC阶段之后发挥作用,以及MIWI2在雄性种系发育过程中是否具有超出TE抑制作用。通过Miwi2的条件灭活,我们在本文中证明MIWI2功能在雄性PGC重编程过程中被限制在一个狭窄的时间范围内,并且Miwi2对于小鼠的雄性生殖系发育和睾丸功能是必不可少的。此外,由Miwi2失活引起的LINE1和IAP逆转座子的持续激活与精子发生的第一波过程中精原细胞的有丝分裂细胞周期进程是相容的,但由于多重缺陷,包括增强的DNA双链断裂,可导致合子烯在粗减数分裂中停滞,异常的组蛋白修饰和改变的mRNA转录组。我们的数据不仅验证了来自全球Miwi2 KO研究的数据,而且表明MIWI2和MIWI2相关的piRNA具有超出TE抑制作用的功能。

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