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表观遗传重编程使原始生殖细胞向生殖细胞转变成为可能。

Epigenetic reprogramming enables the transition from primordial germ cell to gonocyte.

机构信息

MRC London Institute of Medical Sciences (LMS), Du Cane Road, London W12 0NN, UK.

Institute of Clinical Sciences (ICS), Faculty of Medicine, Imperial College London, Du Cane Road, London W12 0NN, UK.

出版信息

Nature. 2018 Mar 15;555(7696):392-396. doi: 10.1038/nature25964. Epub 2018 Mar 7.

Abstract

Gametes are highly specialized cells that can give rise to the next generation through their ability to generate a totipotent zygote. In mice, germ cells are first specified in the developing embryo around embryonic day (E) 6.25 as primordial germ cells (PGCs). Following subsequent migration into the developing gonad, PGCs undergo a wave of extensive epigenetic reprogramming around E10.5-E11.5, including genome-wide loss of 5-methylcytosine. The underlying molecular mechanisms of this process have remained unclear, leading to our inability to recapitulate this step of germline development in vitro. Here we show, using an integrative approach, that this complex reprogramming process involves coordinated interplay among promoter sequence characteristics, DNA (de)methylation, the polycomb (PRC1) complex and both DNA demethylation-dependent and -independent functions of TET1 to enable the activation of a critical set of germline reprogramming-responsive genes involved in gamete generation and meiosis. Our results also reveal an unexpected role for TET1 in maintaining but not driving DNA demethylation in gonadal PGCs. Collectively, our work uncovers a fundamental biological role for gonadal germline reprogramming and identifies the epigenetic principles of the PGC-to-gonocyte transition that will help to guide attempts to recapitulate complete gametogenesis in vitro.

摘要

配子是高度特化的细胞,能够通过生成全能性合子来产生下一代。在小鼠中,生殖细胞最早在胚胎发育第 6.25 天(E)作为原始生殖细胞(PGCs)被指定。随后,PGCs 迁移到正在发育的性腺中,在 E10.5-E11.5 期间经历了一波广泛的表观遗传重编程,包括全基因组 5-甲基胞嘧啶的丢失。这一过程的潜在分子机制仍不清楚,导致我们无法在体外重现生殖系发育的这一步骤。在这里,我们使用综合方法表明,这个复杂的重编程过程涉及启动子序列特征、DNA(去)甲基化、多梳(PRC1)复合物以及 TET1 的 DNA 去甲基化依赖性和非依赖性功能之间的协调相互作用,以激活一组关键的生殖系重编程反应基因,这些基因参与配子生成和减数分裂。我们的结果还揭示了 TET1 在维持但不驱动性腺 PGCs 中 DNA 去甲基化方面的意外作用。总的来说,我们的工作揭示了性腺生殖系重编程的基本生物学作用,并确定了 PGC 到性腺母细胞过渡的表观遗传原则,这将有助于指导在体外重现完整配子发生的尝试。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9879/5856367/26441b3b2671/emss-76055-f005.jpg

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