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在母源到合子的转变过程中构建基因组结构。

Building the genome architecture during the maternal to zygotic transition.

机构信息

Center for Stem Cell Biology and Regenerative Medicine, MOE Key Laboratory of Bioinformatics, Tsinghua University, Beijing 100084, China; Tsinghua-Peking Center for Life Sciences, Beijing 100084, China.

Center for Stem Cell Biology and Regenerative Medicine, MOE Key Laboratory of Bioinformatics, Tsinghua University, Beijing 100084, China; Tsinghua-Peking Center for Life Sciences, Beijing 100084, China.

出版信息

Curr Opin Genet Dev. 2022 Feb;72:91-100. doi: 10.1016/j.gde.2021.11.002. Epub 2021 Dec 9.

Abstract

Proper higher-order chromatin folding can profoundly impact gene expression. In early animal development, chromatin undergoes dramatic reorganization to convert terminally differentiated gametes to early embryos. The recent rapid development of ultra-sensitive chromatin analysis technologies has revealed a drastic reconstruction of chromatin architecture, which includes a surprising relaxation followed by de novo and slow establishment of 3D genome organization in early embryos. Such progress adds another fascinating dimension to epigenetic reprogramming in early development that also features degradation of maternal RNA and activation of the zygotic genome during the maternal to zygotic transition (MZT). Nevertheless, the role of higher-order chromatin architecture in this critical developmental time window is yet to be understood. In this article, we review the latest findings from a variety of species (with a primary focus on mammals) on the establishment of 3D chromatin structure in gametogenesis and early development. These data shed light on how chromatin organization is regulated, and how it coordinates with MZT and other crucial events in early development. Finally, we discuss the crucial questions that remain to be answered in the future.

摘要

适当的高级染色质折叠可以深刻影响基因表达。在早期动物发育过程中,染色质经历剧烈的重组,将终末分化的配子转化为早期胚胎。最近,超灵敏染色质分析技术的快速发展揭示了染色质结构的剧烈重建,包括早期胚胎中 3D 基因组组织的惊人松弛、从头开始和缓慢建立。这种进展为早期发育中的表观遗传重编程增添了另一个迷人的维度,其中还包括母体 RNA 的降解和母体到合子过渡 (MZT) 期间合子基因组的激活。然而,高级染色质结构在这个关键的发育时间窗口中的作用仍有待理解。在本文中,我们综述了来自多种物种(主要集中在哺乳动物)的最新发现,这些发现涉及配子发生和早期发育中 3D 染色质结构的建立。这些数据揭示了染色质组织如何被调控,以及它如何与 MZT 和早期发育中的其他关键事件协调。最后,我们讨论了未来仍需要回答的关键问题。

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