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单细胞分辨率下的小鼠原肠胚形成的多组学分析。

Multi-omics profiling of mouse gastrulation at single-cell resolution.

机构信息

European Bioinformatics Institute (EMBL-EBI), Cambridge, UK.

Epigenetics Programme, Babraham Institute, Cambridge, UK.

出版信息

Nature. 2019 Dec;576(7787):487-491. doi: 10.1038/s41586-019-1825-8. Epub 2019 Dec 11.

Abstract

Formation of the three primary germ layers during gastrulation is an essential step in the establishment of the vertebrate body plan and is associated with major transcriptional changes. Global epigenetic reprogramming accompanies these changes, but the role of the epigenome in regulating early cell-fate choice remains unresolved, and the coordination between different molecular layers is unclear. Here we describe a single-cell multi-omics map of chromatin accessibility, DNA methylation and RNA expression during the onset of gastrulation in mouse embryos. The initial exit from pluripotency coincides with the establishment of a global repressive epigenetic landscape, followed by the emergence of lineage-specific epigenetic patterns during gastrulation. Notably, cells committed to mesoderm and endoderm undergo widespread coordinated epigenetic rearrangements at enhancer marks, driven by ten-eleven translocation (TET)-mediated demethylation and a concomitant increase of accessibility. By contrast, the methylation and accessibility landscape of ectodermal cells is already established in the early epiblast. Hence, regulatory elements associated with each germ layer are either epigenetically primed or remodelled before cell-fate decisions, providing the molecular framework for a hierarchical emergence of the primary germ layers.

摘要

在原肠胚形成过程中,三个初级胚层的形成是建立脊椎动物体轴的一个必要步骤,伴随着主要的转录变化。全局表观遗传重编程伴随着这些变化,但表观基因组在调节早期细胞命运选择中的作用仍未解决,不同分子层之间的协调也不清楚。在这里,我们描述了在小鼠胚胎原肠胚形成过程中染色质可及性、DNA 甲基化和 RNA 表达的单细胞多组学图谱。多能性的初始退出与全局抑制性表观遗传景观的建立相一致,随后在原肠胚形成过程中出现谱系特异性的表观遗传模式。值得注意的是,中胚层和内胚层细胞经历广泛的增强子标记处的协调表观遗传重排,由十号染色体开放阅读框 2(TET)介导的去甲基化和随之而来的可及性增加驱动。相比之下,外胚层细胞的甲基化和可及性景观在早期上胚层中已经建立。因此,与每个胚层相关的调节元件要么在细胞命运决定之前被预先设定好表观遗传状态,要么被重塑,为初级胚层的分层出现提供了分子框架。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e149/6924995/f88578024357/EMS84690-f005.jpg

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