原肠化
内胚层
增强子
胚胎干细胞
细胞生物学
胚状体
细胞分化
外胚层
干细胞
转录因子
胚胎发生
生物
胚胎
诱导多能干细胞
遗传学
基因
作者
Guojia Xie,Ji‐Eun Lee,Anna D. Senft,Young-Kwon Park,Shreeta Chakraborty,Joyce J. Thompson,Chengyu Liu,Todd S. Macfarlan,Pedro P. Rocha,Weiqun Peng,Kai Ge
标识
DOI:10.1101/2020.09.14.296558
摘要
Abstract H3K4me1 methyltransferases MLL3 (KMT2C) and MLL4 (KMT2D) are critical for enhancer activation, cell differentiation and development. However, roles of MLL3/4 enzymatic activities and MLL3/4-mediated enhancer H3K4me1 in these processes remain unclear. Here, we report that constitutive elimination of both MLL3 and MLL4 enzymatic activities leads to gastrulation failure and early embryonic lethality in mice. However, selective elimination of MLL3/4 enzymatic activities in embryonic, but not extraembryonic, lineages leaves gastrulation largely intact. Consistently, embryonic stem cells (ESCs) lacking MLL3/4 enzymatic activities can differentiate towards the three embryonic germ layers but show aberrant differentiation to extraembryonic endoderm and trophectoderm. The failure in extraembryonic endoderm differentiation can be attributed to markedly reduced enhancer-binding of the lineage-determining transcription factor GATA6. Furthermore, we show that MLL3/4-catalyzed H3K4me1 is largely dispensable for enhancer activation during ESC differentiation. Together, our findings suggest a lineage-selective, but enhancer activation-independent, role of MLL3/4 methyltransferase activities in early embryonic development and embryonic stem cell differentiation.
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