School of Pharmaceutical Sciences, State Key Laboratory of Cellular Stress Biology, Xiamen University, Xiamen, Fujian 361005, China.
Shanghai Key Laboratory of Signaling and Disease Research, School of Life Sciences and Technology, Tongji University, Shanghai 200092, China.
Development. 2022 Aug 1;149(15). doi: 10.1242/dev.200316. Epub 2022 Aug 4.
How maternal Ezh1 and Ezh2 function in H3K27 methylation in vivo in pre-implantation embryos and during embryonic development is not clear. Here, we have deleted Ezh1 and Ezh2 alone or simultaneously from mouse oocytes. H3K27me3 was absent in oocytes without Ezh2 alone, while both H3K27me2 and H3K27me3 were absent in Ezh1/Ezh2 (Ezh1/2) double knockout (KO) oocytes. The effects of Ezh1/2 maternal KO were inherited in zygotes and early embryos, in which restoration of H3K27me3 and H3K27me2 was delayed by the loss of Ezh2 alone or of both Ezh1 and Ezh2. However, the ablation of both Ezh1 and Ezh2, but not Ezh1 or Ezh2 alone, led to significantly decreased litter size due to growth retardation post-implantation. Maternal Ezh1/2 deficiency caused compromised H3K27me3 and pluripotent epiblast cells in late blastocysts, followed by defective embryonic development. By using RNA-seq, we examined crucial developmental genes in maternal Ezh1/2 KO embryos and identified 80 putatively imprinted genes. Maternal Ezh1/2-H3K27 methylation is inherited in offspring embryos and has a critical effect on fetal and placental development. Thus, this work sheds light on maternal epigenetic modifications during embryonic development.
在体内,母源 Ezh1 和 Ezh2 如何在胚胎植入前和胚胎发育过程中发挥作用,H3K27 甲基化作用尚不明确。在这里,我们单独或同时敲除了小鼠卵母细胞中的 Ezh1 和 Ezh2。单独缺乏 Ezh2 时卵母细胞中不存在 H3K27me3,而 Ezh1/Ezh2(Ezh1/2)双敲除(KO)卵母细胞中既不存在 H3K27me2,也不存在 H3K27me3。Ezh1/2 母源 KO 的影响在合子和早期胚胎中遗传,Ezh2 单独缺失或 Ezh1 和 Ezh2 同时缺失会延迟 H3K27me3 和 H3K27me2 的恢复。然而,单独缺失 Ezh1 或 Ezh2 不会导致两个基因同时缺失那样导致后代的窝仔数显著减少,这是由于胚胎植入后生长迟缓所致。母源 Ezh1/2 缺失导致晚期囊胚中 H3K27me3 和多能胚外细胞受损,随后胚胎发育异常。通过 RNA-seq,我们在母源 Ezh1/2 KO 胚胎中检查了关键的发育基因,并鉴定了 80 个可能的印记基因。母源 Ezh1/2-H3K27 甲基化在后代胚胎中遗传,并对胎儿和胎盘发育有重要影响。因此,这项工作为胚胎发育过程中的母源表观遗传修饰提供了新的见解。