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Chromatin analysis in human early development reveals epigenetic transition during ZGA

染色质 生物 母子转换 重编程 嘉雅宠物 H3K4me3 表观遗传学 染色质重塑 表观遗传学 组蛋白 先锋因素 组蛋白修饰酶 芯片排序 细胞生物学 DNA甲基化 遗传学 核小体 组蛋白密码 基因 胚胎 发起人 胚胎发生 合子 DNA 基因表达
作者
Jingyi Wu,Jiawei Xu,Bofeng Liu,Guidong Yao,Peizhe Wang,Zili Lin,Bo Huang,Xuepeng Wang,Tong Li,Senlin Shi,Nan Zhang,Fuyu Duan,Ming Jia,Xiangyang Zhang,Wenbin Niu,Wenyan Song,Haixia Jin,Yihong Guo,Shanjun Dai,Linli Hu,Lanlan Fang,Q. Wang,Yuanyuan Li,Wei Li,Jie Na,Wei Xie,Yingpu Sun
出处
期刊:Nature [Springer Nature]
卷期号:557 (7704): 256-260 被引量:291
标识
DOI:10.1038/s41586-018-0080-8
摘要

Upon fertilization, drastic chromatin reorganization occurs during preimplantation development 1 . However, the global chromatin landscape and its molecular dynamics in this period remain largely unexplored in humans. Here we investigate chromatin states in human preimplantation development using an improved assay for transposase-accessible chromatin with high-throughput sequencing (ATAC-seq) 2 . We find widespread accessible chromatin regions in early human embryos that overlap extensively with putative cis-regulatory sequences and transposable elements. Integrative analyses show both conservation and divergence in regulatory circuitry between human and mouse early development, and between human pluripotency in vivo and human embryonic stem cells. In addition, we find widespread open chromatin regions before zygotic genome activation (ZGA). The accessible chromatin loci are readily found at CpG-rich promoters. Unexpectedly, many others reside in distal regions that overlap with DNA hypomethylated domains in human oocytes and are enriched for transcription factor-binding sites. A large portion of these regions then become inaccessible after ZGA in a transcription-dependent manner. Notably, such extensive chromatin reorganization during ZGA is conserved in mice and correlates with the reprogramming of the non-canonical histone mark H3K4me3, which is uniquely linked to genome silencing3-5. Taken together, these data not only reveal a conserved principle that underlies the chromatin transition during mammalian ZGA, but also help to advance our understanding of epigenetic reprogramming during human early development and in vitro fertilization.
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