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Genome-wide high-throughput chromosome conformation capture analysis reveals hierarchical chromatin interactions during early somatic embryogenesis

染色质 生物 重编程 体细胞 嘉雅宠物 染色体构象捕获 细胞生物学 转录因子 组蛋白 表观遗传学 遗传学 基因组 染色质重塑 基因 增强子
作者
Yan Chen,Dejian Xie,Xiangwei Ma,Xiaodong Xue,Mengyu Liu,Xuechen Xiao,Chunwang Lai,Xiaoping Xu,Xiaohui Chen,Yukun Chen,Zihao Zhang,Xu XuHan,Zhongxiong Lai,Yuling Lin
出处
期刊:Plant Physiology [Oxford University Press]
卷期号:193 (1): 555-577 被引量:12
标识
DOI:10.1093/plphys/kiad348
摘要

Somatic embryogenesis (SE), like zygotic embryo development, is a progressive process. Early SE is the beginning of a switch from a somatic to an embryogenic state and is an important stage for initiating chromatin reprogramming of SE. Previous studies suggest that changes in chromatin accessibility occur during early SE, although information on the 3D structure of chromatin is not yet available. Here, we present a chromosome-level genome assembly of longan (Dimocarpus longan) using PacBio combined with high-through chromosome conformation capture scaffolding, which resulted in a 446 Mb genome assembly anchored onto 15 scaffolds. During early SE, chromatin was concentrated and then decondensed, and a large number of long terminal repeat retrotransposons (LTR-RTs) were enriched in the local chromatin interaction region, suggesting LTR-RTs were involved in chromatin reorganization. Early SE was accompanied by the transformation from A to B compartments, and the interactions between B compartments were enhanced. Results from chromatin accessibility, monomethylation of histone H3 at lysine 4 (H3K4me1) modification, and transcription analyses further revealed a gene regulatory network for cell wall thickening during SE. Particularly, we found that the H3K4me1 differential peak binding motif showed abnormal activation of ethylene response factor transcription factors and participation in SE. The chromosome-level genomic and multiomics analyses revealed the 3D conformation of chromatin during early SE, providing insight into the molecular mechanisms underlying cell wall thickening and the potential regulatory networks of TFs during early SE in D. longan. These results provide additional clues for revealing the molecular mechanisms of plant SE.
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