生物
细胞生物学
表观遗传学
组蛋白H3
染色质
基因沉默
组蛋白
再生(生物学)
组蛋白甲基转移酶
EZH2型
基因表达调控
下调和上调
神经发生的表观遗传调控
干细胞
转录调控
细胞分化
细胞周期
信号转导
染色质重塑
癌症研究
甲基转移酶
细胞
细胞命运测定
组蛋白H4
组蛋白密码
PRC2
肠粘膜
细胞周期检查点
基因表达
染色质免疫沉淀
肠上皮
调节器
组蛋白H2A
多组蛋白
组蛋白甲基化
表观遗传学
作者
Jingzhou Chen,Xiaoding Shi,X. Zhou,Ju Huang,Linghao Xia,Zhen Hu,Jiaji Gu,Xiaole Sheng,Xiaolong Ge,Fu X,Qian Xiao,Wei Zhou,Yaxin Liu,Zhengping Xu,Jinghao Sheng
标识
DOI:10.1038/s41467-026-68626-7
摘要
Histone modifications play an important role in intestinal homeostasis and regeneration. Here, we identify histone H3 lysine 9 di-methylation (H3K9me2) as an epigenetic regulator of intestinal epithelial repair through mass spectrometry-based screening of histone modifications. We then find that H3K9me2 and its methyltransferase G9a levels are reduced during acute injury and progressively increase during regeneration in both mouse models and human clinical samples. Genetic ablation of G9a in intestinal epithelial cells or pharmacological inhibition of its enzymatic activity substantially impairs intestinal regeneration and reduces survival following irradiation. Mechanistically, integrative genomic analyses reveal that G9a-mediated H3K9me2 suppresses chromatin accessibility and transcriptional activity of cell cycle arrest genes, including Rb1cc1, Rb1, Cdkn1a, and Pten, thereby promoting intestinal stem cell proliferation. Furthermore, we elucidate that IL-4-STAT6 signaling controls G9a expression during regeneration, i.e., IL-4 upregulation leads to STAT6 phosphorylation and subsequent transcriptional activation of G9a. These findings establish the IL-4-STAT6-G9a-H3K9me2 regulatory axis as a critical epigenetic mechanism controlling intestinal regeneration with therapeutic potential for gastrointestinal disorders.
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