后转座子
生物
基因组不稳定性
遗传学
异染色质
DNA复制
表观遗传学
细胞生物学
基因沉默
组蛋白
分子生物学
DNA
染色质
突变体
基因
DNA损伤
转座因子
作者
Zhiming Li,Shoufu Duan,Xu Hua,Xiaowei Xu,Yinglu Li,Demis Menolfi,Hui Zhou,Chao Lü,Shan Zha,Stephen P. Goff,Zhiguo Zhang
出处
期刊:Nature
[Springer Nature]
日期:2023-11-08
卷期号:623 (7987): 643-651
被引量:14
标识
DOI:10.1038/s41586-023-06711-3
摘要
In eukaryotes, repetitive DNA sequences are transcriptionally silenced through histone H3 lysine 9 trimethylation (H3K9me3). Loss of silencing of the repeat elements leads to genome instability and human diseases, including cancer and ageing1–3. Although the role of H3K9me3 in the establishment and maintenance of heterochromatin silencing has been extensively studied4–6, the pattern and mechanism that underlie the partitioning of parental H3K9me3 at replicating DNA strands are unknown. Here we report that H3K9me3 is preferentially transferred onto the leading strands of replication forks, which occurs predominantly at long interspersed nuclear element (LINE) retrotransposons (also known as LINE-1s or L1s) that are theoretically transcribed in the head-on direction with replication fork movement. Mechanistically, the human silencing hub (HUSH) complex interacts with the leading-strand DNA polymerase Pol ε and contributes to the asymmetric segregation of H3K9me3. Cells deficient in Pol ε subunits (POLE3 and POLE4) or the HUSH complex (MPP8 and TASOR) show compromised H3K9me3 asymmetry and increased LINE expression. Similar results were obtained in cells expressing a MPP8 mutant defective in H3K9me3 binding and in TASOR mutants with reduced interactions with Pol ε. These results reveal an unexpected mechanism whereby the HUSH complex functions with Pol ε to promote asymmetric H3K9me3 distribution at head-on LINEs to suppress their expression in S phase. The epigenetic modification H3K9me3 is asymmetrically partitioned at long interspersed nuclear element retrotransposons for their silencing in S phase, a newly discovered mechanism that is mediated by the HUSH complex and the DNA polymerase Pol ε.
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