Center for Reproductive Medicine, Shandong University, Jinan, 250012, Shandong, China.
CAS Key Laboratory of Genome Sciences and Information, Collaborative Innovation Center of Genetics and Development, Beijing Institute of Genomics, China National Center for Bioinformation, and Chinese Academy of Sciences, Beijing, China.
Genome Biol. 2022 Sep 6;23(1):187. doi: 10.1186/s13059-022-02758-z.
The PRDM9-dependent histone methylation H3K4me3 and H3K36me3 function in assuring accurate homologous recombination at recombination hotspots in mammals. Beyond histone methylation, H3 lysine 9 acetylation (H3K9ac) is also greatly enriched at recombination hotspots. Previous work has indicated the potential cross-talk between H3K4me3 and H3K9ac at recombination hotspots, but it is still unknown what molecular mechanisms mediate the cross-talk between the two histone modifications at hotspots or how the cross-talk regulates homologous recombination in meiosis.
Here, we find that the histone methylation reader ZCWPW1 is essential for maintaining H3K9ac by antagonizing HDAC proteins' deacetylation activity and further promotes chromatin openness at recombination hotspots thus preparing the way for homologous recombination during meiotic double-strand break repair. Interestingly, ectopic expression of the germ-cell-specific protein ZCWPW1 in human somatic cells enhances double-strand break repair via homologous recombination.
Taken together, our findings provide new insights into how histone modifications and their associated regulatory proteins collectively regulate meiotic homologous recombination.
PRDM9 依赖性组蛋白甲基化 H3K4me3 和 H3K36me3 可确保哺乳动物重组热点处同源重组的准确性。除了组蛋白甲基化,H3 赖氨酸 9 乙酰化(H3K9ac)在重组热点处也大量富集。先前的工作表明 H3K4me3 和 H3K9ac 在重组热点处存在潜在的相互作用,但尚不清楚两种组蛋白修饰在热点处的相互作用是通过何种分子机制介导的,以及这种相互作用如何调节减数分裂中的同源重组。
在这里,我们发现组蛋白甲基化读取器 ZCWPW1 通过拮抗 HDAC 蛋白的去乙酰化活性对维持 H3K9ac 至关重要,进一步促进重组热点处的染色质开放性,从而为减数分裂双链断裂修复期间的同源重组做好准备。有趣的是,在人体细胞中异位表达生殖细胞特异性蛋白 ZCWPW1 可通过同源重组增强双链断裂修复。
总之,我们的研究结果为组蛋白修饰及其相关调节蛋白如何共同调节减数分裂同源重组提供了新的见解。