Su Wen-Pin, Hsu Sen-Huei, Chia Li-Chiao, Lin Jui-Yang, Chang Song-Bin, Jiang Zong-da, Lin Yi-Ju, Shih Min-Yu, Chen Yi-Cheng, Chang Mau-Sun, Yang Wen-Bin, Hung Jan-Jong, Hung Po-Cheng, Wu Wei-Sheng, Myung Kyungjae, Liaw Hungjiun
Institute of Clinical Medicine, College of Medicine, National Cheng Kung University, Tainan 701, Taiwan Department of Internal Medicine, National Cheng Kung University Hospital, College of Medicine, National Cheng Kung University, Tainan 701, Taiwan.
Department of Life Sciences, National Cheng Kung University, Tainan 701, Taiwan.
Genetics. 2016 Jan;202(1):77-92. doi: 10.1534/genetics.115.184432. Epub 2015 Nov 12.
DNA double-strand breaks (DSBs) represent one of the most threatening lesions to the integrity of genomes. In yeast Saccharomyces cerevisiae, NuA4, a histone acetylation complex, is recruited to DSBs, wherein it acetylates histones H2A and H4, presumably relaxing the chromatin and allowing access to repair proteins. Two subunits of NuA4, Yng2 and Eaf3, can interact in vitro with methylated H3K4 and H3K36 via their plant homeodomain (PHD) and chromodomain. However, the roles of the two domains and how they interact in a combinatorial fashion are still poorly characterized. In this study, we generated mutations in the PHD and chromodomain that disrupt their interaction with methylated H3K4 and H3K36. We demonstrate that the combined mutations in both the PHD and chromodomain impair the NuA4 recruitment, reduce H4K12 acetylation at the DSB site, and confer sensitivity to bleomycin that induces DSBs. In addition, the double mutant cells are defective in DSB repair as judged by Southern blot and exhibit prolonged activation of phospho-S129 of H2A. Cells harboring the H3K4R, H3K4R, K36R, or set1Δ set2Δ mutant that disrupts H3K4 and H3K36 methylation also show very similar phenotypes to the PHD and chromodomain double mutant. Our results suggest that multivalent interactions between the PHD, chromodomain, and methylated H3K4 and H3K36 act in a combinatorial manner to recruit NuA4 and regulate the NuA4 activity at the DSB site.
DNA双链断裂(DSBs)是对基因组完整性最具威胁的损伤之一。在酿酒酵母中,组蛋白乙酰化复合物NuA4被招募到DSBs处,在那里它使组蛋白H2A和H4乙酰化,推测这会使染色质松弛并允许修复蛋白进入。NuA4的两个亚基Yng2和Eaf3可以在体外通过其植物同源结构域(PHD)和染色质结构域与甲基化的H3K4和H3K36相互作用。然而,这两个结构域的作用以及它们如何以组合方式相互作用仍未得到很好的表征。在本研究中,我们在PHD和染色质结构域中产生了突变,破坏了它们与甲基化的H3K4和H3K36的相互作用。我们证明,PHD和染色质结构域中的联合突变会损害NuA4的招募,降低DSB位点处的H4K12乙酰化,并赋予对诱导DSBs的博来霉素的敏感性。此外,通过Southern印迹判断,双突变细胞在DSB修复方面存在缺陷,并表现出H2A磷酸化S129的延长激活。携带破坏H3K4和H3K36甲基化的H3K4R、H3K4R、K36R或set1Δ set2Δ突变体的细胞也表现出与PHD和染色质结构域双突变体非常相似的表型。我们的结果表明,PHD、染色质结构域与甲基化的H3K4和H3K36之间的多价相互作用以组合方式发挥作用,以招募NuA4并调节DSB位点处的NuA4活性。