脱甲基酶
DNA损伤
生物
组蛋白
DNA修复
染色质
磷酸化
细胞生物学
DNA
组蛋白H3
G2-M DNA损伤检查点
生物化学
分子生物学
细胞
细胞周期
细胞周期检查点
作者
L-L Cao,Wei Fang,Yangge Du,Bing Song,D. Wang,Chen Shen,Xiaopeng Lu,Cao Zhong-Xin,Qiaoyan Yang,Yuxi Gao,Li Wang,Yan Zhao,Haiying Wang,Yang Yang,Wei‐Guo Zhu
出处
期刊:Oncogene
[Springer Nature]
日期:2015-03-30
卷期号:35 (3): 301-313
被引量:68
摘要
The ataxia-telangiectasia mutated (ATM) protein is a key signaling molecule that modulates the DNA damage response. However, the exact mechanism by which ATM regulates DNA damage repair has not yet been elucidated. Here, we report that ATM regulates the DNA damage response by phosphorylating lysine-specific demethylase 2A (KDM2A), a histone demethylase that acts at sites of H3K36 dimethylation. ATM interacts with KDM2A, and their interaction significantly increases in response to DNA double-stranded, but not single-stranded, breaks. ATM specifically phosphorylates KDM2A at threonine 632 (T632) following DNA damage, as demonstrated by a mutagenesis assay and mass spectrometric analysis. Although KDM2A phosphorylation does not alter its own demethylase activity, T632 phosphorylation of KDM2A largely abrogates its chromatin-binding capacity, and H3K36 dimethylation near DNA damage sites is significantly increased. Consequently, enriched H3K36 dimethylation serves as a platform to recruit the MRE11 complex to DNA damage sites by directly interacting with the BRCT2 domain of NBS1, which results in efficient DNA damage repair and enhanced cell survival. Collectively, our study reveals a novel mechanism for ATM in connecting histone modifications with the DNA damage response.
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