DNA- pkcs中的非规范溴结构域通过识别红外诱导的H2AX上的乙酰赖氨酸促进DNA损伤反应和辐射抗性。

Chemistry & biology Pub Date : 2015-07-23 Epub Date: 2015-06-25 DOI:10.1016/j.chembiol.2015.05.014
Li Wang, Ling Xie, Srinivas Ramachandran, YuanYu Lee, Zhen Yan, Li Zhou, Krzysztof Krajewski, Feng Liu, Cheng Zhu, David J Chen, Brian D Strahl, Jian Jin, Nikolay V Dokholyan, Xian Chen
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引用次数: 3

摘要

在DNA损伤反应(DDR)过程中,γ - h2ax诱导和相关细胞命运决定的调控机制尚不清楚。在这里,我们发现了DNA-PKcs (DNA-PKcs-BRD)中的bromodomain (BRD)样模块,该模块特异性识别H2AX乙酰赖氨酸5 (K5ac),以顺序诱导γH2AX和同步细胞命运决定(s)。首先,辐射表型,全长H2AX的自上而下质谱分析显示辐射诱导,k5ac依赖性诱导γH2AX。序列-结构建模/对接、定点诱变和生化实验等综合方法表明,通过对接H2AX- K5ac,这种非规范BRD不仅决定了DNA-PKcs靶向H2AX的活性,还决定了辐射耐药肿瘤细胞中DNA-PKcs的过度激活,而Kac拮抗剂JQ1能够与DNA-PKcs-BRD结合,导致肿瘤细胞对辐射重新敏感。本研究阐明了h2ax依赖性DNA-PKcs在电离辐射诱导的差异DDR中的调控机制,并在DNA-PKcs中发现了一个非常规的非催化结构域靶点,用于克服癌症放疗期间的耐药。
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Non-canonical Bromodomain within DNA-PKcs Promotes DNA Damage Response and Radioresistance through Recognizing an IR-Induced Acetyl-Lysine on H2AX.

Regulatory mechanisms underlying γH2AX induction and the associated cell fate decision during DNA damage response (DDR) remain obscure. Here, we discover a bromodomain (BRD)-like module in DNA-PKcs (DNA-PKcs-BRD) that specifically recognizes H2AX acetyl-lysine 5 (K5ac) for sequential induction of γH2AX and concurrent cell fate decision(s). First, top-down mass spectrometry of radiation-phenotypic, full-length H2AX revealed a radiation-inducible, K5ac-dependent induction of γH2AX. Combined approaches of sequence-structure modeling/docking, site-directed mutagenesis, and biochemical experiments illustrated that through docking on H2AX K5ac, this non-canonical BRD determines not only the H2AX-targeting activity of DNA-PKcs but also the over-activation of DNA-PKcs in radioresistant tumor cells, whereas a Kac antagonist, JQ1, was able to bind to DNA-PKcs-BRD, leading to re-sensitization of tumor cells to radiation. This study elucidates the mechanism underlying the H2AX-dependent regulation of DNA-PKcs in ionizing radiation-induced, differential DDR, and derives an unconventional, non-catalytic domain target in DNA-PKs for overcoming resistance during cancer radiotherapy.

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来源期刊
Chemistry & biology
Chemistry & biology 生物-生化与分子生物学
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