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组蛋白 H4 去乙酰化促进 53BP1 的 DNA 损伤信号转导和双链断裂修复。

Histone H4 deacetylation facilitates 53BP1 DNA damage signaling and double-strand break repair.

机构信息

Department of Molecular and Integrative Physiology, University of Illinois, Urbana, IL 61801, USA.

出版信息

J Mol Cell Biol. 2013 Jun;5(3):157-65. doi: 10.1093/jmcb/mjs066. Epub 2013 Jan 16.

DOI:10.1093/jmcb/mjs066
PMID:23329852
Abstract

53BP1 and other DNA damage response (DDR) proteins form foci at double-strand breaks (DSBs) which promote their repair by nonhomologous end joining (NHEJ). Focal accumulation of 53BP1 depends on the specific interaction of its tandem Tudor domain with dimethylated lysine 20 in histone H4 (H4K20me2). How 53BP1 foci dynamics are regulated is unclear since H4K20me2 is highly abundant, established largely in the absence of DNA damage, and uncertainty exists about the roles of candidate H4K20 methyltransferases in 53BP1 foci formation. Here, we show that 53BP1 foci assemble primarily on H4K20me2 established prior to DNA damage by the SETD8 and SUV420 methyltransferases rather than de novo H4K20 methylation mediated by MMSET/WHSC1. Moreover, we define a novel role for H4K16 acetylation in regulating 53BP1 foci dynamics. Concurrent acetylation at H4K16 antagonizes 53BP1 binding to extant H4K20me2 until DSBs elicit transient, localized H4 deacetylation that facilitates 53BP1 foci formation and NHEJ, and is associated with global repression of gene transcription. Our findings demonstrate that rapid induction of H4 deacetylation by DSBs affects multiple aspects of the DDR, and also suggest that antagonism of 53BP1 binding to H4K20me2 by H4K16 hyperacetylation may contribute to the efficacy of histone deacetylase inhibitors for cancer therapy.

摘要

53BP1 和其他 DNA 损伤反应 (DDR) 蛋白在双链断裂 (DSB) 处形成焦点,促进非同源末端连接 (NHEJ) 修复。53BP1 的焦点积累依赖于其串联 Tudor 结构域与组蛋白 H4 中二甲基化赖氨酸 20 (H4K20me2) 的特异性相互作用。由于 H4K20me2 高度丰富,在很大程度上是在没有 DNA 损伤的情况下建立的,并且候选 H4K20 甲基转移酶在 53BP1 焦点形成中的作用存在不确定性,因此 53BP1 焦点动力学如何调节尚不清楚。在这里,我们表明 53BP1 焦点主要组装在 SETD8 和 SUV420 甲基转移酶建立的 H4K20me2 上,而不是由 MMSET/WHSC1 介导的新形成的 H4K20 甲基化。此外,我们定义了 H4K16 乙酰化在调节 53BP1 焦点动力学中的新作用。H4K16 的同时乙酰化拮抗 53BP1 与现存 H4K20me2 的结合,直到 DSB 引发瞬时、局部的 H4 去乙酰化,从而促进 53BP1 焦点形成和 NHEJ,并与基因转录的全局抑制相关。我们的发现表明,DSB 快速诱导 H4 去乙酰化会影响 DDR 的多个方面,并且 H4K16 过度乙酰化拮抗 53BP1 与 H4K20me2 的结合也可能有助于组蛋白去乙酰化酶抑制剂在癌症治疗中的疗效。

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