Garvin Alexander J, Morris Joanna R
Birmingham Centre for Genome Biology and Institute of Cancer and Genomic Sciences, Medical and Dental School, University of Birmingham, Edgbaston, Birmingham B15 2TT, UK.
Birmingham Centre for Genome Biology and Institute of Cancer and Genomic Sciences, Medical and Dental School, University of Birmingham, Edgbaston, Birmingham B15 2TT, UK
Philos Trans R Soc Lond B Biol Sci. 2017 Oct 5;372(1731). doi: 10.1098/rstb.2016.0281.
The response to a DNA double-stranded break in mammalian cells is a process of sensing and signalling the lesion. It results in halting the cell cycle and local transcription and in the mediation of the DNA repair process itself. The response is launched through a series of post-translational modification signalling events coordinated by phosphorylation and ubiquitination. More recently modifications of proteins by mall biquitin-like difier (SUMO) isoforms have also been found to be key to coordination of the response (Morris 2009 , 886-890 (doi:10.1038/nature08593); Galanty 2009 , 935-939 (doi:10.1038/nature08657)). However our understanding of the role of SUMOylation is slight compared with our growing knowledge of how ubiquitin drives signal amplification and key chromatin interactions. In this review we consider our current knowledge of how SUMO isoforms, SUMO conjugation machinery, SUMO proteases and SUMO-interacting proteins contribute to directing altered chromatin states and to repair-protein kinetics at a double-stranded DNA lesion in mammalian cells. We also consider the gaps in our understanding.This article is part of the themed issue 'Chromatin modifiers and remodellers in DNA repair and signalling'.
哺乳动物细胞对DNA双链断裂的反应是一个感知损伤并发出信号的过程。它会导致细胞周期和局部转录停止,并介导DNA修复过程本身。这种反应是通过一系列由磷酸化和泛素化协调的翻译后修饰信号事件启动的。最近还发现,小泛素样修饰物(SUMO)亚型对蛋白质的修饰也是协调这种反应的关键(莫里斯,2009年,886 - 890页(doi:10.1038/nature08593);加兰蒂,2009年,935 - 939页(doi:10.1038/nature08657))。然而,与我们对泛素如何驱动信号放大和关键染色质相互作用的认识不断增加相比,我们对SUMO化作用的理解还很有限。在这篇综述中,我们探讨了目前所了解的SUMO亚型、SUMO缀合机制、SUMO蛋白酶和SUMO相互作用蛋白如何在哺乳动物细胞双链DNA损伤处引导染色质状态改变以及修复蛋白动力学。我们也思考了我们理解上的差距。本文是主题为“DNA修复和信号传导中的染色质修饰剂和重塑剂”特刊的一部分。