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非同源末端连接的结构与机制。

Structure and mechanism in non-homologous end joining.

机构信息

Department of Molecular Biosciences, Northwestern University, Evanston, IL, USA; Interdisciplinary Biological Sciences Program, Northwestern University, Evanston, USA.

Department of Molecular Biosciences, Northwestern University, Evanston, IL, USA; Interdisciplinary Biological Sciences Program, Northwestern University, Evanston, USA; Chemistry of Life Processes Institute, Northwestern University, Evanston, IL, USA; Robert H. Lurie Comprehensive Cancer Center of Northwestern University, Northwestern University, Chicago, USA.

出版信息

DNA Repair (Amst). 2023 Oct;130:103547. doi: 10.1016/j.dnarep.2023.103547. Epub 2023 Jul 29.

Abstract

DNA double-stranded breaks (DSBs) are a particularly challenging form of DNA damage to repair because the damaged DNA must not only undergo the chemical reactions responsible for returning it to its original state, but, additionally, the two free ends can become physically separated in the nucleus and must be bridged prior to repair. In nonhomologous end joining (NHEJ), one of the major pathways of DSB repair, repair is carried out by a number of repair factors capable of binding to and directly joining DNA ends. It has been unclear how these processes are carried out at a molecular level, owing in part to the lack of structural evidence describing the coordination of the NHEJ factors with each other and a DNA substrate. Advances in cryo-Electron Microscopy (cryo-EM), allowing for the structural characterization of large protein complexes that would be intractable using other techniques, have led to the visualization several key steps of the NHEJ process, which support a model of sequential assembly of repair factors at the DSB, followed by end-bridging mediated by protein-protein complexes and transition to full synapsis. Here we examine the structural evidence for these models, devoting particular attention to recent work identifying a new NHEJ intermediate state and incorporating new NHEJ factors into the general mechanism. We also discuss the evolving understanding of end-bridging mechanisms in NHEJ and DNA-PKcs's role in mediating DSB repair.

摘要

DNA 双链断裂 (DSBs) 是一种特别具有挑战性的 DNA 损伤修复形式,因为受损的 DNA 不仅必须经历负责使其恢复原始状态的化学反应,而且两个游离端在核内还必须物理分离,并且必须在修复之前进行桥接。在非同源末端连接 (NHEJ) 中,DSB 修复的主要途径之一,修复是通过许多能够结合并直接连接 DNA 末端的修复因子来进行的。由于缺乏描述 NHEJ 因子与彼此和 DNA 底物之间协调的结构证据,这些过程如何在分子水平上进行一直不清楚。

低温电子显微镜 (cryo-EM) 的进步,允许对使用其他技术难以处理的大型蛋白质复合物进行结构表征,已经导致可视化了 NHEJ 过程的几个关键步骤,这些步骤支持了在 DSB 处修复因子顺序组装的模型,随后通过蛋白质-蛋白质复合物介导的末端桥接过渡到完全联会。在这里,我们检查这些模型的结构证据,特别关注最近确定新的 NHEJ 中间状态的工作,并将新的 NHEJ 因子纳入一般机制。我们还讨论了 NHEJ 中末端桥接机制的不断发展的理解以及 DNA-PKcs 在介导 DSB 修复中的作用。

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