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Envisioning the dynamics and flexibility of Mre11-Rad50-Nbs1 complex to decipher its roles in DNA replication and repair

机译:设想Mre11-Rad50-Nbs1复合体的动力学和灵活性以破译其在DNA复制和修复中的作用

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摘要

The Mre11-Rad50-Nbs1 (MRN) complex is a dynamic macromolecular machine that acts in the first steps of DNA double strand break repair, and each of its components has intrinsic dynamics and flexibility properties that are directly linked with their functions. As a result, deciphering the functional structural biology of the MRN complex is driving novel and integrated technologies to define the dynamic structural biology of protein machinery interacting with DNA. Rad50 promotes dramatic long-range allostery through its coiled-coil and zinc-hook domains. Its ATPase activity drives dynamic transitions between monomeric and dimeric forms that can be modulated with mutants modifying the ATPase rate to control end joining versus resection activities. The biological functions of Mre11’s dual endo- and exonuclease activities in repair pathway choice were enigmatic until recently, when they were unveiled by the development of specific nuclease inhibitors. Mre11 dimer flexibility, which may be regulated in cells to control MRN function, suggests new inhibitor design strategies for cancer intervention. Nbs1 has FHA and BRCT domains to bind multiple interaction partners that further regulate MRN. One of them, CtIP, modulates the Mre11 excision activity for homologous recombination repair. Overall, these combined properties suggest novel therapeutic strategies. Furthermore, they collectively help to explain how MRN regulates DNA repair pathway choice with implications for improving the design and analysis of cancer clinical trials that employ DNA damaging agents or target the DNA damage response.
机译:Mre11-Rad50-Nbs1(MRN)复合物是动态大分子机器,在DNA双链断裂修复的第一步中起作用,其每个组件都具有与它们的功能直接相关的内在动力学和柔韧性。结果,对MRN复合物的功能结构生物学的破译正在推动新的集成技术来定义与DNA相互作用的蛋白质机械的动态结构生物学。 Rad50通过其盘绕线圈和锌钩域促进了戏剧性的远距离变构。它的ATPase活性驱动单体和二聚体形式之间的动态转变,可通过修饰ATPase速率的突变体对其进行调节,以控制末端连接与切除的活性。 Mre11的核酸内切酶和核酸外切酶双重活性在修复途径选择中的生物学功能一直是未知的,直到最近,由于特定核酸酶抑制剂的开发,它们才被揭示出来。 Mre11二聚体的柔性,可能在细胞中被调节以控制MRN功能,提示了用于癌症干预的新抑制剂设计策略。 Nbs1具有FHA和BRCT域,以结合多个相互作用伴侣,进一步调节MRN。其中之一CtIP调节Mre11切除活性,用于同源重组修复。总体而言,这些综合特性提示了新颖的治疗策略。此外,他们共同帮助解释了MRN如何调节DNA修复途径的选择,对改善采用DNA损伤剂或靶向DNA损伤反应的癌症临床试验的设计和分析具有启示意义。

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