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Dissection of DNA double-strand break repair using novel single-molecule forceps

机译:使用新型单分子钳解剖DNA双链断裂修复

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摘要

Repairing DNA double-strand breaks (DSBs) by non-homologous end-joining (NHEJ) requires multiple proteins to recognize and bind DNA ends, process them for compatibility, and ligate them together. We constructed novel DNA substrates for single-molecule nano-manipulation allowing us to mechanically detect, probe, and rupture in real-time DSB synapsis by specific human NHEJ components. DNA-PKcs and Ku allow DNA end synapsis on the 100 ms timescale, and addition of PAXX extends this lifetime to ~2s. Further addition of XRCC4, XLF and Ligase IV resulted in minute-scale synapsis and led to robust repair of both strands of the nanomanipulated DNA. The energetic contribution of the different components to synaptic stability is typically on the scale of a few kCal/mol. Our results define assembly rules for NHEJ machinery and unveil the importance of weak interactions, rapidly ruptured even at sub-picoNewton forces, in regulating this multicomponent chemomechanical system for genome integrity.
机译:通过非同源末端连接(NHEJ)修复DNA双链断裂(DSB),需要多种蛋白质来识别和结合DNA末端,对其进行加工以实现兼容性并将它们连接在一起。我们为单分子纳米操作构建了新颖的DNA底物,使我们能够通过特定的人类NHEJ组件以机械方式检测,探测和实时DSB突触破裂。 DNA-PKcs和Ku可以在100毫秒的时间尺度上实现DNA末端突触,而添加PAXX可以将这一寿命延长至〜2s。进一步添加XRCC4,XLF和Ligase IV可产生微小的突触,并导致纳米操纵DNA的两条链的牢固修复。不同成分对突触稳定性的能量贡献通常在几千卡/摩尔的水平上。我们的结果确定了NHEJ机械的组装规则,并揭示了弱相互作用的重要性,即使在亚皮顿牛顿力作用下也会迅速破裂,这对于调节这种多组分化学机械系统的基因组完整性是至关重要的。

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