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A new structural framework for integrating replication protein A into DNA processing machinery

机译:将复制蛋白A整合到DNA处理机器中的新结构框架

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摘要

By coupling the protection and organization of single-stranded DNA (ssDNA) with recruitment and alignment of DNA processing factors, replication protein A (RPA) lies at the heart of dynamic multi-protein DNA processing machinery. Nevertheless, how RPA coordinates biochemical functions of its eight domains remains unknown. We examined the structural biochemistry of RPA’s DNA-binding activity, combining small-angle X-ray and neutron scattering with all-atom molecular dynamics simulations to investigate the architecture of RPA’s DNA-binding core. The scattering data reveal compaction promoted by DNA binding; DNA-free RPA exists in an ensemble of states with inter-domain mobility and becomes progressively more condensed and less dynamic on binding ssDNA. Our results contrast with previous models proposing RPA initially binds ssDNA in a condensed state and becomes more extended as it fully engages the substrate. Moreover, the consensus view that RPA engages ssDNA in initial, intermediate and final stages conflicts with our data revealing that RPA undergoes two (not three) transitions as it binds ssDNA with no evidence for a discrete intermediate state. These results form a framework for understanding how RPA integrates the ssDNA substrate into DNA processing machinery, provides substrate access to its binding partners and promotes the progression and selection of DNA processing pathways.
机译:通过将单链DNA(ssDNA)的保护和组织与DNA加工因子的募集和比对结合,复制蛋白A(RPA)处于动态多蛋白DNA加工机制的核心。然而,RPA如何协调其八个域的生化功能仍然未知。我们研究了RPA DNA结合活性的结构生物化学,将小角度X射线和中子散射与全原子分子动力学模拟相结合,以研究RPA DNA结合核的结构。散射数据表明,DNA结合促进了紧实。无DNA的RPA以具有域间移动性的状态存在,并且在结合ssDNA上逐渐变得更凝聚和更不动态。我们的结果与以前的模型相反,前者提出RPA最初以凝聚态结合ssDNA,并在与底物完全结合时变得更加延伸。此外,关于RPA在初始,中间和最后阶段参与ssDNA的共识认为,与我们的数据相矛盾,这表明RPA经历了两个(而非三个)转变,因为它与ssDNA结合,没有证据表明存在离散的中间状态。这些结果形成了一个框架,用于理解RPA如何将ssDNA底物整合到DNA处理机器中,如何使底物接近其结合伴侣并促进DNA加工途径的发展和选择。

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