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Human RAD51 rapidly forms intrinsically dynamic nucleoprotein filaments modulated by nucleotide binding state

机译:人类RAD51快速形成受核苷酸结合状态调控的内在动态核蛋白丝

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摘要

Formation of RAD51 filaments on single-stranded DNA is an essential event during homologous recombination, which is required for homology search, strand exchange and protection of replication forks. Formation of nucleoprotein filaments (NF) is required for development and genomic stability, and its failure is associated with developmental abnormalities and tumorigenesis. Here we describe the structure of the human RAD51 NFs and of its Walker box mutants using electron microscopy. Wild-type RAD51 filaments adopt an ‘open’ conformation when compared to a ‘closed’ structure formed by mutants, reflecting alterations in helical pitch. The kinetics of formation/disassembly of RAD51 filaments show rapid and high ssDNA coverage via low cooperativity binding of RAD51 units along the DNA. Subsequently, a series of isomerization or dissociation events mediated by nucleotide binding state creates intrinsically dynamic RAD51 NFs. Our findings highlight important a mechanistic divergence among recombinases from different organisms, in line with the diversity of biological mechanisms of HR initiation and quality control. These data reveal unexpected intrinsic dynamic properties of the RAD51 filament during assembly/disassembly, which may be important for the proper control of homologous recombination.
机译:在单链DNA上形成RAD51细丝是同源重组过程中的重要事件,这对于同源性搜索,链交换和复制叉的保护是必需的。发育和基因组稳定性需要形成核蛋白丝(NF),而其失败与发育异常和肿瘤发生有关。在这里,我们使用电子显微镜描述人类RAD51 NFs的结构及其Walker盒突变体。与突变体形成的“封闭”结构相比,野生型RAD51灯丝采用“开放”构象,反映出螺距的变化。 RAD51细丝形成/拆卸的动力学通过沿着DNA的RAD51单位的低协同结合表现出快速而高的ssDNA覆盖率。随后,由核苷酸结合状态介导的一系列异构化或解离事件产生了内在动态的RAD51 NF。我们的发现强调了不同生物体重组酶之间重要的机制差异,这与HR启动和质量控制的生物学机制的多样性相一致。这些数据揭示了RAD51细丝在组装/拆卸过程中出乎意料的固有动力学特性,这对于正确控制同源重组可能很重要。

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