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直接单分子观察 RecA 介导的同源搜索模式和几何形状。

Direct Single-Molecule Observation of Mode and Geometry of RecA-Mediated Homology Search.

机构信息

Bioelectronics, The Pollard Institute, School of Electronic and Electrical Engineering, University of Leeds , Woodhouse Lane, Leeds LS2 9JT, United Kingdom.

Institute for Integrated Cell-Material Sciences, Kyoto University , Yoshida-ushinomiyacho, Sakyo-ku, Kyoto 606-8501, Japan.

出版信息

ACS Nano. 2018 Jan 23;12(1):272-278. doi: 10.1021/acsnano.7b06208. Epub 2017 Dec 12.

Abstract

Genomic integrity, when compromised by accrued DNA lesions, is maintained through efficient repair via homologous recombination. For this process the ubiquitous recombinase A (RecA), and its homologues such as the human Rad51, are of central importance, able to align and exchange homologous sequences within single-stranded and double-stranded DNA in order to swap out defective regions. Here, we directly observe the widely debated mechanism of RecA homology searching at a single-molecule level using high-speed atomic force microscopy (HS-AFM) in combination with tailored DNA origami frames to present the reaction targets in a way suitable for AFM-imaging. We show that RecA nucleoprotein filaments move along DNA substrates via short-distance facilitated diffusions, or slides, interspersed with longer-distance random moves, or hops. Importantly, from the specific interaction geometry, we find that the double-stranded substrate DNA resides in the secondary DNA binding-site within the RecA nucleoprotein filament helical groove during the homology search. This work demonstrates that tailored DNA origami, in conjunction with HS-AFM, can be employed to reveal directly conformational and geometrical information on dynamic protein-DNA interactions which was previously inaccessible at an individual single-molecule level.

摘要

基因组完整性,当其受到累积的 DNA 损伤的影响时,通过同源重组的有效修复得以维持。对于这一过程,普遍存在的重组酶 A(RecA)及其同源物,如人类 Rad51,具有至关重要的作用,能够在单链和双链 DNA 中对齐和交换同源序列,以替换有缺陷的区域。在这里,我们使用高速原子力显微镜(HS-AFM)结合定制的 DNA 折纸框架,在单分子水平上直接观察到了广泛争论的 RecA 同源搜索机制,该框架以适合 AFM 成像的方式呈现反应目标。我们表明,RecA 核蛋白丝通过短距离促进扩散或滑动沿着 DNA 底物移动,其间穿插着较长距离的随机移动或跳跃。重要的是,从特定的相互作用几何形状来看,我们发现双链 DNA 在同源搜索过程中位于 RecA 核蛋白丝螺旋槽中的二级 DNA 结合位点内。这项工作表明,定制的 DNA 折纸,结合 HS-AFM,可以用来直接揭示动态蛋白-DNA 相互作用的构象和几何信息,这在以前是无法在单个单分子水平上实现的。

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