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DprA与RecA在单链DNA上成核相互作用的分子决定因素。

Molecular determinants of the DprA-RecA interaction for nucleation on ssDNA.

作者信息

Lisboa Johnny, Andreani Jessica, Sanchez Dyana, Boudes Marion, Collinet Bruno, Liger Dominique, van Tilbeurgh Herman, Guérois Raphael, Quevillon-Cheruel Sophie

机构信息

Université Paris-Sud, Institut de Biochimie et de Biophysique Moléculaire et Cellulaire, UMR 8619, F-91405 Orsay, France.

CEA, iBiTecS, F-91191 Gif sur Yvette, France Université Paris-Sud & CNRS, UMR 8221, F-91191 Gif sur Yvette, France.

出版信息

Nucleic Acids Res. 2014 Jun;42(11):7395-408. doi: 10.1093/nar/gku349. Epub 2014 Apr 29.

Abstract

Natural transformation is a major mechanism of horizontal gene transfer in bacteria that depends on DNA recombination. RecA is central to the homologous recombination pathway, catalyzing DNA strand invasion and homology search. DprA was shown to be a key binding partner of RecA acting as a specific mediator for its loading on the incoming exogenous ssDNA. Although the 3D structures of both RecA and DprA have been solved, the mechanisms underlying their cross-talk remained elusive. By combining molecular docking simulations and experimental validation, we identified a region on RecA, buried at its self-assembly interface and involving three basic residues that contact an acidic triad of DprA previously shown to be crucial for the interaction. At the core of these patches, (DprA)M238 and (RecA)F230 are involved in the interaction. The other DprA binding regions of RecA could involve the N-terminal α-helix and a DNA-binding region. Our data favor a model of DprA acting as a cap of the RecA filament, involving a DprA-RecA interplay at two levels: their own oligomeric states and their respective interaction with DNA. Our model forms the basis for a mechanistic explanation of how DprA can act as a mediator for the loading of RecA on ssDNA.

摘要

自然转化是细菌中水平基因转移的主要机制,它依赖于DNA重组。RecA在同源重组途径中起核心作用,催化DNA链入侵和同源性搜索。DprA被证明是RecA的关键结合伙伴,作为其加载到进入的外源单链DNA上的特异性介质。尽管RecA和DprA的三维结构都已解析,但它们相互作用的潜在机制仍然难以捉摸。通过结合分子对接模拟和实验验证,我们在RecA上确定了一个区域,该区域埋藏在其自组装界面处,涉及三个碱性残基,它们与先前显示对相互作用至关重要的DprA的酸性三联体接触。在这些区域的核心,(DprA)M238和(RecA)F230参与了相互作用。RecA的其他DprA结合区域可能涉及N端α螺旋和一个DNA结合区域。我们的数据支持一种模型,即DprA作为RecA细丝的帽,涉及DprA-RecA在两个层面的相互作用:它们自身的寡聚状态以及它们与DNA的各自相互作用。我们的模型为解释DprA如何作为RecA加载到单链DNA上的介质提供了机制基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6f77/4066776/efb0a2765cc6/gku349fig1.jpg

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