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构象变化调节人类RAD51蛋白的活性。

Conformational changes modulate the activity of human RAD51 protein.

作者信息

Liu Yilun, Stasiak Alicja Z, Masson Jean-Yves, McIlwraith Michael J, Stasiak Andrzej, West Stephen C

机构信息

Cancer Research UK, London Research Institute, Clare Hall Laboratories, South Mimms, Hertfordshire EN6 3LD, UK.

出版信息

J Mol Biol. 2004 Apr 2;337(4):817-27. doi: 10.1016/j.jmb.2004.02.022.

Abstract

Homologous recombination provides a major pathway for the repair of DNA double-strand breaks in mammalian cells. Defects in homologous recombination can lead to high levels of chromosomal translocations or deletions, which may promote cell transformation and cancer development. A key component of this process is RAD51. In comparison to RecA, the bacterial homologue, human RAD51 protein exhibits low-level strand-exchange activity in vitro. This activity can, however, be stimulated by the presence of high salt. Here, we have investigated the mechanistic basis for this stimulation. We show that high ionic strength favours the co-aggregation of RAD51-single-stranded DNA (ssDNA) nucleoprotein filaments with naked duplex DNA, to form a complex in which the search for homologous sequences takes place. High ionic strength allows differential binding of RAD51 to ssDNA and double-stranded DNA (dsDNA), such that ssDNA-RAD51 interactions are unaffected, whereas those between RAD51 and dsDNA are destabilized. Most importantly, high salt induces a conformational change in RAD51, leading to the formation of extended nucleoprotein filaments on ssDNA. These extended filaments mimic the active form of the Escherichia coli RecA-ssDNA filament that exhibits efficient strand-exchange activity.

摘要

同源重组为哺乳动物细胞中DNA双链断裂的修复提供了一条主要途径。同源重组缺陷可导致高水平的染色体易位或缺失,这可能促进细胞转化和癌症发展。这一过程的关键成分是RAD51。与细菌同源物RecA相比,人类RAD51蛋白在体外表现出低水平的链交换活性。然而,这种活性可被高盐的存在所刺激。在此,我们研究了这种刺激的机制基础。我们发现高离子强度有利于RAD51单链DNA(ssDNA)核蛋白细丝与裸露的双链DNA共聚集,形成一个进行同源序列搜索的复合体。高离子强度允许RAD51与ssDNA和双链DNA(dsDNA)的差异结合,使得ssDNA-RAD51相互作用不受影响,而RAD51与dsDNA之间的相互作用则不稳定。最重要的是,高盐诱导RAD51发生构象变化,导致在ssDNA上形成延伸的核蛋白细丝。这些延伸的细丝模拟了具有高效链交换活性的大肠杆菌RecA-ssDNA细丝的活性形式。

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