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酿酒酵母Rad51蛋白的DNA结合特性。

The DNA binding properties of Saccharomyces cerevisiae Rad51 protein.

作者信息

Zaitseva E M, Zaitsev E N, Kowalczykowski S C

机构信息

Division of Biological Sciences, Sections of Microbiology and of Molecular and Cell Biology, University of California, Davis, California 95616-8665, USA.

出版信息

J Biol Chem. 1999 Jan 29;274(5):2907-15. doi: 10.1074/jbc.274.5.2907.

Abstract

Saccharomyces cerevisiae Rad51 protein is the paradigm for eukaryotic ATP-dependent DNA strand exchange proteins. To explain some of the unique characteristics of DNA strand exchange promoted by Rad51 protein, when compared with its prokaryotic homologue the Escherichia coli RecA protein, we analyzed the DNA binding properties of the Rad51 protein. Rad51 protein binds both single-stranded DNA (ssDNA) and double-stranded DNA (dsDNA) in an ATP- and Mg2+-dependent manner, over a wide range of pH, with an apparent binding stoichiometry of approximately 1 protein monomer per 4 (+/-1) nucleotides or base pairs, respectively. Only dATP and adenosine 5'-gamma-(thiotriphosphate) (ATPgammaS) can substitute for ATP, but binding in the presence of ATPgammaS requires more than a 5-fold stoichiometric excess of protein. Without nucleotide cofactor, Rad51 protein binds both ssDNA and dsDNA but only at pH values lower than 6.8; in this case, the apparent binding stoichiometry covers the range of 1 protein monomer per 6-9 nucleotides or base pairs. Therefore, Rad51 protein displays two distinct modes of DNA binding. These binding modes are not inter-convertible; however, their initial selection is governed by ATP binding. On the basis of these DNA binding properties, we conclude that the main reason for the low efficiency of the DNA strand exchange promoted by Rad51 protein in vitro is its enhanced dsDNA-binding ability, which inhibits both the presynaptic and synaptic phases of the DNA strand exchange reaction as follows: during presynapsis, Rad51 protein interacts with and stabilizes secondary structures in ssDNA thereby inhibiting formation of a contiguous nucleoprotein filament; during synapsis, Rad51 protein inactivates the homologous dsDNA partner by directly binding to it.

摘要

酿酒酵母Rad51蛋白是真核生物ATP依赖型DNA链交换蛋白的典范。为了解释与原核同源物大肠杆菌RecA蛋白相比,Rad51蛋白促进的DNA链交换的一些独特特征,我们分析了Rad51蛋白的DNA结合特性。Rad51蛋白以ATP和Mg2+依赖的方式结合单链DNA(ssDNA)和双链DNA(dsDNA),在很宽的pH范围内,其表观结合化学计量比分别约为每4(±1)个核苷酸或碱基对1个蛋白质单体。只有dATP和腺苷5'-γ-(硫代三磷酸)(ATPγS)可以替代ATP,但在ATPγS存在下的结合需要超过5倍化学计量过量的蛋白质。没有核苷酸辅因子时,Rad51蛋白能结合ssDNA和dsDNA,但仅在pH值低于6.8时;在这种情况下,表观结合化学计量比范围为每6 - 9个核苷酸或碱基对1个蛋白质单体。因此,Rad51蛋白表现出两种不同的DNA结合模式。这些结合模式不能相互转换;然而,它们的初始选择受ATP结合控制。基于这些DNA结合特性,我们得出结论,Rad51蛋白在体外促进DNA链交换效率低的主要原因是其增强的dsDNA结合能力,这抑制了DNA链交换反应的突触前和突触阶段,具体如下:在突触前阶段,Rad51蛋白与ssDNA中的二级结构相互作用并使其稳定,从而抑制连续核蛋白丝的形成;在突触阶段,Rad51蛋白通过直接结合使同源dsDNA伴侣失活。

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