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通过对Gp32与单链DNA相互作用的外在荧光测量研究噬菌体T4突触前细丝组装的动力学

Dynamics of bacteriophage T4 presynaptic filament assembly from extrinsic fluorescence measurements of Gp32-single-stranded DNA interactions.

作者信息

Liu Jie, Qian Na, Morrical Scott W

机构信息

Department of Biochemistry,Vermont Cancer Center, University of Vermont College of Medicine, Burlington, Vermont 05405, USA.

出版信息

J Biol Chem. 2006 Sep 8;281(36):26308-19. doi: 10.1074/jbc.M604349200. Epub 2006 Jul 7.

Abstract

In the bacteriophage T4 homologous recombination system, presynaptic filament assembly on single-stranded (ssDNA) DNA requires UvsX recombinase, UvsY mediator, and Gp32 ssDNA-binding proteins. Gp32 exerts both positive and negative effects on filament assembly: positive by denaturing ssDNA secondary structure, and negative by competing with UvsX for ssDNA binding sites. UvsY is believed to help UvsX displace Gp32 from the ssDNA. To test this model we developed a real-time fluorescence assay for Gp32-ssDNA interactions during presynapsis, based on changes in the fluorescence of a 6-iodoacetamidofluorescein-Gp32 conjugate. Results demonstrate that the formation of UvsX presynaptic filaments progressively disrupts Gp32-ssDNA interactions. Under stringent salt conditions the disruption of Gp32-ssDNA by UvsX is both ATP- and UvsY-dependent. The displacement of Gp32 from ssDNA during presynapsis requires ATP binding, but not ATP hydrolysis, by UvsX protein. Likewise, UvsY-mediated presynapsis strongly requires UvsY-ssDNA interactions, and is optimal at a 1:1 stoichiometry of UvsY to UvsX and/or ssDNA binding sites. Presynaptic filaments formed in the presence of UvsY undergo assembly/collapse that is tightly coupled to the ATP hydrolytic cycle and to stringent competition for ssDNA binding sites between Gp32 and various nucleotide-liganded forms of UvsX. The data directly support the Gp32 displacement model of UvsY-mediated presynaptic filament assembly, and demonstrate that the transient induction of high affinity UvsX-ssDNA interactions by ATP are essential, although not sufficient, for Gp32 displacement. The underlying dynamics of protein-ssDNA interactions within presynaptic filaments suggests that rearrangements of UvsX, UvsY, and Gp32 proteins on ssDNA may be coupled to central processes in T4 recombination metabolism.

摘要

在噬菌体T4同源重组系统中,单链(ssDNA)上突触前细丝的组装需要UvsX重组酶、UvsY介导蛋白和Gp32单链DNA结合蛋白。Gp32对细丝组装既有正向作用也有负向作用:正向作用是使单链DNA二级结构变性,负向作用是与UvsX竞争单链DNA结合位点。据信UvsY有助于UvsX将Gp32从单链DNA上置换下来。为了验证该模型,我们基于6-碘乙酰氨基荧光素-Gp32共轭物荧光的变化,开发了一种用于突触前过程中Gp32-单链DNA相互作用的实时荧光测定法。结果表明,UvsX突触前细丝的形成逐渐破坏Gp32-单链DNA相互作用。在严格的盐条件下,UvsX对Gp32-单链DNA的破坏既依赖于ATP也依赖于UvsY。突触前过程中Gp32从单链DNA上的置换需要UvsX蛋白结合ATP,但不需要ATP水解。同样,UvsY介导的突触前过程强烈需要UvsY-单链DNA相互作用,并且在UvsY与UvsX和/或单链DNA结合位点的化学计量比为1:1时最为理想。在UvsY存在下形成的突触前细丝会经历组装/解聚,这与ATP水解循环以及Gp32和各种核苷酸结合形式的UvsX之间对单链DNA结合位点的激烈竞争紧密相关。这些数据直接支持UvsY介导的突触前细丝组装的Gp32置换模型,并表明ATP对高亲和力UvsX-单链DNA相互作用的瞬时诱导对于Gp32置换是必不可少的,尽管并不充分。突触前细丝内蛋白质-单链DNA相互作用的潜在动力学表明,UvsX、UvsY和Gp32蛋白在单链DNA上的重排可能与T4重组代谢的核心过程相关联。

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