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噬菌体T4的uvsY重组蛋白中六聚化与单链DNA结合亲和力之间的关系。

Relationship between hexamerization and ssDNA binding affinity in the uvsY recombination protein of bacteriophage T4.

作者信息

Ando R A, Morrical S W

机构信息

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

出版信息

Biochemistry. 1999 Dec 14;38(50):16589-98. doi: 10.1021/bi991917h.

Abstract

In bacteriophage T4, homologous genetic recombination events are catalyzed by a presynaptic filament containing stoichiometric quantities of the T4 uvsX recombinase bound cooperatively to single-stranded DNA (ssDNA). The formation of this filament requires the displacement of cooperatively bound gp32 (the T4 ssDNA-binding protein) from the ssDNA, a thermodynamically unfavorable reaction. This displacement is mediated by the T4 uvsY protein (15.8 kDa, 137 amino acids), which interacts with both uvsX- and gp32-ssDNA complexes and modulates their properties. Previously, we showed that uvsY exists as a hexamer under physiological conditions and that uvsY hexamers bind noncooperatively but with high affinity to ssDNA. We also showed that a fusion protein containing the N-terminal 101 amino acid residues of uvsY lacks interactions with uvsX and gp32 but retains both weak ssDNA-binding activity and a residual ability to stimulate uvsX-catalyzed recombination functions. Here, we present quantitative data on the oligomeric structure and ssDNA-binding properties of a closely related fusion protein designated uvsY. Sedimentation velocity and equilibrium results establish that uvsY, unlike native uvsY, behaves as a monomer in solution (M(app) = 14.2 kDa, = 2.1). Like native uvsY, uvsY binds noncooperatively to an etheno-DNA (epsilonDNA) lattice with a binding site size of 4 nucleotides/monomer; however at physiological ionic strength, the association constant for uvsY-epsilonDNA is decreased 10(4)-fold relative to native uvsY. Nevertheless, the magnitude of the salt effect on the association constant (K) is essentially unchanged between uvsY and uvsY, indicating that disruption of the C-terminus does not disrupt the electrostatic ssDNA-binding determinants found within each protomer of uvsY. Instead, the large difference in ssDNA-binding affinities reflects the loss of hexamerization ability by uvsY, suggesting that a form of intrahexamer synergism or cooperativity between binding sites within the uvsY hexamer leads to its high observed affinity for ssDNA.

摘要

在噬菌体T4中,同源基因重组事件由一种突触前细丝催化,该细丝含有化学计量的T4 uvsX重组酶,其与单链DNA(ssDNA)协同结合。这种细丝的形成需要将协同结合的gp32(T4 ssDNA结合蛋白)从ssDNA上置换下来,这是一个热力学上不利的反应。这种置换由T4 uvsY蛋白(15.8 kDa,137个氨基酸)介导,它与uvsX和gp32-ssDNA复合物相互作用并调节它们的特性。以前,我们表明uvsY在生理条件下以六聚体形式存在,并且uvsY六聚体非协同但以高亲和力结合ssDNA。我们还表明,一种包含uvsY N端101个氨基酸残基的融合蛋白缺乏与uvsX和gp32的相互作用,但保留了弱的ssDNA结合活性和刺激uvsX催化的重组功能的残余能力。在此,我们给出了关于一种名为uvsY的密切相关融合蛋白的寡聚结构和ssDNA结合特性的定量数据。沉降速度和平衡结果表明,与天然uvsY不同,uvsY在溶液中表现为单体(M(app)=14.2 kDa,=2.1)。与天然uvsY一样,uvsY非协同结合乙烯基DNA(εDNA)晶格,结合位点大小为4个核苷酸/单体;然而,在生理离子强度下,uvsY-εDNA的缔合常数相对于天然uvsY降低了10^4倍。尽管如此,uvsY和uvsY之间盐对缔合常数(K)的影响幅度基本不变,这表明C端的破坏并未破坏uvsY每个原聚体内发现的静电ssDNA结合决定因素。相反,ssDNA结合亲和力的巨大差异反映了uvsY六聚化能力的丧失,这表明uvsY六聚体内结合位点之间的一种六聚体内协同作用或协同性导致了其对ssDNA的高观察到的亲和力。

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