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使用微秒级单分子荧光共振能量转移技术来确定T4单链DNA结合蛋白在模型DNA复制叉上的组装途径。

Using microsecond single-molecule FRET to determine the assembly pathways of T4 ssDNA binding protein onto model DNA replication forks.

作者信息

Phelps Carey, Israels Brett, Jose Davis, Marsh Morgan C, von Hippel Peter H, Marcus Andrew H

机构信息

Department of Chemistry and Biochemistry, Institute of Molecular Biology, University of Oregon, Eugene, OR 97403.

Department of Chemistry and Biochemistry, Oregon Center for Optical, Molecular and Quantum Science, University of Oregon, Eugene, OR 97403.

出版信息

Proc Natl Acad Sci U S A. 2017 May 2;114(18):E3612-E3621. doi: 10.1073/pnas.1619819114. Epub 2017 Apr 17.

Abstract

DNA replication is a core biological process that occurs in prokaryotic cells at high speeds (∼1 nucleotide residue added per millisecond) and with high fidelity (fewer than one misincorporation event per 10 nucleotide additions). The ssDNA binding protein [gene product 32 (gp32)] of the T4 bacteriophage is a central integrating component of the replication complex that must continuously bind to and unbind from transiently exposed template strands during DNA synthesis. We here report microsecond single-molecule FRET (smFRET) measurements on Cy3/Cy5-labeled primer-template (p/t) DNA constructs in the presence of gp32. These measurements probe the distance between Cy3/Cy5 fluorophores that label the ends of a short (15-nt) segment of ssDNA attached to a model p/t DNA construct and permit us to track the stochastic interconversion between various protein bound and unbound states. The length of the 15-nt ssDNA lattice is sufficient to accommodate up to two cooperatively bound gp32 proteins in either of two positions. We apply a unique multipoint time correlation function analysis to the microsecond-resolved smFRET data obtained to determine and compare the kinetics of various possible reaction pathways for the assembly of cooperatively bound gp32 protein onto ssDNA sequences located at the replication fork. The results of our analysis reveal the presence and translocation mechanisms of short-lived intermediate bound states that are likely to play a critical role in the assembly mechanisms of ssDNA binding proteins at replication forks and other ss duplex junctions.

摘要

DNA复制是一个核心生物学过程,在原核细胞中高速发生(约每秒添加1个核苷酸残基)且具有高保真度(每添加10个核苷酸发生错误掺入事件少于1次)。T4噬菌体的单链DNA结合蛋白[基因产物32(gp32)]是复制复合体的核心整合成分,在DNA合成过程中它必须持续地与瞬时暴露的模板链结合和解离。我们在此报告了在gp32存在下对Cy3/Cy5标记的引物-模板(p/t)DNA构建体进行的微秒级单分子荧光共振能量转移(smFRET)测量。这些测量探测了标记附着于模型p/t DNA构建体的短(15个核苷酸)单链DNA片段末端的Cy3/Cy5荧光团之间的距离,并使我们能够追踪各种蛋白质结合态和未结合态之间的随机相互转换。15个核苷酸的单链DNA晶格长度足以在两个位置中的任何一个容纳多达两个协同结合的gp32蛋白。我们对获得的微秒级分辨的smFRET数据应用独特的多点时间相关函数分析,以确定和比较协同结合的gp32蛋白组装到位于复制叉处的单链DNA序列上的各种可能反应途径的动力学。我们的分析结果揭示了短寿命中间结合态的存在和易位机制,这些机制可能在复制叉和其他单链双链交界处的单链DNA结合蛋白的组装机制中起关键作用。

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