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UvrD 二聚化和解旋酶激活时的大结构域运动。

Large domain movements upon UvrD dimerization and helicase activation.

机构信息

Department of Biochemistry and Molecular Biophysics, Washington University School of Medicine, St. Louis, MO 63110.

Department of Biochemistry and Molecular Biophysics, Washington University School of Medicine, St. Louis, MO 63110

出版信息

Proc Natl Acad Sci U S A. 2017 Nov 14;114(46):12178-12183. doi: 10.1073/pnas.1712882114. Epub 2017 Oct 30.

Abstract

UvrD DNA helicase functions in several DNA repair processes. As a monomer, UvrD can translocate rapidly and processively along ssDNA; however, the monomer is a poor helicase. To unwind duplex DNA in vitro, UvrD needs to be activated either by self-assembly to form a dimer or by interaction with an accessory protein. However, the mechanism of activation is not understood. UvrD can exist in multiple conformations associated with the rotational conformational state of its 2B subdomain, and its helicase activity has been correlated with a closed 2B conformation. Using single-molecule total internal reflection fluorescence microscopy, we examined the rotational conformational states of the 2B subdomain of fluorescently labeled UvrD and their rates of interconversion. We find that the 2B subdomain of the UvrD monomer can rotate between an open and closed conformation as well as two highly populated intermediate states. The binding of a DNA substrate shifts the 2B conformation of a labeled UvrD monomer to a more open state that shows no helicase activity. The binding of a second unlabeled UvrD shifts the 2B conformation of the labeled UvrD to a more closed state resulting in activation of helicase activity. Binding of a monomer of the structurally similar Rep helicase does not elicit this effect. This indicates that the helicase activity of a UvrD dimer is promoted via direct interactions between UvrD subunits that affect the rotational conformational state of its 2B subdomain.

摘要

UvrD DNA 解旋酶在几种 DNA 修复过程中发挥作用。作为单体,UvrD 可以沿着 ssDNA 快速和连续地迁移;然而,单体是一种较差的解旋酶。为了在体外解开双链 DNA,UvrD 需要通过自组装形成二聚体或与辅助蛋白相互作用来激活。然而,其激活机制尚不清楚。UvrD 可以存在于与其 2B 亚结构域旋转构象状态相关的多种构象中,并且其解旋酶活性与封闭的 2B 构象相关。使用单分子全内反射荧光显微镜,我们检查了荧光标记的 UvrD 的 2B 亚结构域的旋转构象状态及其相互转化的速率。我们发现 UvrD 单体的 2B 亚结构域可以在开放和封闭构象之间以及两种高丰度的中间状态之间旋转。DNA 底物的结合将标记的 UvrD 单体的 2B 构象转移到更开放的状态,该状态没有解旋酶活性。第二个未标记的 UvrD 的结合将标记的 UvrD 的 2B 构象转移到更封闭的状态,从而激活解旋酶活性。结构相似的 Rep 解旋酶的单体结合不会产生这种效果。这表明 UvrD 二聚体的解旋酶活性是通过 UvrD 亚基之间的直接相互作用促进的,这些相互作用会影响其 2B 亚结构域的旋转构象状态。

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