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来自春天的故事——转录激活样效应因子(TAL)效应蛋白结构的超弹性

TALEs from a spring--superelasticity of Tal effector protein structures.

作者信息

Flechsig Holger

机构信息

Department of Mathematical and Life Sciences, Graduate School of Science, Hiroshima University, Higashi-Hiroshima, Japan.

出版信息

PLoS One. 2014 Oct 14;9(10):e109919. doi: 10.1371/journal.pone.0109919. eCollection 2014.

Abstract

Transcription activator-like effectors (TALEs) are DNA-related proteins that recognise and bind specific target sequences to manipulate gene expression. Recently determined crystal structures show that their common architecture reveals a superhelical overall structure that may undergo drastic conformational changes. To establish a link between structure and dynamics in TALE proteins we have employed coarse-grained elastic-network modelling of currently available structural data and implemented a force-probe setup that allowed us to investigate their mechanical behaviour in computer experiments. Based on the measured force-extension curves we conclude that TALEs exhibit superelastic dynamical properties allowing for large-scale global conformational changes along their helical axis, which represents the soft direction in such proteins. For moderate external forcing the TALE models behave like linear springs, obeying Hooke's law, and the investigated structures can be characterised and compared by a corresponding spring constant. We show that conformational flexibility underlying the large-scale motions is not homogeneously distributed over the TALE structure, but instead soft spot residues around which strain is accumulated and which turn out to represent key agents in the transmission of conformational motions are identified. They correspond to the RVD loop residues that have been experimentally determined to play an eminent role in the binding process of target DNA.

摘要

转录激活样效应因子(TALEs)是一类与DNA相关的蛋白质,它们能够识别并结合特定的靶序列以调控基因表达。最近确定的晶体结构表明,它们的共同结构呈现出一种超螺旋的整体结构,可能会发生剧烈的构象变化。为了建立TALE蛋白结构与动力学之间的联系,我们采用了基于当前可用结构数据的粗粒度弹性网络模型,并实施了一种力探测设置,使我们能够在计算机实验中研究它们的力学行为。基于测量的力-伸长曲线,我们得出结论,TALEs表现出超弹性动力学特性,允许沿其螺旋轴进行大规模的全局构象变化,这代表了此类蛋白质中的柔性方向。对于适度的外部作用力,TALE模型的行为类似于线性弹簧,遵循胡克定律,并且可以通过相应的弹簧常数对所研究的结构进行表征和比较。我们表明,大规模运动背后的构象灵活性并非均匀地分布在TALE结构上,而是识别出了应变积累的柔性位点残基,这些残基在构象运动的传递中起着关键作用。它们对应于已通过实验确定在靶DNA结合过程中起重要作用的RVD环残基。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b88a/4196931/fb122fe86eb0/pone.0109919.g001.jpg

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