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肌球蛋白V中的变构通讯:从小的构象变化到大的定向运动

Allosteric communication in myosin V: from small conformational changes to large directed movements.

作者信息

Cecchini M, Houdusse A, Karplus M

机构信息

Laboratoire de Chimie Biophysique, Université Louis Pasteur, ISIS, Strasbourg, France.

出版信息

PLoS Comput Biol. 2008 Aug 15;4(8):e1000129. doi: 10.1371/journal.pcbi.1000129.

Abstract

The rigor to post-rigor transition in myosin, a consequence of ATP binding, plays an essential role in the Lymn-Taylor functional cycle because it results in the dissociation of the actomyosin complex after the powerstroke. On the basis of the X-ray structures of myosin V, we have developed a new normal mode superposition model for the transition path between the two states. Rigid-body motions of the various subdomains and specific residues at the subdomain interfaces are key elements in the transition. The allosteric communication between the nucleotide binding site and the U50/L50 cleft is shown to result from local changes due to ATP binding, which induce large amplitude motions that are encoded in the structure of the protein. The triggering event is the change in the interaction of switch I and the P-loop, which is stabilized by ATP binding. The motion of switch I, which is a relatively rigid element of the U50 subdomain, leads directly to a partial opening of the U50/L50 cleft; the latter is expected to weaken the binding of myosin to actin. The calculated transition path demonstrates the nature of the subdomain coupling and offers an explanation for the mutual exclusion of ATP and actin binding. The mechanism of the uncoupling of the converter from the motor head, an essential part of the transition, is elucidated. The origin of the partial untwisting of the central beta-sheet in the rigor to post-rigor transition is described.

摘要

肌球蛋白中从僵直态到后僵直态的转变是ATP结合的结果,在林恩-泰勒功能循环中起着至关重要的作用,因为它导致了动力冲程后肌动球蛋白复合物的解离。基于肌球蛋白V的X射线结构,我们为这两种状态之间的转变路径开发了一种新的正常模式叠加模型。各个亚结构域的刚体运动以及亚结构域界面处的特定残基是转变中的关键要素。核苷酸结合位点与U50/L50裂隙之间的变构通讯被证明是由ATP结合引起的局部变化导致的,这些变化诱导了在蛋白质结构中编码的大幅度运动。触发事件是开关I与P环相互作用的变化,这种变化通过ATP结合得以稳定。开关I的运动,它是U50亚结构域中一个相对刚性的元件,直接导致U50/L50裂隙的部分打开;预计后者会削弱肌球蛋白与肌动蛋白的结合。计算出的转变路径展示了亚结构域耦合的性质,并为ATP与肌动蛋白结合的相互排斥提供了解释。阐明了转换器与马达头部解耦的机制,这是转变的一个重要部分。描述了在从僵直态到后僵直态转变过程中中央β折叠部分解捻的起源。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8e12/2497441/ab4db1699b6a/pcbi.1000129.g001.jpg

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