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通过分子模拟探究微管蛋白刚性的起源。

Probing the origin of tubulin rigidity with molecular simulations.

作者信息

Dima Ruxandra I, Joshi Harshad

机构信息

Department of Chemistry, University of Cincinnati, Cincinnati, OH 45221, USA.

出版信息

Proc Natl Acad Sci U S A. 2008 Oct 14;105(41):15743-8. doi: 10.1073/pnas.0806113105. Epub 2008 Oct 7.

Abstract

Tubulin heterodimers are the building blocks of microtubules, a major component of the cytoskeleton, whose mechanical properties are fundamental for the life of the cell. We uncover the microscopic origins of the mechanical response in microtubules by probing features of the energy landscape of the tubulin monomers and tubulin heterodimer. To elucidate the structures of the unfolding pathways and reveal the multiple unfolding routes, we performed simulations of a self-organized polymer (SOP) model of tubulin. The SOP representation, which is a coarse-grained description of chains, allows us to perform force-induced simulations at loading rates and time scales that closely match those used in single-molecule experiments. We show that the forced unfolding of each monomer involves a bifurcation in the pathways to the stretched state. After the unfolding of the C-term domain, the unraveling continues either from the N-term domain or from the middle domain, depending on the monomer and the pathway. In contrast to the unfolding complexity of the monomers, the dimer unfolds according to only one route corresponding to the unraveling of the C-term domain and part of the middle domain of beta-tubulin. We find that this surprising behavior is due to the viscoelastic properties of the interface between the monomers. We map precise features of the complex energy landscape of tubulin by surveying the structures of the various metastable intermediates, which, in the dimer case, are characterized only by changes in the beta-tubulin monomer.

摘要

微管蛋白异二聚体是微管的组成单元,微管是细胞骨架的主要成分,其力学性质对于细胞的生命活动至关重要。我们通过探究微管蛋白单体和微管蛋白异二聚体能量景观的特征,揭示了微管力学响应的微观起源。为了阐明展开途径的结构并揭示多条展开路线,我们对微管蛋白的自组装聚合物(SOP)模型进行了模拟。SOP表示是对链的粗粒度描述,它使我们能够在与单分子实验中使用的加载速率和时间尺度紧密匹配的条件下进行力诱导模拟。我们表明,每个单体的强制展开在通向拉伸状态的途径中涉及一个分支点。C端结构域展开后,解链继续从N端结构域或中间结构域开始,这取决于单体和途径。与单体展开的复杂性不同,二聚体仅根据一条对应于β-微管蛋白C端结构域和部分中间结构域解链的路线展开。我们发现这种令人惊讶的行为是由于单体之间界面的粘弹性特性。我们通过研究各种亚稳中间体的结构来描绘微管蛋白复杂能量景观的精确特征,在二聚体情况下,这些中间体仅以β-微管蛋白单体的变化为特征。

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