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研究连接体和三级结构对多重复血影蛋白分子强制展开的影响。

Examining the influence of linkers and tertiary structure in the forced unfolding of multiple-repeat spectrin molecules.

作者信息

Paramore Sterling, Voth Gregory A

机构信息

Department of Chemistry, Center for Biophysical Modeling and Simulation, University of Utah, Salt Lake City, 84112-0850, USA.

出版信息

Biophys J. 2006 Nov 1;91(9):3436-45. doi: 10.1529/biophysj.106.091108. Epub 2006 Aug 4.

Abstract

The unfolding pathways of multiple-repeat spectrin molecules were examined using steered molecular dynamics (SMD) simulations to forcibly unfold double- and triple-repeat spectrin molecules. Although SMD has previously been used to study other repeating-domain proteins, spectrin offers a unique challenge in that the linker connecting repeat units has a definite secondary structure, that of an alpha-helix. Therefore, the boundary conditions imposed on a double- or triple-repeat spectrin must be carefully considered if any relationship to the real system is to be deduced. This was accomplished by imposing additional forces on the system which ensure that the terminal alpha-helices behave as if there were no free noncontiguous helical ends. The results of the SMD simulations highlight the importance of the rupture of the alpha-helical linker on the subsequent unfolding events. Rupture of the linker propagates unfolding in the adjacent repeat units by destabilizing the tertiary structure, ultimately resulting in complete unfolding of the affected repeat unit. Two dominant classes of unfolding pathways are observed after the initial rupture of a linker which involve either rupture of another linker (possibly adjacent) or rupture of the basic tertiary structure of a repeat unit. The relationship between the force response observed on simulation timescales and those of experiment or physiological conditions is also discussed.

摘要

利用定向分子动力学(SMD)模拟来强行展开双重复和三重复血影蛋白分子,以此研究多重复血影蛋白分子的展开途径。尽管SMD此前已被用于研究其他重复结构域蛋白,但血影蛋白带来了独特的挑战,因为连接重复单元的接头具有明确的二级结构,即α-螺旋结构。因此,如果要推断与真实系统的任何关系,就必须仔细考虑施加在双重复或三重复血影蛋白上的边界条件。这是通过在系统上施加额外的力来实现的,这些力可确保末端α-螺旋的行为就好像不存在自由的非连续螺旋末端一样。SMD模拟结果突出了α-螺旋接头的断裂对后续展开事件的重要性。接头的断裂通过破坏三级结构,在相邻重复单元中传播展开过程,最终导致受影响的重复单元完全展开。在接头最初断裂后,观察到两种主要的展开途径类别,其中一种涉及另一个接头(可能是相邻的)的断裂,另一种涉及重复单元基本三级结构的断裂。还讨论了在模拟时间尺度上观察到的力响应与实验或生理条件下的力响应之间的关系。

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本文引用的文献

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