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大分子拥挤对耦合折叠和结合的影响。

Macromolecular crowding effects on coupled folding and binding.

作者信息

Kim Young C, Bhattacharya Apratim, Mittal Jeetain

机构信息

Center for Computational Materials Science, Naval Research Laboratory , Washington, D.C. 20375, United States.

出版信息

J Phys Chem B. 2014 Nov 6;118(44):12621-9. doi: 10.1021/jp508046y. Epub 2014 Oct 23.

Abstract

Replica exchange molecular dynamics simulations are performed on the protein complex pKID-KIX to understand the effects of macromolecular crowding on coupled folding and binding events. A structure-based protein model at the residue level is adopted for the two proteins to include intramolecular conformational flexibility, while crowding macromolecules are represented as spherical particles. The interactions between crowders and protein residues can be either purely repulsive or a combination of short-range repulsion and intermediate-range attraction. Consistent with previous studies on rigid-body protein binding in the presence of spherical crowders, we find that the complex formation is stabilized by repulsive protein-crowder interactions and destabilized by sufficiently strong attractive protein-crowder interactions. Competition between stabilizing repulsive and destabilizing attractive interactions is quantitatively captured by a previous theoretical model developed for describing the change in the binding free energy of rigid proteins in a crowded environment. We find that protein flexibility has little effect on the thermodynamics of the pKID-KIX binding (with respect to bulk) for repulsive and weakly attractive protein-crowder interactions. For strong protein-crowder attractive interactions, the destabilizing effect due to crowding is attenuated by protein flexibility. Interestingly, the mechanism of coupled folding and binding observed in bulk remains unchanged under highly crowded conditions over a broad range of protein-crowder interaction strengths. Also, strong protein-crowder attractive interactions can significantly stabilize intermediate states involving partial contact between pKID and KIX domains.

摘要

对蛋白质复合物pKID-KIX进行复制交换分子动力学模拟,以了解大分子拥挤对耦合折叠和结合事件的影响。对这两种蛋白质采用基于残基水平的结构蛋白质模型,以纳入分子内构象灵活性,而拥挤大分子则表示为球形颗粒。拥挤剂与蛋白质残基之间的相互作用可以是纯粹排斥性的,也可以是短程排斥和中程吸引的组合。与先前关于球形拥挤剂存在下刚体蛋白质结合的研究一致,我们发现复合物的形成通过排斥性蛋白质-拥挤剂相互作用而稳定,而通过足够强的吸引性蛋白质-拥挤剂相互作用而不稳定。稳定的排斥性相互作用和不稳定的吸引性相互作用之间的竞争由先前开发的用于描述拥挤环境中刚性蛋白质结合自由能变化的理论模型定量捕捉。我们发现,对于排斥性和弱吸引性蛋白质-拥挤剂相互作用,蛋白质灵活性对pKID-KIX结合(相对于本体)的热力学影响很小。对于强蛋白质-拥挤剂吸引性相互作用,拥挤引起的不稳定效应因蛋白质灵活性而减弱。有趣的是,在广泛的蛋白质-拥挤剂相互作用强度范围内,在高度拥挤条件下,本体中观察到的耦合折叠和结合机制保持不变。此外,强蛋白质-拥挤剂吸引性相互作用可以显著稳定涉及pKID和KIX结构域之间部分接触的中间状态。

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