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限制作用对蛋白质二聚化动力学和热力学的影响。

Confinement effects on the kinetics and thermodynamics of protein dimerization.

作者信息

Wang Wei, Xu Wei-Xin, Levy Yaakov, Trizac E, Wolynes P G

机构信息

National Laboratory of Solid State Microstructure and Department of Physics, Nanjing University, Nanjing 210093, China.

出版信息

Proc Natl Acad Sci U S A. 2009 Apr 7;106(14):5517-22. doi: 10.1073/pnas.0809649106. Epub 2009 Mar 18.

Abstract

In the cell, protein complexes form by relying on specific interactions between their monomers. Excluded volume effects due to molecular crowding would lead to correlations between molecules even without specific interactions. What is the interplay of these effects in the crowded cellular environment? We study dimerization of a model homodimer when the mondimers are free and when they are tethered to each other. We consider a structured environment: Two monomers first diffuse into a cavity of size L and then fold and bind within the cavity. The folding and binding are simulated by using molecular dynamics based on a simplified topology based model. The confinement in the cell is described by an effective molecular concentration C approximately L(-3). A two-state coupled folding and binding behavior is found. We show the maximal rate of dimerization occurred at an effective molecular concentration C(op) approximately = 1 mM, which is a relevant cellular concentration. In contrast, for tethered chains the rate keeps at a plateau when C < C(op) but then decreases sharply when C > C(op). For both the free and tethered cases, the simulated variation of the rate of dimerization and thermodynamic stability with effective molecular concentration agrees well with experimental observations. In addition, a theoretical argument for the effects of confinement on dimerization is also made.

摘要

在细胞中,蛋白质复合物通过其单体之间的特定相互作用形成。即使没有特定相互作用,由于分子拥挤导致的排除体积效应也会导致分子间的相关性。在拥挤的细胞环境中,这些效应之间的相互作用是什么?我们研究了模型同型二聚体在单体自由和相互连接时的二聚化情况。我们考虑一种结构化环境:两个单体首先扩散到大小为L的腔中,然后在腔内折叠并结合。折叠和结合通过基于简化拓扑模型的分子动力学进行模拟。细胞内的限制由有效分子浓度C近似为L(-3)来描述。发现了一种两态耦合的折叠和结合行为。我们表明,二聚化的最大速率出现在有效分子浓度C(op)近似为1 mM时,这是一个相关的细胞浓度。相比之下,对于连接的链,当C < C(op)时速率保持平稳,但当C > C(op)时则急剧下降。对于自由和连接的情况,二聚化速率和热力学稳定性随有效分子浓度的模拟变化与实验观察结果吻合良好。此外,还对限制对二聚化的影响进行了理论论证。

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