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模拟二硫键在蛋白质折叠中的作用:熵垒与途径。

Modeling the role of disulfide bonds in protein folding: entropic barriers and pathways.

作者信息

Camacho C J, Thirumalai D

机构信息

Institute for Physical Science and Technology, University of Maryland, College Park 20742, USA.

出版信息

Proteins. 1995 May;22(1):27-40. doi: 10.1002/prot.340220105.

Abstract

The role of disulfide bonds in directing protein folding is studied using lattice models. We find that the stability and the specificity of the disulfide bond interactions play quite different roles in the folding process: Under some conditions, the stability decreases the overall rate of folding; the specificity, however, by yielding a simpler connectivity of intermediates, always increases the rate of folding. This conclusion is intimately related to the selection mechanism entailed by entropic driving forces, such as the loop formation probability, and entropic barriers separating the native and the many native-like metastable states. The folding time is found to be a minimum for a certain range of the effective disulfide bond interaction. Examination of a model, which allows for the formation of disulfide bonded intermediates, suggests that folding proceeds via a three-stage multiple pathways kinetics. We show that there are pathways to the native state involving only native-like intermediates, as well as those that are mediated by nonnative intermediates. These findings are interpreted in terms of the appropriate energy landscape describing the barriers connecting low energy conformations. The consistency of our conclusions with several experimental studies is also discussed.

摘要

利用晶格模型研究了二硫键在指导蛋白质折叠中的作用。我们发现,二硫键相互作用的稳定性和特异性在折叠过程中发挥着截然不同的作用:在某些条件下,稳定性会降低整体折叠速率;然而,特异性通过产生更简单的中间体连接性,总是会提高折叠速率。这一结论与熵驱动力所带来的选择机制密切相关,例如环形成概率以及分隔天然态和许多类似天然态亚稳态的熵垒。发现对于一定范围的有效二硫键相互作用,折叠时间最短。对一个允许形成二硫键连接中间体的模型进行研究表明,折叠过程通过三阶段多途径动力学进行。我们表明,存在仅涉及类似天然态中间体的通向天然态的途径,以及由非天然态中间体介导的途径。这些发现根据描述连接低能构象的势垒的适当能量景观进行了解释。还讨论了我们的结论与几项实验研究的一致性。

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