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通过邻近性进行通道化:使用布朗动力学的活性位点共定位的催化优势。

Channeling by Proximity: The Catalytic Advantages of Active Site Colocalization Using Brownian Dynamics.

作者信息

Bauler Patricia, Huber Gary, Leyh Thomas, McCammon J Andrew

出版信息

J Phys Chem Lett. 2010 May 6;1(9):1332-1335. doi: 10.1021/jz1002007. Epub 2010 Apr 9.

Abstract

Nature often colocalizes successive steps in a metabolic pathway. Such organization is predicted to increase the effective concentration of pathway intermediates near their recipient active sites and to enhance catalytic efficiency. Here, the pathway of a two-step reaction is modeled using a simple spherical approximation for the enzymes and substrate particles. Brownian dynamics are used to simulate the trajectory of a substrate particle as it diffuses between the active site zones of two different enzyme spheres. The results approximate distances for the most effective reaction pathways, indicating that the most effective reaction pathway is one in which the active sites are closely aligned. However, when the active sites are too close, the ability of the substrate to react with the first enzyme was hindered, suggesting that even the most efficient orientations can be improved for a system that is allowed to rotate or change orientation to optimize the likelihood of reaction at both sites.

摘要

自然界常常将代谢途径中的连续步骤共定位。这种组织方式预计会增加途径中间体在其受体活性位点附近的有效浓度,并提高催化效率。在此,使用酶和底物颗粒的简单球形近似对两步反应的途径进行建模。利用布朗动力学模拟底物颗粒在两个不同酶球的活性位点区域之间扩散时的轨迹。结果近似给出了最有效反应途径的距离,表明最有效反应途径是活性位点紧密对齐的途径。然而,当活性位点过于接近时,底物与第一种酶反应的能力会受到阻碍,这表明对于一个能够旋转或改变方向以优化在两个位点反应可能性的系统而言,即使是最有效的取向也可以得到改善。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7ee3/2865391/b62fb0ae4c50/jz-2010-002007_0005.jpg

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