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蛋白质动力学中的时间尺度层次结构与酶催化作用相关联。

A hierarchy of timescales in protein dynamics is linked to enzyme catalysis.

作者信息

Henzler-Wildman Katherine A, Lei Ming, Thai Vu, Kerns S Jordan, Karplus Martin, Kern Dorothee

机构信息

Department of Biochemistry, Howard Hughes Medical Institute, Brandeis University, Waltham, Massachusetts 02454, USA.

出版信息

Nature. 2007 Dec 6;450(7171):913-6. doi: 10.1038/nature06407. Epub 2007 Nov 18.

Abstract

The synergy between structure and dynamics is essential to the function of biological macromolecules. Thermally driven dynamics on different timescales have been experimentally observed or simulated, and a direct link between micro- to milli-second domain motions and enzymatic function has been established. However, very little is understood about the connection of these functionally relevant, collective movements with local atomic fluctuations, which are much faster. Here we show that pico- to nano-second timescale atomic fluctuations in hinge regions of adenylate kinase facilitate the large-scale, slower lid motions that produce a catalytically competent state. The fast, local mobilities differ between a mesophilic and hyperthermophilic adenylate kinase, but are strikingly similar at temperatures at which enzymatic activity and free energy of folding are matched. The connection between different timescales and the corresponding amplitudes of motions in adenylate kinase and their linkage to catalytic function is likely to be a general characteristic of protein energy landscapes.

摘要

结构与动力学之间的协同作用对于生物大分子的功能至关重要。在不同时间尺度上由热驱动的动力学已通过实验观察或模拟得到,并且已经建立了微秒到毫秒尺度的域运动与酶功能之间的直接联系。然而,对于这些与功能相关的集体运动与更快的局部原子涨落之间的联系,我们了解得非常少。在这里,我们表明,腺苷酸激酶铰链区皮秒到纳秒时间尺度的原子涨落促进了产生催化活性状态的大规模、较慢的盖子运动。嗜温腺苷酸激酶和嗜热腺苷酸激酶的快速局部迁移率不同,但在酶活性和折叠自由能相匹配的温度下却惊人地相似。腺苷酸激酶中不同时间尺度与相应运动幅度之间的联系及其与催化功能的关联可能是蛋白质能量景观的一个普遍特征。

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