二氢叶酸还原酶的结构、动力学和催化功能。

Jason R Schnell, H Jane Dyson, Peter E Wright
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引用次数: 453

摘要

分子运动被广泛认为是影响蛋白质功能许多方面的因素。二氢叶酸还原酶(DHFR),特别是来自大肠杆菌的DHFR,已经成为研究蛋白质动力学和催化功能之间联系的重要系统,这既是因为观察到的运动的位置和时间尺度,也是因为大量的结构和机制数据的可用性,提供了可以解释运动的详细背景。配体结合、构象变化和诱变对蛋白质动力学的影响已经通过多种实验和理论方法进行了探讨,包括x射线晶体学、荧光、核磁共振(NMR)、分子动力学模拟和量子/经典混合动力学方法。这些研究提供了DHFR在整个催化循环中构象和动力学变化的详细地图,并为蛋白质运动在该酶的催化活性中的作用提供了新的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Structure, dynamics, and catalytic function of dihydrofolate reductase.

Molecular motions are widely regarded as contributing factors in many aspects of protein function. The enzyme dihydrofolate reductase (DHFR), and particularly that from Escherichia coli, has become an important system for investigating the linkage between protein dynamics and catalytic function, both because of the location and timescales of the motions observed and because of the availability of a large amount of structural and mechanistic data that provides a detailed context within which the motions can be interpreted. Changes in protein dynamics in response to ligand binding, conformational change, and mutagenesis have been probed using numerous experimental and theoretical approaches, including X-ray crystallography, fluorescence, nuclear magnetic resonance (NMR), molecular dynamics simulations, and hybrid quantum/classical dynamics methods. These studies provide a detailed map of changes in conformation and dynamics throughout the catalytic cycle of DHFR and give new insights into the role of protein motions in the catalytic activity of this enzyme.

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