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一种通过结构变化诱导的全酶和脱辅基酶中静电微扰的定量测量方法。

A quantitative measure of electrostatic perturbation in holo and apo enzymes induced by structural changes.

机构信息

Department of Biological Sciences, Tata Institute of Fundamental Research, Mumbai, India.

出版信息

PLoS One. 2013;8(3):e59352. doi: 10.1371/journal.pone.0059352. Epub 2013 Mar 14.

Abstract

Biological pathways are subject to subtle manipulations that achieve a wide range of functional variation in differing physiological niches. In many instances, changes in the structure of an enzyme on ligand binding germinate electrostatic perturbations that form the basis of its changed catalytic or transcriptional efficiency. Computational methods that seek to gain insights into the electrostatic changes in enzymes require expertise to setup and computing prowess. In the current work, we present a fast, easy and reliable methodology to compute electrostatic perturbations induced by ligand binding (MEPP). The theoretical foundation of MEPP is the conserved electrostatic potential difference (EPD) in cognate pairs of active site residues in proteins with the same functionality. Previously, this invariance has been used to unravel promiscuous serine protease and metallo-β-lactamase scaffolds in alkaline phosphatases. Given that a similarity in EPD is significant, we expect differences in the EPD to be significant too. MEPP identifies residues or domains that undergo significant electrostatic perturbations, and also enumerates residue pairs that undergo significant polarity change. The gain in a certain polarity of a residue with respect to neighboring residues, or the reversal of polarity between two residues might indicate a change in the preferred ligand. The methodology of MEPP has been demonstrated on several enzymes that employ varying mechanisms to perform their roles. For example, we have attributed the change in polarity in residue pairs to be responsible for the loss of metal ion binding in fructose 1,6-bisphosphatases, and corroborated the pre-organized state of the active site of the enzyme with respect to functionally relevant changes in electric fields in ketosteroid isomerases.

摘要

生物途径易受微妙操纵,这些操纵在不同生理小生境中实现了广泛的功能变化。在许多情况下,酶在配体结合时的结构变化会引发静电扰动,这些静电扰动构成了其催化或转录效率变化的基础。试图深入了解酶中静电变化的计算方法需要专业知识和计算能力。在当前的工作中,我们提出了一种快速、简单和可靠的方法来计算配体结合诱导的静电扰动(MEPP)。MEPP 的理论基础是具有相同功能的蛋白质中活性位点残基对之间保守的静电势能差(EPD)。以前,这种不变性已被用于揭示碱性磷酸酶中混杂的丝氨酸蛋白酶和金属-β-内酰胺酶支架。鉴于 EPD 的相似性很重要,我们预计 EPD 的差异也很重要。MEPP 确定了经历显著静电扰动的残基或结构域,并且还枚举了经历显著极性变化的残基对。相对于相邻残基,残基的某一极性的增加或两个残基之间的极性反转可能表明首选配体发生了变化。MEPP 方法已在几种采用不同机制发挥作用的酶上得到了验证。例如,我们已经将残基对极性的变化归因于果糖 1,6-二磷酸酶中金属离子结合的丧失,并证实了酶的活性位点的预组织状态与酮甾体异构酶中电场的功能相关变化相一致。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e884/3597595/05e2ecbba5cd/pone.0059352.g001.jpg

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