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酶活性部位的电荷密度作为静电预组织的描述符。

Charge Density in Enzyme Active Site as a Descriptor of Electrostatic Preorganization.

机构信息

Department of Chemistry and Biochemistry , University of California, Los Angeles , Los Angeles , California 90095 , United States.

Molecular Theory Group , Colorado School of Mines , Golden , Colorado 80401 , United States.

出版信息

J Chem Inf Model. 2019 May 28;59(5):2367-2373. doi: 10.1021/acs.jcim.8b00958. Epub 2019 Mar 5.

Abstract

Large protein macromolecules in enzymatic catalysis have been shown to exert a specific electric field that reduces the reorganization energy upon barrier crossing and thus reduces the reaction free energy barrier. In this work we suggest that the charge density in the active site of an enzyme investigated using formalisms embodied by the quantum theory of atoms in molecules (QTAIM) provides a sensitive and quantum mechanically rigorous probe of electrostatic preorganization. We focus on the active site of ketosteroid isomerase, a well-studied enzyme for which electrostatic preorganization has been modeled theoretically and studied experimentally. We study the charge density in the active site and the reaction mechanism in the presence of small external electric fields of various directions and magnitudes. We show that the geometry of the full charge density is a sensitive reporter on the external field experienced by the active site. Changes are observed in the relative positions of critical points and amount of charge at critical points as a function of the field. At the same time, a subset of these features correlates linearly with the barrier of the first reaction step in catalysis. Small changes in the barrier, within 1-2 kcal/mol, are reflected in the charge density, suggesting the existence of a field - reactant state charge density - reaction barrier correlation. Hence, QTAIM can be used for the analysis of electric field in enzyme active sites, and further investigations and exploitations of the found correlations may prove useful in enzyme design where preorganization is optimized.

摘要

在酶催化中,大的蛋白质大分子被证明会产生特定的电场,这种电场在跨越势垒时会降低重组能,从而降低反应自由能垒。在这项工作中,我们提出,使用分子轨道量子理论(QTAIM)所包含的形式主义来研究酶的活性部位中的电荷密度,可以提供静电预组织的灵敏和量子力学严格的探针。我们专注于酮甾体异构酶的活性部位,这是一种研究得很好的酶,其静电预组织已在理论上进行了建模,并在实验上进行了研究。我们研究了在各种方向和大小的外部电场存在下活性部位的电荷密度和反应机制。我们表明,完整电荷密度的几何形状是活性部位所经历的外部场的敏感报告者。随着场的变化,临界点的相对位置和临界点处的电荷数量发生变化。同时,这些特征的一部分与催化中第一步反应的势垒呈线性相关。在 1-2 kcal/mol 范围内的势垒的微小变化反映在电荷密度中,这表明存在电场-反应物状态电荷密度-反应势垒的相关性。因此,QTAIM 可用于分析酶活性部位中的电场,进一步的研究和对发现的相关性的利用可能对优化预组织的酶设计有用。

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