State Key Laboratory of Physical Chemistry of Solid Surfaces and Fujian Provincial Key Laboratory of Theoretical and Computational Chemistry, College of Chemistry and Chemical Engineering and Innovation Laboratory for Sciences and Technologies of Energy Materials of Fujian Province (IKKEM), Xiamen University, Xiamen 361005, P. R. China.
J Phys Chem B. 2023 May 18;127(19):4245-4253. doi: 10.1021/acs.jpcb.3c01054. Epub 2023 May 8.
The protein scaffolds of enzymes not only provide structural support for the catalytic center but also exert preorganized electric fields for electrostatic catalysis. In recent years, uniform oriented external electric fields (OEEFs) have been widely applied to enzymatic reactions to mimic the electrostatic effects of the environment. However, the electric fields exerted by individual residues in proteins may be quite heterogeneous across the active site, with varying directions and strengths at different positions of the active site. Here, we propose a QM/MM-based approach to evaluate the effects of the electric fields exerted by individual residues in the protein scaffold. In particular, the heterogeneity of the residue electric fields and the effect of the native protein environment can be properly accounted for by this QM/MM approach. A case study of the O-O heterolysis reaction in the catalytic cycle of TyrH shows that (1) for scaffold residues that are relatively far from the active site, the heterogeneity of the residue electric field in the active site is not very significant and the electrostatic stabilization/destabilization due to each residue can be well approximated with the interaction energy between a uniform electric field and the QM region dipole; (2) for scaffold residues near the active site, the residue electric fields can be highly heterogeneous along the breaking O-O bond. In such a case, approximating the residue electric fields as uniform fields may misrepresent the overall electrostatic effect of the residue. The present QM/MM approach can be applied to evaluate the residues' electrostatic impact on enzymatic reactions, which also can be useful in computational optimization of electric fields to boost the enzyme catalysis.
酶的蛋白质支架不仅为催化中心提供结构支撑,还施加预组织的电场以进行静电催化。近年来,均匀定向的外部电场(OEEF)已广泛应用于酶反应中,以模拟环境的静电效应。然而,蛋白质中单个残基施加的电场在活性位点内可能非常不均匀,在活性位点的不同位置具有不同的方向和强度。在这里,我们提出了一种基于 QM/MM 的方法来评估蛋白质支架中单个残基施加的电场的影响。特别是,这种 QM/MM 方法可以正确考虑到残基电场的异质性和天然蛋白质环境的影响。TyrH 催化循环中 O-O 异裂反应的案例研究表明:(1)对于相对远离活性位点的支架残基,活性位点中残基电场的异质性不是很明显,并且每个残基的静电稳定/失稳作用可以通过与 QM 区域偶极子之间的相互作用能来很好地近似均匀电场;(2)对于靠近活性位点的支架残基,沿断裂的 O-O 键,残基电场可能高度异质。在这种情况下,将残基电场近似为均匀场可能会歪曲残基的整体静电效应。本 QM/MM 方法可用于评估残基对酶反应的静电影响,这也有助于计算优化电场以促进酶催化。