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蛋白质模拟中电荷的构象依赖性。

Conformational dependence of charges in protein simulations.

作者信息

Söderhjelm Pär, Ryde Ulf

机构信息

Department of Theoretical Chemistry, Lund University, Chemical Centre, P. O. Box 124, SE-221 00 Lund, Sweden.

出版信息

J Comput Chem. 2009 Apr 15;30(5):750-60. doi: 10.1002/jcc.21097.

Abstract

We have studied the conformational dependence of molecular mechanics atomic charges for proteins by calculating the charges fitted to the quantum mechanical (QM) electrostatic potential (ESP) for all atoms in complexes between avidin and seven biotin analogues for 20 snapshots from molecular dynamics simulations. We have studied how various other charge sets reproduce those charges. The QM charges, even if averaged over all snapshots or all residues, in general have a larger magnitude than standard Amber charges, indicating that the restraint toward zero in the restrained ESP method is too strong. This has a significant influence on the electrostatic conformational energies and the interaction energy between the biotin ligand and the protein, giving a difference between the QM and Amber charges of 43 and 8 kJ/mol for the negatively charged and neutral biotin analogues, respectively (3-4%). However, this energy difference is strongly reduced if the solvation energy (calculated by the Poisson-Boltzmann or Generalized Born methods) is added, viz., to 7 kJ/mol for charged and 3 kJ/mol for uncharged ligand. In fact, charges need to be recalculated with a QM method only for residues within 7 or 4 A of the ligand, if the error should be less than 4 kJ/mol. Unfortunately, the QM charges do not give significantly better MM/PBSA estimates of ligand-binding affinities than standard Amber charges.

摘要

我们通过计算与抗生物素蛋白和七种生物素类似物形成的复合物中所有原子的量子力学(QM)静电势(ESP)拟合电荷,研究了蛋白质分子力学原子电荷的构象依赖性,这些数据来自分子动力学模拟的20个快照。我们还研究了其他各种电荷集如何重现这些电荷。QM电荷,即使在所有快照或所有残基上进行平均,通常也比标准Amber电荷具有更大的量级,这表明在受限ESP方法中对零的约束太强。这对静电构象能以及生物素配体与蛋白质之间的相互作用能有显著影响,对于带负电荷和中性的生物素类似物,QM电荷与Amber电荷之间的差异分别为43和8 kJ/mol(3 - 4%)。然而,如果加入溶剂化能(通过泊松 - 玻尔兹曼或广义玻恩方法计算),这种能量差异会大幅降低,即带电荷配体降低到7 kJ/mol,不带电荷配体降低到3 kJ/mol。实际上,如果误差应小于4 kJ/mol,仅需对配体7或4 Å范围内的残基用QM方法重新计算电荷。不幸的是,与标准Amber电荷相比,QM电荷在配体结合亲和力的MM/PBSA估计方面并没有显著更好的表现。

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