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QM/MM Reweighting Free Energy SCF for Geometry Optimization on Extensive Free Energy Surface of Enzymatic Reaction

机译:QM / MM重加权自由能SCF用于酶反应广泛自由能表面的几何优化

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We developed a quantum mechanical/molecular mechanical (QM/MM) free energy geometry optimization method by which the geometry of a quantum chemically treated (QM) molecule is optimized on a free energy surface defined with thermal distribution of the surrounding molecular environment obtained by molecular dynamics simulation with a molecular mechanics (MM) force field. The method called QM/MM reweighting free energy self-consistent field combines a mean field theory of QM/ MM free energy geometry optimization developed by Yamamoto (Yamamoto, T. J. Chem. Phys. 2008, 129, 244104) with a reweighting scheme for updating the MM distribution introduced by Hu et al. (Hu, H., et al. J. Chem. Phys. 2008,128,034105) and features high computational efficiency suitable for exploring the reaction free energy surface of extensive protein conformational space. The computational efficiency with improved treatment of a long-range electrostatic (ES) interaction using the Ewald summation technique permits one to take into account global conformational relaxation of an entire protein of an enzyme in the free energy geometry optimization of its reaction center. We applied the method to an enzymatic reaction of a substrate complex of psychrophilic a-amylase from Antarctic bacterium Pscudoalteromonas haloplanktis and succeeded in geometry optimizations of the reactant and the product of the catalytic reaction that involve large conformational changes of protein loops adjacent to the reaction center on time scales reaching sub-microseconds. We found that the adjacent loops in the reactant and the product form in different conformations and produce catalytic ES potentials on the reaction center.
机译:我们开发了一种量子力学/分子机械(QM / MM)自由能几何优化方法,通过该方法,可以优化自由化学表面上的量子化学处理(QM)分子的几何形状,该自由能表面定义为通过分子获得的周围分子环境的热分布分子力学(MM)力场的动力学模拟。称为QM / MM重加权自由能自洽场的方法结合了Yamamoto(Yamamoto,TJ Chem。Phys。2008,129,244104)开发的QM / MM自由能几何优化的平均场理论和用于更新胡等人介绍的MM分布。 (Hu,H。,等人,J.Chem.Phys.2008,128,034105),并且具有高计算效率,适合于探索广泛的蛋白质构象空间的反应自由能表面。使用Ewald求和技术改进对长距离静电(ES)相互作用的处理的计算效率使人们可以在其反应中心的自由能几何优化中考虑到整个酶蛋白的整体构象松弛。我们将该方法应用于南极嗜盐假单胞菌嗜冷α-淀粉酶底物复合物的酶促反应,并成功地进行了反应物和催化反应产物的几何优化,涉及与反应中心相邻的蛋白环的构象变化较大时间尺度达到亚微秒。我们发现,反应物和产物中的相邻环以不同的构象形成,并在反应中心产生催化性ES电势。

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