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联合量子力学/分子力学、机器学习路径积分方法计算 RNA 切割反应中的自由能分布和动力学同位素效应。

Combined QM/MM, Machine Learning Path Integral Approach to Compute Free Energy Profiles and Kinetic Isotope Effects in RNA Cleavage Reactions.

机构信息

Laboratory for Biomolecular Simulation Research, Center for Integrative Proteomics Research and Department of Chemistry and Chemical Biology, Rutgers University, Piscataway, New Jersey 08854, United States.

出版信息

J Chem Theory Comput. 2022 Jul 12;18(7):4304-4317. doi: 10.1021/acs.jctc.2c00151. Epub 2022 Jun 16.

Abstract

We present a fast, accurate, and robust approach for determination of free energy profiles and kinetic isotope effects for RNA 2'-O-transphosphorylation reactions with inclusion of nuclear quantum effects. We apply a deep potential range correction (DPRc) for combined quantum mechanical/molecular mechanical (QM/MM) simulations of reactions in the condensed phase. The method uses the second-order density-functional tight-binding method (DFTB2) as a fast, approximate base QM model. The DPRc model modifies the DFTB2 QM interactions and applies short-range corrections to the QM/MM interactions to reproduce DFT (PBE0/6-31G*) QM/MM energies and forces. The DPRc thus enables both QM and QM/MM interactions to be tuned to high accuracy, and the QM/MM corrections are designed to smoothly vanish at a specified cutoff boundary (6 Å in the present work). The computational speed-up afforded by the QM/MM+DPRc model enables free energy profiles to be calculated that include rigorous long-range QM/MM interactions under periodic boundary conditions and nuclear quantum effects through a path integral approach using a new interface between the AMBER and i-PI software. The approach is demonstrated through the calculation of free energy profiles of a native RNA cleavage model reaction and reactions involving thio-substitutions, which are important experimental probes of the mechanism. The DFTB2+DPRc QM/MM free energy surfaces agree very closely with the PBE0/6-31G* QM/MM results, and it is vastly superior to the DFTB2 QM/MM surfaces with and without weighted thermodynamic perturbation corrections. O and S primary kinetic isotope effects are compared, and the influence of nuclear quantum effects on the free energy profiles is examined.

摘要

我们提出了一种快速、准确、稳健的方法,用于确定包含核量子效应的 RNA 2'-O-转磷酸化反应的自由能曲线和动力学同位素效应。我们在凝聚相反应的量子力学/分子力学(QM/MM)模拟中应用了深势能范围校正(DPRc)。该方法使用二阶密度泛函紧束缚方法(DFTB2)作为快速、近似的碱基 QM 模型。DPRc 模型修改了 DFTB2 QM 相互作用,并对 QM/MM 相互作用施加短程校正,以重现 DFT(PBE0/6-31G*)QM/MM 能量和力。因此,DPRc 能够同时对 QM 和 QM/MM 相互作用进行高精度调整,并且 QM/MM 校正设计为在指定的截止边界(在本工作中为 6 Å)处平滑消失。QM/MM+DPRc 模型提供的计算加速使我们能够计算包括严格的长程 QM/MM 相互作用和核量子效应的自由能曲线,方法是通过在 AMBER 和 i-PI 软件之间使用新接口,采用路径积分方法。通过计算天然 RNA 切割模型反应和涉及硫取代的反应的自由能曲线,证明了该方法的有效性,这些反应是对机制的重要实验探针。DFTB2+DPRc QM/MM 自由能表面与 PBE0/6-31G* QM/MM 结果非常吻合,与具有和不具有加权热力学微扰校正的 DFTB2 QM/MM 表面相比,它具有巨大的优势。比较了 O 和 S 主要动力学同位素效应,并检查了核量子效应对自由能曲线的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a6c1/9283286/07b5f7345472/nihms-1819383-f0002.jpg

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