Efficient Computational Strategies of the Cluster-in-Molecule Local Correlation Approach for Interaction Energies of Large Host-Guest Systems.

IF 5.5 1区 化学 Q2 CHEMISTRY, PHYSICAL Journal of Chemical Theory and Computation Pub Date : 2025-03-25 Epub Date: 2025-03-07 DOI:10.1021/acs.jctc.5c00020
Hua Feng, Yang Zheng, Yuqi Wang, Shuhua Li, Wei Li
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Abstract

We propose a heterogeneously accelerated reduced cluster-in-molecule (CIM) local correlation approach for calculating host-guest interaction energies. The essence of this method is to compute only the clusters that make significant contributions to the interaction energies while approximately neglecting those clusters with smaller contributions. Benchmark calculations at the CIM resolution-of-identity second-order Mo̷ller-Plesset perturbation (CIM-RI-MP2) or CIM spin-component-scaled RI-MP2 (CIM-SCS-RI-MP2) levels, involving three medium-sized protein-ligand structures, demonstrate that the reduced CIM method achieves over 48% time savings without compromising accuracy, as the interaction energy error remains within 0.5 kcal/mol compared to the full CIM method. To further enhance cluster computation efficiency, we developed a heterogeneous parallel version of the CIM-(SCS-)RI-MP2 method. It achieves over 93% internode parallel efficiency and over 98% multi-GPU card parallel efficiency for the tested large complexes. Ultimately, the hardware-accelerated reduced CIM-(SCS-)RI-MP2 method is applied to calculate the interaction energies of six protein-ligand systems, ranging from 913 to 1425 atoms. Remarkably, the method requires only 4.3-22.8% of the clusters to achieve accurate results, and under the condition of using only a single node, the wall time is within 2 days. Additionally, the reduced CIM domain-based local pair natural orbital coupled cluster with singles, doubles, and perturbative triples [CIM-DLPNO-CCSD(T)] method is successfully applied to the calculation of a 1425-atom protein-ligand system. These computations demonstrate the capability of a specific electronic structure to accurately calculate interaction energies for large host-guest systems.

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大型主-客体系统相互作用能的分子内簇局部相关方法的高效计算策略。
我们提出了一种计算主-客体相互作用能的异质加速还原团簇-分子(CIM)局部相关方法。该方法的实质是只计算对相互作用能量贡献较大的簇,而近似忽略贡献较小的簇。在CIM分辨率-恒等二阶Mo - ller-Plesset摄动(CIM-RI-MP2)或CIM自旋组件尺度RI-MP2 (CIM- scs -RI-MP2)水平上,涉及三种中等大小的蛋白质配体结构的基准计算表明,简化的CIM方法在不影响精度的情况下节省了48%以上的时间,因为与完整的CIM方法相比,相互作用能误差保持在0.5 kcal/mol以内。为了进一步提高集群计算效率,我们开发了CIM-(SCS-)RI-MP2方法的异构并行版本。在测试的大型综合体中,节点间并行效率达到93%以上,多gpu卡并行效率达到98%以上。最后,应用硬件加速的还原CIM-(SCS-)RI-MP2方法计算了6个蛋白质配体体系的相互作用能,范围从913到1425个原子。值得注意的是,该方法只需要4.3% -22.8%的聚类就可以获得准确的结果,并且在仅使用单个节点的情况下,wall time在2天以内。此外,将基于CIM结构域的局部对自然轨道偶团单双微扰三元组[CIM- dlpno - ccsd (T)]方法成功地应用于1425个原子的蛋白质配体体系的计算。这些计算证明了特定电子结构精确计算大型主客体系统相互作用能的能力。
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来源期刊
Journal of Chemical Theory and Computation
Journal of Chemical Theory and Computation 化学-物理:原子、分子和化学物理
CiteScore
9.90
自引率
16.40%
发文量
568
审稿时长
1 months
期刊介绍: The Journal of Chemical Theory and Computation invites new and original contributions with the understanding that, if accepted, they will not be published elsewhere. Papers reporting new theories, methodology, and/or important applications in quantum electronic structure, molecular dynamics, and statistical mechanics are appropriate for submission to this Journal. Specific topics include advances in or applications of ab initio quantum mechanics, density functional theory, design and properties of new materials, surface science, Monte Carlo simulations, solvation models, QM/MM calculations, biomolecular structure prediction, and molecular dynamics in the broadest sense including gas-phase dynamics, ab initio dynamics, biomolecular dynamics, and protein folding. The Journal does not consider papers that are straightforward applications of known methods including DFT and molecular dynamics. The Journal favors submissions that include advances in theory or methodology with applications to compelling problems.
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