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用于解决药物设计中生物电子等排体替代问题的量子力学-簇方法。

Quantum Mechanical-Cluster Approach to Solve the Bioisosteric Replacement Problem in Drug Design.

作者信息

Losev Timofey V, Gerasimov Igor S, Panova Maria V, Lisov Alexey A, Abdyusheva Yana R, Rusina Polina V, Zaletskaya Eugenia, Stroganov Oleg V, Medvedev Michael G, Novikov Fedor N

机构信息

N.D. Zelinsky Institute of Organic Chemistry of Russian Academy of Sciences, Leninsky prospect 47, 119991 Moscow, Russian Federation.

Department of Chemistry, Lomonosov Moscow State University, Leninskie Gory 1/3, 119991 Moscow, Russian Federation.

出版信息

J Chem Inf Model. 2023 Feb 27;63(4):1239-1248. doi: 10.1021/acs.jcim.2c01212. Epub 2023 Feb 10.

Abstract

Bioisosteres are molecules that differ in substituents but still have very similar shapes. Bioisosteric replacements are ubiquitous in modern drug design, where they are used to alter metabolism, change bioavailability, or modify activity of the lead compound. Prediction of relative affinities of bioisosteres with computational methods is a long-standing task; however, the very shape closeness makes bioisosteric substitutions almost intractable for computational methods, which use standard force fields. Here, we design a quantum mechanical (QM)-cluster approach based on the GFN2-xTB semi-empirical quantum-chemical method and apply it to a set of H → F bioisosteric replacements. The proposed methodology enables advanced prediction of biological activity change upon bioisosteric substitution of -H with -F, with the standard deviation of 0.60 kcal/mol, surpassing the ChemPLP scoring function (0.83 kcal/mol), and making QM-based ΔΔ estimation comparable to ∼0.42 kcal/mol standard deviation of experiment. The speed of the method and lack of tunable parameters makes it affordable in current drug research.

摘要

生物电子等排体是指那些取代基不同但形状非常相似的分子。生物电子等排体替代在现代药物设计中无处不在,用于改变代谢、改变生物利用度或修饰先导化合物的活性。用计算方法预测生物电子等排体的相对亲和力是一项长期任务;然而,正是形状的高度相似使得生物电子等排体替代对于使用标准力场的计算方法几乎难以处理。在此,我们基于GFN2-xTB半经验量子化学方法设计了一种量子力学(QM)簇方法,并将其应用于一组H→F生物电子等排体替代。所提出的方法能够对-H被-F生物电子等排体替代后的生物活性变化进行高级预测,标准偏差为0.60 kcal/mol,超过了ChemPLP评分函数(0.83 kcal/mol),并使基于QM的ΔΔ估计与实验的约0.42 kcal/mol标准偏差相当。该方法的速度和缺乏可调参数使其在当前药物研究中具有可行性。

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