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炼金术自由能模拟在区分GPCR配体效能方面的潜在应用

Potential Application of Alchemical Free Energy Simulations to Discriminate GPCR Ligand Efficacy.

作者信息

Lee Hui Sun, Seok Chaok, Im Wonpil

机构信息

Department of Molecular Biosciences and Center for Computational Biology, The University of Kansas , 2030 Becker Drive, Lawrence, Kansas 66047, United States.

Department of Chemistry, Seoul National University , Seoul 151-747, Republic of Korea.

出版信息

J Chem Theory Comput. 2015 Mar 10;11(3):1255-66. doi: 10.1021/ct5008907.

Abstract

G protein-coupled receptors (GPCRs) play fundamental roles in physiological processes by modulating diverse signaling pathways and thus have been one of the most important drug targets. Based on the fact that GPCR-mediated signaling is modulated in a ligand-specific manner such as agonist, inverse agonist, and neutral antagonist (termed ligand efficacy), quantitative characterization of the ligand efficacy is essential for rational design of selective modulators for GPCR targets. As experimental approaches for this purpose are time-, cost-, and labor-intensive, computational tools that can systematically predict GPCR ligand efficacy can have a big impact on GPCR drug design. Here, we have performed free energy perturbation molecular dynamics simulations to calculate absolute binding free energy of an inverse agonist, a neutral antagonist, and an agonist to β2-adrenergic receptor (β2-AR) active and inactive states, respectively, in explicit lipid bilayers. Relatively short alchemical free energy calculations reveal that both the time-series of the total binding free energy and decomposed energy contributions can be used as relevant physical properties to discriminate β2-AR ligand efficacy. This study illustrates a merit of the current approach over simple, fast docking calculations or highly expensive millisecond-time scale simulations.

摘要

G蛋白偶联受体(GPCRs)通过调节多种信号通路在生理过程中发挥着基础性作用,因此一直是最重要的药物靶点之一。基于GPCR介导的信号传导是以配体特异性方式(如激动剂、反向激动剂和中性拮抗剂,称为配体效能)进行调节这一事实,对配体效能进行定量表征对于合理设计GPCR靶点的选择性调节剂至关重要。由于用于此目的的实验方法耗时、成本高且劳动强度大,能够系统预测GPCR配体效能的计算工具可能会对GPCR药物设计产生重大影响。在此,我们进行了自由能微扰分子动力学模拟,以分别计算反向激动剂、中性拮抗剂和激动剂在明确的脂质双层中与β2 - 肾上腺素能受体(β2 - AR)活性和非活性状态的绝对结合自由能。相对较短的炼金术自由能计算表明,总结合自由能的时间序列和分解的能量贡献都可以用作区分β2 - AR配体效能的相关物理性质。本研究说明了当前方法相对于简单、快速对接计算或极其昂贵的毫秒级时间尺度模拟的优点。

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