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首页> 外文期刊>Journal of chemical theory and computation: JCTC >A Multiscale Simulation Approach to Modeling Drug-Protein Binding Kinetics
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A Multiscale Simulation Approach to Modeling Drug-Protein Binding Kinetics

机译:一种模拟药物蛋白质结合动力学的多尺度模拟方法

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Drug-target binding kinetics has recently emerged as a sometimes critical determinant of in vivo efficacy and toxicity. Its rational optimization to improve potency or reduce side effects of drugs is, however, extremely difficult. Molecular simulations can play a crucial role in identifying features and properties of small ligands and their protein targets affecting the binding kinetics, but significant challenges include the long time scales involved in (un)binding events and the limited accuracy of empirical atomistic force fields (lacking, e.g., changes in electronic polarization). In an effort to overcome these hurdles, we propose a method that combines state-of-the-art enhanced sampling simulations and quantum mechanics/molecular mechanics (QM/MM) calculations at the BLYP/VDZ level to compute association free energy profiles and characterize the binding kinetics in terms of structure and dynamics of the transition state ensemble. We test our combined approach on the binding of the anticancer drug Imatinib to Src kinase, a well-characterized target for cancer therapy with a complex binding mechanism involving significant conformational changes. The results indicate significant changes in polarization along the binding pathways, which affect the predicted binding kinetics. This is likely to be of widespread importance in binding of ligands to protein targets.
机译:药物靶结合动力学最近被出现为有时临时效力和毒性的决定因素。然而,它的理性优化,以提高药物的效力或减少副作用是非常困难的。分子模拟可以在鉴定小配体的特征和性质及其影响结合动力学的蛋白质目标方面发挥至关重要的作用,但是重大挑战包括(联合国)结合事件中涉及的长时间尺度和经验原子原子领域的有限精度(缺乏,例如,电子极化的变化)。努力克服这些障碍,我们提出了一种方法,该方法将最先进的增强的采样模拟和量子力学/分子机械(QM / mm)计算在Blyp / VDZ水平上计算,以计算基本自由能量谱并表征在过渡状态集合的结构和动态方面的结合动力学。我们在抗癌药物伊马替尼对SRC激酶的结合中测试了我们的组合方法,具有涉及显着构象变化的复杂结合机制的良好特征的癌症治疗靶标。结果表明沿结合途径的极化变化显着变化,其影响预测的结合动力学。这可能具有广泛的重要性在配体与蛋白质靶标结合方面。

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