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SAMPL6 blind predictions of water-octanol partition coefficients using nonequilibrium alchemical approaches

机译:SAMPL6使用非基准炼金术方法的水 - 辛醇分配系数的盲预测

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摘要

In this paper, we compute, by means of a non equilibrium alchemical technique, the water-octanol partition coefficients (LogP) for a series of drug-like compounds in the context of the SAMPL6 challenge initiative. Our blind predictions are based on three of the most popular non-polarizable force fields, CGenFF, GAFF2, and OPLS-AA and are critically compared to other MD-based predictions produced using free energy perturbation or thermodynamic integration approaches with stratification. The proposed non-equilibrium method emerges has a reliable tool for LogP prediction, systematically being among the top performing submissions in all force field classes for at least two among the various indicators such as the Pearson or the Kendall correlation coefficients or the mean unsigned error. Contrarily to the widespread equilibrium approaches, that yielded apparently very disparate results in the SAMPL6 challenge, all our independent prediction sets, irrespective of the adopted force field and of the adopted estimate (unidirectional or bidirectional) are, mutually, from moderately to strongly correlated.
机译:在本文中,通过非平衡的缩略图技术,在SAMPL6攻击初始化的情况下,通过非平衡脱气技术,水 - 辛醇分配系数(LOMP)用于一系列药物样化合物。我们的盲预测基于最受欢迎的不可极化力领域,Cgenff,Gaff2和OPLS-AA中的三个,并且与使用具有分层的自由能量扰动或热力学集成方法产生的其他基于MD的预测相比。所提出的非平衡方法出现了用于LOGP预测的可靠工具,系统地是在诸如Pearson或KENDALL相关系数的各种指标中的至少两个中的所有力场类别中的顶部执行提交的顶部,诸如Pearson或Kendall相关系数或平均无符号错误。相反,与广泛的平衡方法相比,在SAMPL6挑战中产生显然非常不同的结果,我们的所有独立预测集,无论采用的力场和所采用的估计(单向或双向或单向或双向)都是相互互相相关的。

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