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Lead Optimization Mapper: Automating free energy calculations for lead optimization

机译:潜在客户优化映射器:自动化自由能计算以优化潜在客户

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摘要

Alchemical free energy calculations hold increasing promise as an aid to drug discovery efforts. However, applications of these techniques in discovery projects have been relatively few, partly because of the difficulty of planning and setting up calculations. Here, we introduce Lead Optimization Mapper, LOMAP, an automated algorithm to plan efficient relative free energy calculations between potential ligands within a substantial library of perhaps hundreds of compounds. In this approach, ligands are first grouped by structural similarity primarily based on the size of a (loosely defined) maximal common substructure, and then calculations are planned within and between sets of structurally related compounds. An emphasis is placed on ensuring that relative free energies can be obtained between any pair of compounds without combining the results of too many different relative free energy calculations (to avoid accumulation of error) and by providing some redundancy to allow for the possibility of error and consistency checking and provide some insight into when results can be expected to be unreliable. The algorithm is discussed in detail and a Python implementation, based on both Schrödinger's and OpenEye's APIs, has been made available freely under the BSD license.
机译:炼金术的自由能计算作为药物开发工作的一种手段具有越来越大的前景。但是,这些技术在发现项目中的应用相对较少,部分原因是计划和设置计算的难度。在这里,我们介绍了Lead Optimization Mapper(LOMAP),这是一种自动算法,可以规划可能包含数百种化合物的大量文库中潜在配体之间的有效相对自由能计算。在这种方法中,配体首先主要基于(宽松定义的)最大共同子结构的大小按结构相似性分组,然后计划在结构相关化合物的组内和组之间进行计算。重点放在确保可以在任何一对化合物之间获得相对自由能,而不必将太多不同相对自由能计算的结果合并在一起(以避免误差的累积),并通过提供一些冗余以允许出现误差和一致性检查并提供一些洞察力,以了解何时可以预期结果不可靠。对该算法进行了详细讨论,并且基于Schrödinger和OpenEye API的Python实现已在BSD许可下免费提供。

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