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inSARa: Intuitive and Interactive SAR Interpretation by Reduced Graphs and Hierarchical MCS-Based Network Navigation

机译:inSARa:通过精简图和基于MCS的分层网络导航直观直观地进行SAR解释

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摘要

The analysis of Structure?Activity-Relationships(SAR) of small molecules is a fundamental task in drug discovery. Although a large number of methods are already published, there is still a strong need for novel intuitive approaches. The inSARa (intuitive networks for Structure- Activity Relationships analysis) method introduced herein takes advantage of the synergistic combination of reduced graphs (RG) and the intuitive maximum common substructure(MCS) concept. The main feature of the inSARa concept is a hierarchical network structure of clearly defined substructure relationships based on common pharmacophoric features. Thus, straightforward SAR interpretation is possible by interactive network navigation. When focusing on a set of active molecules at one single target, the resulting inSARa networks are shown to be valuable for various essential tasks in SAR analysis, such as the identification of activity cliffs or "activity switches", bioisosteric exchanges, common pharmacophoric features, or "SAR hotspots".
机译:小分子的结构-活性关系(SAR)分析是药物开发中的一项基本任务。尽管已经发布了大量方法,但是仍然强烈需要新颖的直观方法。本文介绍的inSARa(用于结构活动关系分析的直观网络)方法利用了简化图(RG)和直观的最大通用子结构(MCS)概念的协同组合。 inSARa概念的主要特征是基于常见药效学特征的清晰定义的子结构关系的分层网络结构。因此,通过交互式网络导航可以直接进行SAR解释。当着眼于单个靶标上的一组活性分子时,所得的inSARa网络对于SAR分析中的各种基本任务具有重要价值,例如识别活性悬崖或“活性开关”,生物等位交换,常见药效学特征,或“ SAR热点”。

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