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Evaluation of an inverse molecular design algorithm in a model binding site.

机译:在模型结合位点评估反向分子设计算法。

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Computational molecular design is a useful tool in modern drug discovery. Virtual screening is an approach that docks and then scores individual members of compound libraries. In contrast to this forward approach, inverse approaches construct compounds from fragments, such that the computed affinity, or a combination of relevant properties, is optimized. We have recently developed a new inverse approach to drug design based on the dead-end elimination and A* algorithms employing a physical potential function. This approach has been applied to combinatorially constructed libraries of small-molecule ligands to design high-affinity HIV-1 protease inhibitors (Altman et al., J Am Chem Soc 2008;130:6099-6013). Here we have evaluated the new method using the well-studied W191G mutant of cytochrome c peroxidase. This mutant possesses a charged binding pocket and has been used to evaluate other design approaches. The results show that overall the new inverse approach does an excellent job of separating binders from nonbinders. For a few individual cases, scoring inaccuracies led to false positives. The majority of these involve erroneous solvation energy estimation for charged amines, anilinium ions, and phenols, which has been observed previously for a variety of scoring algorithms. Interestingly, although inverse approaches are generally expected to identify some but not all binders in a library, due to limited conformational searching, these results show excellent coverage of the known binders while still showing strong discrimination of the nonbinders.
机译:计算分子设计是现代药物发现中的有用工具。虚拟筛选是一种对接然后对化合物库中各个成员进行评分的方法。与这种正向方法相反,反向方法是从片段构造化合物,从而优化了计算的亲和力或相关属性的组合。我们最近开发了一种新的药物设计逆向方法,该方法基于死胡同和采用物理势函数的A *算法。该方法已经应用于组合构建的小分子配体的文库,以设计高亲和力的HIV-1蛋白酶抑制剂(Altman等人,J Am Chem Soc 2008; 130:6099-6013)。在这里,我们使用细胞色素C过氧化物酶的W191G突变株进行了研究,评估了该新方法。该突变体具有带电的结合口袋,已被用于评估其他设计方法。结果表明,总体而言,新的反向方法在将粘合剂与非粘合剂分离方面做得很好。在个别情况下,评分不正确会导致误报。其中大多数涉及带电荷的胺,苯胺离子和苯酚的错误溶剂化能量估算,先前已在各种评分算法中观察到。有趣的是,尽管通常期望使用反向方法来识别文库中的一些而非全部粘合剂,但由于有限的构象搜索,这些结果显示了已知粘合剂的优异覆盖率,同时仍然显示出对非粘合剂的强烈区分。

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