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Compound Ranking Based on Fuzzy Three-DimensionalSimilarity Improves the Performanceof Docking into Homology Models of G-Protein-Coupled Receptors

机译:基于模糊三维的复合排序相似性提高性能对与G蛋白偶联受体同源性模型的研究

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摘要

Ligand docking into homology models of G-protein-coupled receptors (GPCRs) is a widely used approach in computational compound screening. The generation of “double-hypothetical” models of ligand–target complexes has intrinsic accuracy limitations that further complicate compound ranking and selection compared to those of X-ray structures. Given these uncertainties, we have explored “fuzzy 3D similarity” between hypothetical binding modes of known ligands in homology models and docking poses of database compounds as an alternative to conventional scoring schemes. Therefore, GPCR homology models at varying accuracy levels were generated and used for docking. Increases in recall performance were observed for fuzzy 3D similarity ranking using single or multiple ligand poses compared to that of conventional scoring functions and interaction fingerprints. Fuzzy similarity ranking was also successfully applied to docking into an external model of a GPCR for which no experimental structure is currently available. Taken together, our results indicate that the use of putative ligand poses, albeit approximate at best,increases the odds of identifying active compounds in docking screensof GPCR homology models.
机译:配体对接至G蛋白偶联受体(GPCR)的同源性模型是计算化合物筛选中广泛使用的方法。配体-目标配合物的“双假设”模型的生成具有固有的精度局限性,与X射线结构相比,这进一步使化合物的排名和选择更加复杂。考虑到这些不确定性,我们探索了同源性模型中已知配体的假设结合模式与数据库化合物对接位姿之间的“模糊3D相似性”,以作为传统评分方案的替代方法。因此,生成了不同准确度水平的GPCR同源性模型,并将其用于对接。与传统的评分功能和交互指纹相比,使用单个或多个配体姿势进行的模糊3D相似性排名观察到召回性能的提高。模糊相似性排序也已成功应用于对接目前尚无实验结构的GPCR外部模型。两者合计,我们的结果表明,假定的配体姿势的使用虽然最多不过是近似的,增加了在对接筛查中鉴定活性化合物的几率GPCR同源性模型。

著录项

  • 期刊名称 ACS Omega
  • 作者单位
  • 年(卷),期 2017(2),6
  • 年度 2017
  • 页码 2583–2592
  • 总页数 10
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 关键词

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