首页> 外文会议>The Fifth International Conference on Frontier of Computer Science and Technology >The Geometric and Electrostatic Properties of Binding Cavities and Their Usage in Protein-Ligand Docking
【24h】

The Geometric and Electrostatic Properties of Binding Cavities and Their Usage in Protein-Ligand Docking

机译:结合腔的几何和静电性质及其在蛋白配体对接中的用途

获取原文

摘要

A scoring function that quantifies the strength of protein-ligand interaction represents our best understanding of the physics of the interaction, and plays a fundamental role in the design of any protein-ligand docking algorithm. From the viewpoint of physics, the interaction is electrodynamic in nature but is commonly though artificially separated into electrostatic and van der Waals (VDW)interactions. A typical scoring function may include other empirical terms with no clear physical meaning. Since the interaction occurs in bulk solution, entropy also contributes importantly. Solvation energy accounts for, to a certain degree, the change in entropy. From the algorithmic viewpoint, the mathematical form of a scoring function determines how to conduct the search for best ligand poses that maximize the protein-ligand affinity as specified by the scoring function. Here we report a preliminary version of a novel protein-ligand docking algorithm that is built upon our unique transformation of electrostatic and VDW interactions. A smooth 2Dmanifold that is diffeomorphic to a patch in $S^2$ is constructed to capture the essence of the intermolecular VDW interaction. Electrostatic interaction in solution is represented by a correlation between the electrostatic potential and atom type that was observed by us after an analysis of a diverse set of known protein-ligand complex structures. Our algorithm differs greatly from other docking algorithms thank to the unique approach by which the geometric and electrostatic properties have been used to prune the search space. An implementation of the algorithm shows its accuracy and efficiency. The algorithm promises to be especially valuable for the docking of fragments, small compounds and for lead optimization, as well as for virtual screening.
机译:量化蛋白质-配体相互作用强度的评分函数代表了我们对相互作用的物理学的最佳理解,并且在任何蛋白质-配体对接算法的设计中都起着根本性的作用。从物理学的角度来看,这种相互作用本质上是电动的,但是通常被人为地分为静电和范德华(VDW)相互作用。典型的评分功能可能包括其他没有明确物理意义的经验术语。由于相互作用发生在本体溶液中,因此熵也很重要。溶剂化能量在一定程度上解释了熵的变化。从算法的角度来看,评分函数的数学形式决定了如何进行最佳配体姿势的搜索,以使评分函数指定的蛋白质-配体亲和力最大化。在这里,我们报告了一种新颖的蛋白质-配体对接算法的初步版本,该算法建立在我们对静电和VDW相互作用的独特转化上。构建了一个平滑的2D流形,该2D流形与$ S ^ 2 $中的补丁不同,可以捕获分子间VDW交互作用的本质。溶液中的静电相互作用以静电势与原子类型之间的相关性表示,我们通过分析各种已知的蛋白质-配体复杂结构后观察到了这种相关性。由于采用了几何和静电特性来修剪搜索空间的独特方法,我们的算法与其他对接算法有很大不同。该算法的实现显示了其准确性和效率。该算法有望对片段,小化合物的对接和前导优化以及虚拟筛选特别有价值。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号