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Guiding protein docking with geometric and evolutionary information

机译:用几何和进化信息指导蛋白质对接

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Structural modeling of molecular assemblies promises to improve our understanding of molecular interactions and biological function. Even when focusing on modeling structures of protein dimers from knowledge of monomeric native structure, docking two rigid structures onto one another entails exploring a large configurational space. This paper presents a novel approach for docking protein molecules and elucidating native-like configurations of protein dimers. The approach makes use of geometric hashing to focus the docking of monomeric units on geometrically complementary regions through rigid-body transformations. This geometry-based approach improves the feasibility of searching the combined configurational space. The search space is narrowed even further by focusing the sought rigid-body transformations around molecular surface regions composed of amino acids with high evolutionary conservation. This condition is based on recent findings, where analysis of protein assemblies reveals that many functional interfaces are significantly conserved throughout evolution. Different search procedures are employed in this work to search the resulting narrowed configurational space. A proof-of-concept energy-guided probabilistic search procedure is also presented. Results are shown on a broad list of 18 protein dimers and additionally compared with data reported by other labs. Our analysis shows that focusing the search around evolutionary-conserved interfaces results in lower lRMSDs.
机译:分子装配体的结构建模有望增进我们对分子相互作用和生物学功能的了解。即使当从单体天然结构的知识着眼于蛋白质二聚体的结构建模时,将两个刚性结构对接也需要探索较大的构型空间。本文提出了一种对接蛋白质分子并阐明蛋白质二聚体天然结构的新颖方法。该方法利用几何哈希将单体单元的对接通过刚体变换集中在几何互补区域上。这种基于几何的方法提高了搜索组合配置空间的可行性。通过将寻求的刚体转化集中在具有高度进化保守性的氨基酸组成的分子表面区域周围,搜索空间甚至进一步缩小。这种情况基于最近的发现,其中对蛋白质装配体的分析表明,在整个进化过程中许多功能性界面都得到了显着保守。在这项工作中采用了不同的搜索过程来搜索结果缩小的配置空间。还提出了概念验证的能量引导概率搜索程序。结果显示在18个蛋白质二聚体的广泛列表中,并与其他实验室报告的数据进行了比较。我们的分析表明,将搜索集中在进化保守的接口周围会降低lRMSD。

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