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Coevolution at protein complex interfaces can be detected by the complementarity trace with important impact for predictive docking

机译:蛋白质复合物界面的协同进化可以通过互补性轨迹检测这对预测对接具有重要影响

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摘要

Protein surfaces are under significant selection pressure to maintain interactions with their partners throughout evolution. Capturing how selection pressure acts at the interfaces of protein–protein complexes is a fundamental issue with high interest for the structural prediction of macromolecular assemblies. We tackled this issue under the assumption that, throughout evolution, mutations should minimally disrupt the physicochemical compatibility between specific clusters of interacting residues. This constraint drove the development of the so-called Surface COmplementarity Trace in Complex History score (SCOTCH), which was found to discriminate with high efficiency the structure of biological complexes. SCOTCH performances were assessed not only with respect to other evolution-based approaches, such as conservation and coevolution analyses, but also with respect to statistically based scoring methods. Validated on a set of 129 complexes of known structure exhibiting both permanent and transient intermolecular interactions, SCOTCH appears as a robust strategy to guide the prediction of protein–protein complex structures. Of particular interest, it also provides a basic framework to efficiently track how protein surfaces could evolve while keeping their partners in contact.
机译:蛋白质表面承受着巨大的选择压力,以在整个进化过程中保持与其伴侣的相互作用。捕获选择压力如何作用于蛋白质-蛋白质复合物的界面是一个大问题,对大分子组装体的结构预测具有重大意义。我们在以下假设下解决了这个问题:在整个进化过程中,突变应最小程度地破坏相互作用残基的特定簇之间的物理化学相容性。该限制条件推动了所谓的“复杂历史中的表面竞争性痕迹”分数(SCOTCH)的发展,该分数被发现可以高效区分生物复合物的结构。 SCOTCH的性能不仅针对其他基于进化的方法(如保守性和协同进化分析)进行了评估,而且还针对基于统计的评分方法进行了评估。通过对129种已知结构的结构进行验证,这些结构具有永久性和短暂性的分子间相互作用,SCOTCH似乎是指导蛋白质-蛋白质复合物结构预测的可靠策略。特别令人感兴趣的是,它还提供了一个基本框架,可以有效地跟踪蛋白质表面如何演变,同时使其伴侣保持接触。

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