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蛋白质对接的当前和未来挑战与局限。

Present and future challenges and limitations in protein-protein docking.

机构信息

Barcelona Supercomputing Center, Jordi Girona 29, Barcelona, Spain.

出版信息

Proteins. 2010 Jan;78(1):95-108. doi: 10.1002/prot.22564.

Abstract

The study of protein-protein interactions that are involved in essential life processes can largely benefit from the recent upraising of computational docking approaches. Predicting the structure of a protein-protein complex from their separate components is still a highly challenging task, but the field is rapidly improving. Recent advances in sampling algorithms and rigid-body scoring functions allow to produce, at least for some cases, high quality docking models that are perfectly suitable for biological and functional annotations, as it has been shown in the CAPRI blind tests. However, important challenges still remain in docking prediction. For example, in cases with significant mobility, such as multidomain proteins, fully unrestricted rigid-body docking approaches are clearly insufficient so they need to be combined with restraints derived from domain-domain linker residues, evolutionary information, or binding site predictions. Other challenging cases are weak or transient interactions, such as those between proteins involved in electron transfer, where the existence of alternative bound orientations and encounter complexes complicates the binding energy landscape. Docking methods also struggle when using in silico structural models for the interacting subunits. Bringing these challenges to a practical point of view, we have studied here the limitations of our docking and energy-based scoring approach, and have analyzed different parameters to overcome the limitations and improve the docking performance. For that, we have used the standard benchmark and some practical cases from CAPRI. Based on these results, we have devised a protocol to estimate the success of a given docking run.

摘要

研究涉及基本生命过程的蛋白质-蛋白质相互作用,可以从最近兴起的计算对接方法中受益匪浅。从它们的单独成分预测蛋白质-蛋白质复合物的结构仍然是一项极具挑战性的任务,但该领域正在迅速发展。采样算法和刚体评分函数的最新进展使得至少在某些情况下可以生成高质量的对接模型,这些模型非常适合进行生物学和功能注释,正如 CAPRI 盲测所表明的那样。然而,对接预测仍然存在重要的挑战。例如,在存在明显运动性的情况下,如多结构域蛋白,完全不受限制的刚体对接方法显然是不够的,因此需要将其与来自结构域-结构域连接残基、进化信息或结合位点预测的约束相结合。其他具有挑战性的情况是弱或瞬时相互作用,例如涉及电子转移的蛋白质之间的相互作用,其中替代结合取向和遭遇复合物的存在使结合能景观复杂化。对接方法在使用相互作用亚基的计算结构模型时也会遇到困难。从实际角度考虑这些挑战,我们在这里研究了我们的对接和基于能量评分方法的局限性,并分析了不同的参数来克服局限性并提高对接性能。为此,我们使用了标准基准和 CAPRI 的一些实际案例。基于这些结果,我们设计了一种协议来估计给定对接运行的成功概率。

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