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Benchmarks and algorithms for protein-protein docking.

机译:蛋白质-蛋白质对接的基准和算法。

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摘要

Protein-protein interactions play a critical role in biological and biochemical systems. Understanding these interactions at an atomic level can aid redesign or modulation of the interaction network. Protein-protein docking attempts to predict the configuration of the binding partners in the complexes from their constituents. Recent rounds of the Critical Assessment of PRedicted Interactions (CAPRI), an international blind test of protein docking, indicate that in many cases high resolution protein-protein complex structures can be predicted.;The success of protein-protein docking has been mostly limited to rigid-body docking, while docking with large conformational changes is one of the major challenges for proteins with flexible loops in interfaces. Surface loops are often found in protein-protein interfaces and are prone to change conformation upon binding. Thus knowledge of loop flexibility and its incorporation in the docking process is useful. After a preliminary investigation of protein surface loop flexibility, I implemented the support vector machine (SVM) approach to distinguish mobile loops from stationary loops and achieved a prediction accuracy of 0.735 and an area under the receiver operating characteristic (ROC) curve of 0.76.;Our lab has demonstrated consistent successful results using the rigid-body docking algorithm ZDOCK and the reranking algorithm ZRANK. Based on my participation in CAPRI, it is critical to evaluate consistency between experimental literature information and ZDOCK results to deal with blind targets. In order to address this task, I introduce the concept of Atom Contact Frequencies (ACF) and applied this in CAPRI round 13-19. ACF enables to check agreement between ZDOCK predictions and experimental information from the literature for blind targets. Furthermore, ACF test results with the newly updated protein-protein docking benchmark 3.0 (precision: 0.67) and published CAPRI targets (precision: 0.9) demonstrate that ACF affords an independent assessment of protein-protein interfaces residue prediction.;To conclude, the development of the ACF has significantly improved the reliability of protein-protein docking methods, although its success is limited to rigid-body cases. The surface loop flexibility analysis provides important insights on the limitation of this rigid-body approximation, and the quantitative prediction of the loop mobility will aid the development of docking methods that include protein flexibility.
机译:蛋白质-蛋白质相互作用在生物和生化系统中起关键作用。在原子级别上理解这些相互作用可以帮助重新设计或调制相互作用网络。蛋白质-蛋白质对接试图根据其成分预测复合物中结合配偶体的构型。蛋白质对接的国际盲法最近一轮的PRedicted相互作用的关键评估(CAPRI)表明,在许多情况下可以预测高分辨率的蛋白质-蛋白质复合物结构;;蛋白质-蛋白质对接的成功主要限于刚体对接,而构象变化较大时,对具有柔性环界面的蛋白质而言,则是主要挑战之一。表面环经常在蛋白质-蛋白质界面中发现,并在结合时易于改变构象。因此,了解回路灵活性及其在对接过程中的结合是有用的。在对蛋白质表面环的灵活性进行了初步研究之后,我实现了支持向量机(SVM)方法,将移动环与固定环区分开,并获得了0.735的预测精度和0.76的接收器工作特性(ROC)曲线下的面积。我们的实验室使用刚体对接算法ZDOCK和重新排序算法ZRANK展示了一致的成功结果。基于我对CAPRI的参与,评估实验文献信息与ZDOCK结果之间的一致性以应对盲目目标至关重要。为了解决此任务,我介绍了原子接触频率(ACF)的概念,并将其应用于CAPRI第13-19轮。 ACF可以检查ZDOCK预测与文献中针对盲目目标的实验信息之间的一致性。此外,ACF的测试结果与最新更新的蛋白质-蛋白质对接基准3.0(精度:0.67)和已发布的CAPRI目标(精度:0.9)证明,ACF提供了对蛋白质-蛋白质界面残基预测的独立评估。尽管它的成功仅限于刚体情况,但ACF的设计已经大大提高了蛋白质-蛋白质对接方法的可靠性。表面环的柔韧性分析提供了有关这种刚体近似的局限性的重要见解,而环柔韧性的定量预测将有助于开发包括蛋白质柔韧性的对接方法。

著录项

  • 作者

    Hwang, Howook.;

  • 作者单位

    Boston University.;

  • 授予单位 Boston University.;
  • 学科 Chemistry Biochemistry.;Biology Bioinformatics.;Biophysics General.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 130 p.
  • 总页数 130
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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