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首页> 外文期刊>Frontiers in Molecular Biosciences >Improved Modeling of Peptide-Protein Binding Through Global Docking and Accelerated Molecular Dynamics Simulations
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Improved Modeling of Peptide-Protein Binding Through Global Docking and Accelerated Molecular Dynamics Simulations

机译:通过全局对接和加速的分子动力学模拟,改进了肽-蛋白质结合的建模

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摘要

Peptides mediate up to 40% of known protein-protein interactions in higher eukaryotes and play a key role in cellular signaling, protein trafficking, immunology and oncology. However, it is challenging to predict peptide-protein binding with conventional computational modeling approaches, due to slow dynamics and high peptide flexibility. Here, we present a prototype of the approach which combines global peptide docking using ClusPro PeptiDock and all-atom enhanced simulations using Gaussian accelerated molecular dynamics (GaMD). For three distinct model peptides, the lowest backbone root-mean-square deviations (RMSDs) of their bound conformations relative to X-ray structures obtained from PeptiDock were 3.3 ? – 4.8 ?, being medium quality predictions according to the Critical Assessment of PRediction of Interactions (CAPRI) criteria. GaMD simulations refined the peptide-protein complex structures with significantly reduced peptide backbone RMSDs of 0.6 ? – 2.7 ?, yielding two high quality (sub-angstrom) and one medium quality models. Furthermore, the GaMD simulations identified important low-energy conformational states and revealed the mechanism of peptide binding to the target proteins. Therefore, PeptiDock+GaMD is a promising approach for exploring peptide-protein interactions.
机译:在高等真核生物中,肽最多可介导40%的已知蛋白质-蛋白质相互作用,并在细胞信号传导,蛋白质运输,免疫学和肿瘤学中发挥关键作用。但是,由于动力学缓慢和肽的灵活性高,用常规的计算建模方法预测肽与蛋白质的结合具有挑战性。在这里,我们介绍了该方法的原型,该方法结合了使用ClusPro PeptiDock进行的全局肽对接和使用高斯加速的分子动力学(GaMD)的全原子增强模拟。对于三种不同的模型肽,其结合构象相对于从PeptiDock获得的X射线结构的最低骨架根均方差(RMSDs)为3.3? – 4.8?,是根据交互作用预测的关键评估(CAPRI)标准进行的中等质量预测。 GaMD模拟使肽-蛋白质复合物结构细化,使肽主链RMSD大大降低了0.6? – 2.7?,产生两个高质量(亚埃)和一个中等质量的模型。此外,GaMD模拟确定了重要的低能构象状态,并揭示了肽与靶蛋白结合的机理。因此,PeptiDock + GaMD是探索肽-蛋白质相互作用的有前途的方法。

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