Program in Molecular and Cellular Biophysics, University of North Carolina at Chapel Hill, Chapel Hill, NC 27599, USA.
Structure. 2011 Dec 7;19(12):1837-45. doi: 10.1016/j.str.2011.09.014.
Protein-peptide interactions play important roles in many cellular processes, including signal transduction, trafficking, and immune recognition. Protein conformational changes upon binding, an ill-defined peptide binding surface, and the large number of peptide degrees of freedom make the prediction of protein-peptide interactions particularly challenging. To address these challenges, we perform rapid molecular dynamics simulations in order to examine the energetic and dynamic aspects of protein-peptide binding. We find that, in most cases, we recapitulate the native binding sites and native-like poses of protein-peptide complexes. Inclusion of electrostatic interactions in simulations significantly improves the prediction accuracy. Our results also highlight the importance of protein conformational flexibility, especially side-chain movement, which allows the peptide to optimize its conformation. Our findings not only demonstrate the importance of sufficient sampling of the protein and peptide conformations, but also reveal the possible effects of electrostatics and conformational flexibility on peptide recognition.
蛋白质-肽相互作用在许多细胞过程中发挥着重要作用,包括信号转导、运输和免疫识别。结合时蛋白质构象的变化、肽结合表面定义不明确以及大量肽自由度使得蛋白质-肽相互作用的预测特别具有挑战性。为了解决这些挑战,我们进行了快速分子动力学模拟,以检查蛋白质-肽结合的能量和动态方面。我们发现,在大多数情况下,我们可以再现蛋白质-肽复合物的天然结合位点和类似天然的构象。在模拟中包含静电相互作用显著提高了预测的准确性。我们的结果还突出了蛋白质构象灵活性的重要性,特别是侧链运动,它允许肽优化其构象。我们的发现不仅证明了充分采样蛋白质和肽构象的重要性,还揭示了静电和构象灵活性对肽识别的可能影响。