Yang Ying, Liu Huanxiang, Yao Xiaojun
State Key Laboratory of Applied Organic Chemistry and Department of Chemistry, Lanzhou University, Lanzhou 730000, China.
Mol Biosyst. 2012 Aug;8(8):2106-18. doi: 10.1039/c2mb25042j. Epub 2012 May 30.
The formation of a p38 MAPK and MAPK-activated protein kinase 2 (MK2) signaling complex is physiologically relevant to cellular responses such as the proinflammatory cytokine production. The interaction between p38α isoform and MK2 is of great importance for this signaling. In this study, molecular dynamics simulation and binding free energy calculation were performed on the MK2-p38α signaling complex to investigate the protein-protein interaction between the two proteins. Dynamic domain motion analyses were performed to analyze the conformational changes between the unbound and bound states of proteins during the interaction. The activation loop, αF-I helices, and loops among α helices in the C-lobe of MK2 are found to be highly flexible and exhibit significant changes upon p38α binding. The results also show that after the binding of p38α, the N- and C-terminal domains of MK2 display an opening and twisting motion centered on the activation loop. The molecular mechanics Poisson-Boltzmann and generalized-Born surface area (MM-PB/GBSA) methods were used to calculate binding free energies between MK2 and p38α. The analysis of the components of binding free energy calculation indicates that the van der Waals interaction and the nonpolar solvation energy provide the driving force for the binding process, while the electrostatic interaction contributes critically to the specificity, rather than to MK2-p38α binding affinity. The contribution of each residue at the interaction interface to the binding affinity of MK2 with p38α was also analyzed by free energy decomposition. Several important residues responsible for the protein-protein interaction were also identified.
p38丝裂原活化蛋白激酶(MAPK)和MAPK活化蛋白激酶2(MK2)信号复合物的形成在生理上与诸如促炎细胞因子产生等细胞反应相关。p38α亚型与MK2之间的相互作用对于该信号传导至关重要。在本研究中,对MK2-p38α信号复合物进行了分子动力学模拟和结合自由能计算,以研究这两种蛋白质之间的蛋白质-蛋白质相互作用。进行了动态结构域运动分析,以分析蛋白质在相互作用过程中未结合状态和结合状态之间的构象变化。发现MK2的C-叶中的激活环、αF-I螺旋以及α螺旋之间的环具有高度灵活性,并且在p38α结合后表现出显著变化。结果还表明,在p38α结合后,MK2的N-和C-末端结构域围绕激活环呈现打开和扭曲运动。使用分子力学泊松-玻尔兹曼和广义玻恩表面积(MM-PB/GBSA)方法计算MK2和p38α之间的结合自由能。结合自由能计算成分分析表明,范德华相互作用和非极性溶剂化能为结合过程提供驱动力,而静电相互作用对特异性起关键作用,而非对MK2-p38α结合亲和力起关键作用。还通过自由能分解分析了相互作用界面处每个残基对MK2与p38α结合亲和力的贡献。还鉴定了几个负责蛋白质-蛋白质相互作用的重要残基。