Conformational dynamics of the EGFR kinase domain reveals structural features involved in activation

蛋白激酶结构域 动力学(音乐) 领域(数学分析) 分子动力学 化学 生物物理学 计算生物学 细胞生物学 生物 生物化学 物理 计算化学 数学 突变体 基因 数学分析 声学
作者
Athanasios Papakyriakou,Dionisios Vourloumis,Fotini Tzortzatou‐Stathopoulou,Michael Karpusas
出处
期刊:Proteins [Wiley]
卷期号:76 (2): 375-386 被引量:29
标识
DOI:10.1002/prot.22353
摘要

Abstract The epidermal growth factor receptor (EGFR) has been the focus of intensive studies because of its importance in cancer research. Thus, a broader understanding of the molecular mechanism of activation of the EGFR kinase will have profound significance for the development of novel therapeutics. Numerous crystal structures of EGFR kinase, including the structure of the activating‐kinase dimer, have provided snapshots of the specific pathway. Herein, we performed unrestrained‐, as well as targeted‐molecular dynamics simulations based on these data, to gain further insight into the conformational changes responsible for activation. Comparison of the monomer‐ versus activating‐EGFR‐dimer simulations indicates that the dimerization is stabilizing structural elements associated with the activated state and predicts new salt‐bridge interactions involving activation‐loop residues that may also be associated with that state. Targeted molecular dynamics simulations of the inactive‐to‐active EGFR transition, as well as the reverse pathway, confirm the formation of conserved structural features of functional importance for the activity or stabilization of either conformation. Interestingly, simulations of the L834R mutant, which is associated with cancer, suggest that the structural basis of the activation induced by that mutation might be the ability of the mutated R834 residue to consecutively form salt bridges with neighboring acidic residues and cause destabilization of a hydrophobic cluster in the inactive state. Proteins 2009. © 2008 Wiley‐Liss, Inc.

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