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Computational Proteomics of Biomolecular Interactions in Sequence and Structure Space of the Tyrosine Kinome: Evolutionary Constraints and Protein Conformational Selection Determine Binding Signatures of Cancer Drugs

机译:酪氨酸Kinome序列和结构空间的生物分子相互作用的计算蛋白质组学:进化约束和蛋白质构象选择确定癌症药物的结合签名

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The emerging insights into kinase function and evolution combined with a rapidly growing number of crystal structures of protein kinases complexes have facilitated a comprehensive structural bioinformatics analysis of sequence-structure relationships in determining the binding function of protein tyrosine kinases. We have found that evolutionary signal derived solely from the tyrosine kinase sequence conservation can not be readily translated into the ligand binding phenotype. However, fingerprinting ligand-protein interactions using in silico profiling of inhibitor binding against protein tyrosine kinases crystal structures can detect a functionally relevant kinase binding signal and reconcile the existing experimental data. In silico proteomics analysis unravels mechanisms by which structural plasticity of the tyrosine kinases is linked with the conformational preferences of cancer drugs Imatinib and Dasatinib in achieving effective drug binding with a distinct spectrum of the tyrosine kinome. While Imatinib binding is highly sensitive to the activation state of the enzyme, the computed binding profile of Dasatinib is remarkably tolerant to the conformational state of ABL. A comprehensive study of evolutionary, structural, dynamic and energetic aspects of tyrosine kinases binding with clinically important class of inhibitors provides important insights into mechanisms of sequence-structure relationships in the kinome space and molecular basis of functional adaptability towards specific binding.
机译:进入激酶功能和进化与蛋白激酶复合物的快速生长数量的晶体结构的新兴的见解已经促进了确定蛋白质酪氨酸激酶的结合功能的序列结构关系的综合结构生物信息分析。我们发现,仅来自酪氨酸激酶序列保守的进化信号不能容易地转化为配体结合表型。然而,使用在抑制剂结合的抑制剂与蛋白质酪氨酸激酶晶体结构的硅析谱中的指纹配体 - 蛋白质相互作用可以检测功能上相关的激酶结合信号并协调现有的实验数据。在硅蛋白质组学分析中,酪氨酸激酶的结构可塑性与癌症药物伊马替尼和达斯替尼的构象偏好与酪氨酸Kinome的不同光谱相结合,通过该蛋白酶激酶的结构可塑性与酪氨酸碱的有效药物结合有关的机理。虽然伊马替尼结合对酶的激活状态非常敏感,但是达斯替尼的计算结合轮廓非常容忍于ABL的构象状态。综合研究酪氨酸激酶与临床上重要阶级抑制剂结合的进化,结构,动态和能量方面的研究提供了重要的见解,该探讨了Kinome空间中序列结构关系的机制和朝向特异性结合的功能适应性的分子基础。

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