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蛋白质酪氨酸激酶的动态调控特征。

Dynamic regulatory features of the protein tyrosine kinases.

机构信息

Roy J. Carver Department of Biochemistry, Biophysics and Molecular Biology, Iowa State University, Ames, IA 50011, U.S.A.

出版信息

Biochem Soc Trans. 2019 Aug 30;47(4):1101-1116. doi: 10.1042/BST20180590. Epub 2019 Aug 8.

Abstract

The SRC, Abelson murine leukemia viral oncogene homolog 1, TEC and C-terminal SRC Kinase families of non-receptor tyrosine kinases (collectively the Src module kinases) mediate an array of cellular signaling processes and are therapeutic targets in many disease states. Crystal structures of Src modules kinases provide valuable insights into the regulatory mechanisms that control activation and generate a framework from which drug discovery can advance. The conformational ensembles visited by these multidomain kinases in solution are also key features of the regulatory machinery controlling catalytic activity. Measurement of dynamic motions within kinases substantially augments information derived from crystal structures. In this review, we focus on a body of work that has transformed our understanding of non-receptor tyrosine kinase regulation from a static view to one that incorporates how fluctuations in conformational ensembles and dynamic motions influence activation status. Regulatory dynamic networks are often shared across and between kinase families while specific dynamic behavior distinguishes unique regulatory mechanisms for select kinases. Moreover, intrinsically dynamic regions of kinases likely play important regulatory roles that have only been partially explored. Since there is clear precedence that kinase inhibitors can exploit specific dynamic features, continued efforts to define conformational ensembles and dynamic allostery will be key to combating drug resistance and devising alternate treatments for kinase-associated diseases.

摘要

Src、Abelson 鼠白血病病毒致癌基因同源物 1、TEC 和 C 端 SRC 激酶家族的非受体酪氨酸激酶(统称为Src 模块激酶)介导一系列细胞信号转导过程,是许多疾病状态的治疗靶点。Src 模块激酶的晶体结构为控制激活的调节机制提供了有价值的见解,并为药物发现提供了一个框架。这些多结构域激酶在溶液中访问的构象集合也是控制催化活性的调节机制的关键特征。激酶内动态运动的测量大大增加了源自晶体结构的信息。在这篇综述中,我们重点介绍了一系列工作,这些工作改变了我们对非受体酪氨酸激酶调节的理解,从静态视图转变为包含构象集合和动态运动如何影响激活状态的视图。调节动态网络通常在激酶家族之间共享,而特定的动态行为则区分了特定激酶的独特调节机制。此外,激酶的固有动态区域可能发挥着重要的调节作用,而这些作用只是部分得到了探索。由于有明确的先例表明激酶抑制剂可以利用特定的动态特征,因此继续努力定义构象集合和动态变构将是对抗药物耐药性和设计针对激酶相关疾病的替代治疗方法的关键。

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