Kung Jennifer E, Jura Natalia
Cardiovascular Research Institute, University of California, San Francisco, San Francisco, CA 94158, USA.
Cardiovascular Research Institute, University of California, San Francisco, San Francisco, CA 94158, USA; Department of Cellular and Molecular Pharmacology, University of California, San Francisco, San Francisco, CA 94158, USA.
Structure. 2016 Jan 5;24(1):7-24. doi: 10.1016/j.str.2015.10.020.
Protein kinases are known primarily for their ability to phosphorylate protein substrates, which constitutes an essential biological process. Recently, compelling evidence has accumulated that the functions of many protein kinases extend beyond phosphorylation and include an impressive spectrum of non-catalytic roles, such as scaffolding, allosteric regulation, or even protein-DNA interactions. How the conserved kinase fold shared by all metazoan protein kinases can accomplish these diverse tasks in a specific and regulated manner is poorly understood. In this review, we analyze the molecular mechanisms supporting phosphorylation-independent signaling by kinases and attempt to identify common and unique structural characteristics that enable kinases to perform non-catalytic functions. We also discuss how post-translational modifications, protein-protein interactions, and small molecules modulate these non-canonical kinase functions. Finally, we highlight current efforts in the targeted design of small-molecule modulators of non-catalytic kinase functions, a new pharmacological challenge for which structural considerations are more important than ever.
蛋白激酶主要因其磷酸化蛋白质底物的能力而闻名,这是一个重要的生物学过程。最近,越来越多令人信服的证据表明,许多蛋白激酶的功能不仅限于磷酸化,还包括一系列令人印象深刻的非催化作用,如支架作用、变构调节,甚至蛋白质与DNA的相互作用。对于所有后生动物蛋白激酶共有的保守激酶结构域如何以特定且受调控的方式完成这些不同任务,我们了解甚少。在本综述中,我们分析了支持激酶非磷酸化依赖性信号传导的分子机制,并试图确定使激酶能够执行非催化功能的共同和独特结构特征。我们还讨论了翻译后修饰、蛋白质-蛋白质相互作用和小分子如何调节这些非经典激酶功能。最后,我们强调了目前在针对非催化激酶功能的小分子调节剂进行靶向设计方面所做的努力,这是一个新的药理学挑战,在这个挑战中,结构方面的考虑比以往任何时候都更加重要。