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工程化激酶作为一种在体内对选定靶标进行磷酸化的工具。

Engineered kinases as a tool for phosphorylation of selected targets in vivo.

机构信息

Biozentrum, University of Basel, Basel, Switzerland.

MRC Laboratory for Molecular Cell Biology, University College London, London, UK.

出版信息

J Cell Biol. 2022 Oct 3;221(10). doi: 10.1083/jcb.202106179. Epub 2022 Sep 14.

Abstract

Reversible protein phosphorylation by kinases controls a plethora of processes essential for the proper development and homeostasis of multicellular organisms. One main obstacle in studying the role of a defined kinase-substrate interaction is that kinases form complex signaling networks and most often phosphorylate multiple substrates involved in various cellular processes. In recent years, several new approaches have been developed to control the activity of a given kinase. However, most of them fail to regulate a single protein target, likely hiding the effect of a unique kinase-substrate interaction by pleiotropic effects. To overcome this limitation, we have created protein binder-based engineered kinases that permit a direct, robust, and tissue-specific phosphorylation of fluorescent fusion proteins in vivo. We show the detailed characterization of two engineered kinases based on Rho-associated protein kinase (ROCK) and Src. Expression of synthetic kinases in the developing fly embryo resulted in phosphorylation of their respective GFP-fusion targets, providing for the first time a means to direct the phosphorylation to a chosen and tagged target in vivo. We presume that after careful optimization, the novel approach we describe here can be adapted to other kinases and targets in various eukaryotic genetic systems to regulate specific downstream effectors.

摘要

蛋白激酶通过可逆磷酸化作用来控制众多对多细胞生物的正常发育和稳态至关重要的过程。在研究特定激酶-底物相互作用的作用时,一个主要障碍是激酶形成复杂的信号网络,并且通常磷酸化涉及各种细胞过程的多个底物。近年来,已经开发出几种新的方法来控制特定激酶的活性。然而,它们中的大多数都无法调节单个蛋白质靶标,这可能通过多效性隐藏了独特的激酶-底物相互作用的效果。为了克服这一限制,我们创建了基于蛋白结合物的工程激酶,这些激酶允许在体内直接、稳健且组织特异性地磷酸化荧光融合蛋白。我们展示了两种基于 Rho 相关蛋白激酶 (ROCK) 和Src 的工程激酶的详细特征。在发育中的果蝇胚胎中表达合成激酶会导致其各自 GFP 融合靶标的磷酸化,这首次提供了一种在体内将磷酸化定向到所选和标记靶标的方法。我们推测,经过仔细优化,我们在这里描述的新方法可以适应各种真核遗传系统中的其他激酶和靶标,以调节特定的下游效应子。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/38e6/9477969/27c5c9ecd5c8/JCB_202106179_GA.jpg

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