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使用抗抑制剂突变体结合三重稳定同位素标记氨基酸定量磷酸蛋白质组学对酪蛋白激酶2底物进行化学遗传学验证

Chemical Genetic Validation of CSNK2 Substrates Using an Inhibitor-Resistant Mutant in Combination with Triple SILAC Quantitative Phosphoproteomics.

作者信息

Gyenis Laszlo, Menyhart Daniel, Cruise Edward S, Jurcic Kristina, Roffey Scott E, Chai Darren B, Trifoi Flaviu, Fess Sam R, Desormeaux Paul J, Núñez de Villavicencio Díaz Teresa, Rabalski Adam J, Zukowski Stephanie A, Turowec Jacob P, Pittock Paula, Lajoie Gilles, Litchfield David W

机构信息

Department of Biochemistry, Schulich School of Medicine & Dentistry, Western University, London, ON, Canada.

Department of Oncology, Schulich School of Medicine & Dentistry, Western University, London, ON, Canada.

出版信息

Front Mol Biosci. 2022 Jun 9;9:909711. doi: 10.3389/fmolb.2022.909711. eCollection 2022.

Abstract

Casein Kinase 2 (CSNK2) is an extremely pleiotropic, ubiquitously expressed protein kinase involved in the regulation of numerous key biological processes. Mapping the CSNK2-dependent phosphoproteome is necessary for better characterization of its fundamental role in cellular signalling. While ATP-competitive inhibitors have enabled the identification of many putative kinase substrates, compounds targeting the highly conserved ATP-binding pocket often exhibit off-target effects limiting their utility for definitive kinase-substrate assignment. To overcome this limitation, we devised a strategy combining chemical genetics and quantitative phosphoproteomics to identify and validate CSNK2 substrates. We engineered U2OS cells expressing exogenous wild type CSNK2A1 (WT) or a triple mutant (TM, V66A/H160D/I174A) with substitutions at residues important for inhibitor binding. These cells were treated with CX-4945, a clinical-stage inhibitor of CSNK2, and analyzed using large-scale triple SILAC (Stable Isotope Labelling of Amino Acids in Cell Culture) quantitative phosphoproteomics. In contrast to wild-type CSNK2A1, CSNK2A1-TM retained activity in the presence of CX-4945 enabling identification and validation of several CSNK2 substrates on the basis of their increased phosphorylation in cells expressing CSNK2A1-TM. Based on high conservation within the kinase family, we expect that this strategy can be broadly adapted for identification of other kinase-substrate relationships.

摘要

酪蛋白激酶2(CSNK2)是一种具有广泛多效性、在全身表达的蛋白激酶,参与众多关键生物学过程的调控。绘制CSNK2依赖性磷酸化蛋白质组图谱对于更好地表征其在细胞信号传导中的基本作用至关重要。虽然ATP竞争性抑制剂已使许多假定的激酶底物得以鉴定,但靶向高度保守的ATP结合口袋的化合物往往表现出脱靶效应,限制了它们在确定激酶-底物关系方面的效用。为克服这一限制,我们设计了一种结合化学遗传学和定量磷酸化蛋白质组学的策略来鉴定和验证CSNK2底物。我们构建了表达外源性野生型CSNK2A1(WT)或三重突变体(TM,V66A/H160D/I174A)的U2OS细胞,这些突变体在对抑制剂结合重要的残基处进行了替换。用CSNK2的临床阶段抑制剂CX-4945处理这些细胞,并使用大规模三重SILAC(细胞培养中氨基酸的稳定同位素标记)定量磷酸化蛋白质组学进行分析。与野生型CSNK2A1不同,CSNK2A1-TM在存在CX-4945的情况下仍保留活性,从而能够基于其在表达CSNK2A1-TM的细胞中磷酸化增加来鉴定和验证几种CSNK2底物。基于激酶家族内的高度保守性,我们预计该策略可广泛应用于鉴定其他激酶-底物关系。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ae98/9225150/8017d2dfbe72/fmolb-09-909711-g001.jpg

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