蛋白激酶A
蛋白质组学
蛋白质亚单位
基因亚型
化学
分区(防火)
蛋白质-蛋白质相互作用
生物化学
小分子
细胞生物学
生物
激酶
计算生物学
酶
基因
作者
Duangnapa Kovanich,Tin Tin Aye,Albert J. R. Heck,Arjen Scholten
出处
期刊:Methods in molecular biology
日期:2011-10-03
卷期号:: 167-181
被引量:6
标识
DOI:10.1007/978-1-61779-364-6_12
摘要
Chemical proteomics is a versatile tool to investigate protein–small molecule interactions, but can be extended to probe also secondary binding investigating small molecule–protein 1–protein 2 interactions, providing insight into protein scaffolds. This application of chemical proteomics has in particular been applied extensively to cyclic nucleotide (cAMP, cGMP) signaling. cAMP regulates cellular functions primarily by activating cAMP-dependent protein kinase (PKA). Compartmentalization of PKA plays an important role in the specificity of cAMP signaling events and is mediated by interaction of the regulatory subunit (PKA-R) with A-kinase anchoring proteins (AKAPs), which often form the core of even larger protein machineries. The selective binding of AKAPs to one of the major isoforms PKA-R type I (PKA-RI) and PKA-R type II (PKA-RII) is an important feature of cAMP/PKA signaling. However, this specificity is not well established for most AKAPs. Here, we describe a chemical proteomics approach that combines cAMP-based affinity chromatography with quantitative mass spectrometry to investigate PKA-R isoform/AKAP specificity directly in lysates of cells and tissues of any origin. With this tool, several novel PKA-R/AKAP specificities can be easily resolved.
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