Sommese Ruth F, Sivaramakrishnan Sivaraj
From the Department of Genetics, Cell Biology, and Development, University of Minnesota, Minneapolis, Minnesota 55455.
From the Department of Genetics, Cell Biology, and Development, University of Minnesota, Minneapolis, Minnesota 55455
J Biol Chem. 2016 Oct 14;291(42):21963-21970. doi: 10.1074/jbc.M116.737601. Epub 2016 Aug 23.
The overlapping network of kinase-substrate interactions provides exquisite specificity in cell signaling pathways, but also presents challenges to our ability to understand the mechanistic basis of biological processes. Efforts to dissect kinase-substrate interactions have been particularly limited by their inherently transient nature. Here, we use a library of FRET sensors to monitor these transient complexes, specifically examining weak interactions between the catalytic domain of protein kinase Cα and 14 substrate peptides. Combining results from this assay platform with those from standard kinase activity assays yields four novel insights into the kinase-substrate interaction. First, preferential binding of non-phosphorylated versus phosphorylated substrates leads to enhanced kinase-specific activity. Second, kinase-specific activity is inversely correlated with substrate binding affinity. Third, high affinity substrates can suppress phosphorylation of their low affinity counterparts. Finally, the substrate-competitive inhibitor bisindolylmaleimide I displaces low affinity substrates more potently leading to substrate selective inhibition of kinase activity. Overall, our approach complements existing structural and biophysical approaches to provide generalizable insights into the regulation of kinase activity.
激酶 - 底物相互作用的重叠网络在细胞信号通路中提供了精确的特异性,但也给我们理解生物过程的机制基础带来了挑战。剖析激酶 - 底物相互作用的努力尤其受到其固有的短暂性质的限制。在这里,我们使用了一个荧光共振能量转移(FRET)传感器库来监测这些短暂的复合物,特别研究蛋白激酶Cα催化结构域与14种底物肽之间的弱相互作用。将该检测平台的结果与标准激酶活性检测的结果相结合,产生了关于激酶 - 底物相互作用的四个新见解。第一,非磷酸化底物与磷酸化底物的优先结合导致激酶特异性活性增强。第二,激酶特异性活性与底物结合亲和力呈负相关。第三,高亲和力底物可以抑制其低亲和力对应物的磷酸化。最后,底物竞争性抑制剂双吲哚马来酰亚胺I更有效地取代低亲和力底物,导致激酶活性的底物选择性抑制。总体而言,我们的方法补充了现有的结构和生物物理方法,以提供关于激酶活性调节的可推广见解。