Department of Biology, Saint Louis University, St. Louis, Missouri 63103.
Department of Biology, Saint Louis University, St. Louis, Missouri 63103.
J Biol Chem. 2019 Dec 6;294(49):18836-18845. doi: 10.1074/jbc.RA119.009609. Epub 2019 Nov 5.
Heterotrimeric G proteins are important molecular switches that facilitate transmission of a variety of signals from the outside to the inside of cells. G proteins are highly conserved, enabling study of their regulatory mechanisms in model organisms such as the budding yeast Gpa2 is a yeast Gα protein that functions in the nutrient signaling pathway. Using Phos-tag, a highly specific phosphate binding tag for separating phosphorylated proteins, we found that Gpa2 undergoes phosphorylation and that its level of phosphorylation is markedly increased upon nitrogen starvation. We also observed that phosphorylation of Gpa2 depends on glycogen synthase kinase (GSK). Disrupting GSK activity diminishes Gpa2 phosphorylation levels , and the purified GSK isoforms Mck1 and Ygk3 are capable of phosphorylating Gpa2 Functionally, phosphorylation enhanced plasma membrane localization of Gpa2 and promoted nitrogen starvation-induced activation of protein kinase A. Together, the findings of our study reveal a mechanism by which GSK- and nutrient-dependent phosphorylation regulates subcellular localization of Gpa2 and its ability to activate downstream signaling.
三聚体 G 蛋白是重要的分子开关,可促进各种信号从细胞外传递到细胞内。G 蛋白高度保守,使我们能够在模式生物如芽殖酵母中研究其调节机制。Gpa2 是一种酵母 Gα 蛋白,在营养信号通路中发挥作用。使用 Phos-tag,一种用于分离磷酸化蛋白的高度特异性磷酸结合标签,我们发现 Gpa2 发生磷酸化,并且在氮饥饿时其磷酸化水平显着增加。我们还观察到 Gpa2 的磷酸化依赖于糖原合酶激酶(GSK)。破坏 GSK 活性会降低 Gpa2 的磷酸化水平,并且纯化的 GSK 同工型 Mck1 和 Ygk3 能够磷酸化 Gpa2。在功能上,磷酸化增强了 Gpa2 的质膜定位,并促进了氮饥饿诱导的蛋白激酶 A 的激活。总之,我们的研究结果揭示了 GSK 和营养依赖性磷酸化调节 Gpa2 亚细胞定位及其激活下游信号的机制。