Friesen Helena, Murphy Kelly, Breitkreutz Ashton, Tyers Mike, Andrews Brenda
Department of Molecular and Medical Genetics, University of Toronto, Toronto, Canada, M5S 1A8.
Mol Biol Cell. 2003 Jul;14(7):3027-40. doi: 10.1091/mbc.e02-09-0613. Epub 2003 Apr 4.
The yeast amphiphysin homologue Rvs167p plays a role in regulation of the actin cytoskeleton, endocytosis, and sporulation. Rvs167p is a phosphoprotein in vegetatively growing cells and shows increased phosphorylation upon treatment with mating pheromone. Previous work has shown that Rvs167p can be phosphorylated in vitro by the cyclin-dependent kinase Pho85p complexed with its cyclin Pcl2p. Using chymotryptic phosphopeptide mapping, we have identified the sites on which Rvs167p is phosphorylated in vitro by Pcl2p-Pho85p. We have shown that these same sites are phosphorylated in vivo during vegetative growth and that phosphorylation at two of these sites is Pcl-Pho85p dependent. In cells treated with mating pheromone, the MAP kinase Fus3p is needed for full phosphorylation of Rvs167p. Functional genomics and genetics experiments revealed that mutation of other actin cytoskeleton genes compromises growth of a strain in which phosphorylation of Rvs167p is blocked by mutation. Phosphorylation of Rvs167p inhibits its interaction in vitro with Las17p, an activator of the Arp2/3 complex, as well as with a novel protein, Ymr192p. Our results suggest that phosphorylation of Rvs167p by a cyclin-dependent kinase and by a MAP kinase is an important mechanism for regulating protein complexes involved in actin cytoskeleton function.
酵母中与发动蛋白同源的Rvs167p在肌动蛋白细胞骨架、胞吞作用和孢子形成的调控中发挥作用。Rvs167p在营养生长的细胞中是一种磷蛋白,在用交配信息素处理后磷酸化水平会升高。先前的研究表明,Rvs167p在体外可被与细胞周期蛋白Pcl2p复合的细胞周期蛋白依赖性激酶Pho85p磷酸化。通过胰凝乳蛋白酶磷酸肽图谱分析,我们确定了Rvs167p在体外被Pcl2p-Pho85p磷酸化的位点。我们已经证明,在营养生长期间这些相同的位点在体内也会被磷酸化,并且其中两个位点的磷酸化依赖于Pcl-Pho85p。在用交配信息素处理的细胞中,Rvs167p的完全磷酸化需要促分裂原活化蛋白激酶Fus3p。功能基因组学和遗传学实验表明,其他肌动蛋白细胞骨架基因突变会损害Rvs167p磷酸化因突变而受阻的菌株的生长。Rvs167p的磷酸化在体外抑制其与Arp2/3复合体的激活剂Las17p以及一种新蛋白Ymr192p的相互作用。我们的结果表明,细胞周期蛋白依赖性激酶和促分裂原活化蛋白激酶对Rvs167p的磷酸化是调节参与肌动蛋白细胞骨架功能的蛋白质复合体的重要机制。