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定量磷酸化蛋白质组学揭示了保守的裂殖酵母激酶pom1协调细胞生长和分裂的途径。

Quantitative phosphoproteomics reveals pathways for coordination of cell growth and division by the conserved fission yeast kinase pom1.

作者信息

Kettenbach Arminja N, Deng Lin, Wu Youjun, Baldissard Suzanne, Adamo Mark E, Gerber Scott A, Moseley James B

机构信息

‡Department of Biochemistry, ¶Norris Cotton Cancer Center, The Geisel School of Medicine at Dartmouth, Lebanon, NH 03756, USA

‡Department of Biochemistry.

出版信息

Mol Cell Proteomics. 2015 May;14(5):1275-87. doi: 10.1074/mcp.M114.045245. Epub 2015 Feb 26.

Abstract

Complex phosphorylation-dependent signaling networks underlie the coordination of cellular growth and division. In the fission yeast Schizosaccharomyces pombe, the Dual specificity tyrosine-(Y)-phosphorylation regulated kinase (DYRK) family protein kinase Pom1 regulates cell cycle progression through the mitotic inducer Cdr2 and controls cell polarity through unknown targets. Here, we sought to determine the phosphorylation targets of Pom1 kinase activity by SILAC-based phosphoproteomics. We defined a set of high-confidence Pom1 targets that were enriched for cytoskeletal and cell growth functions. Cdr2 was the only cell cycle target of Pom1 kinase activity that we identified in cells. Mutation of Pom1-dependent phosphorylation sites in the C terminus of Cdr2 inhibited mitotic entry but did not impair Cdr2 localization. In addition, we found that Pom1 phosphorylated multiple substrates that function in polarized cell growth, including Tea4, Mod5, Pal1, the Rho GAP Rga7, and the Arf GEF Syt22. Purified Pom1 phosphorylated these cell polarity targets in vitro, confirming that they are direct substrates of Pom1 kinase activity and likely contribute to regulation of polarized growth by Pom1. Our study demonstrates that Pom1 acts in a linear pathway to control cell cycle progression while regulating a complex network of cell growth targets.

摘要

复杂的磷酸化依赖性信号网络是细胞生长和分裂协调的基础。在裂殖酵母粟酒裂殖酵母中,双特异性酪氨酸(Y)磷酸化调节激酶(DYRK)家族蛋白激酶Pom1通过有丝分裂诱导剂Cdr2调节细胞周期进程,并通过未知靶点控制细胞极性。在这里,我们试图通过基于SILAC的磷酸化蛋白质组学来确定Pom1激酶活性的磷酸化靶点。我们定义了一组高度可信的Pom1靶点,这些靶点在细胞骨架和细胞生长功能方面富集。Cdr2是我们在细胞中鉴定出的Pom1激酶活性的唯一细胞周期靶点。Cdr2 C末端中Pom1依赖性磷酸化位点的突变抑制了有丝分裂的进入,但不影响Cdr2的定位。此外,我们发现Pom1磷酸化了多个在极化细胞生长中起作用的底物,包括Tea4、Mod5、Pal1、Rho GAP Rga7和Arf GEF Syt22。纯化的Pom1在体外磷酸化了这些细胞极性靶点,证实它们是Pom1激酶活性的直接底物,可能有助于Pom1对极化生长的调节。我们的研究表明,Pom1在一条线性途径中发挥作用,以控制细胞周期进程,同时调节一个复杂的细胞生长靶点网络。

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