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细胞周期依赖性 Rad53 激酶的磷酸化由 Cdc5 和 Cdc28 调节检查点适应。

Cell cycle-dependent phosphorylation of Rad53 kinase by Cdc5 and Cdc28 modulates checkpoint adaptation.

机构信息

Friedrich Miescher Institute for Biomedical Research, Basel, Switzerland.

出版信息

Cell Cycle. 2010 Jan 15;9(2):350-63. doi: 10.4161/cc.9.2.10448. Epub 2010 Jan 27.

Abstract

In budding yeast the evolutionarily conserved checkpoint response varies in its sensitivity to DNA damaging agents through the cell cycle. Specifically, higher amounts of damage are needed to activate the downstream checkpoint kinase Rad53 in S-phase cells. We examined here whether phosphorylation of Rad53 itself by cell cycle-dedicated kinases regulates Rad53 activation. We found that during unperturbed growth Rad53 exhibits a small phosphorylation-dependent electrophoretic mobility shift in G(2), M and G(1) phases of the cell cycle that is lost in S phase. We show that Rad53 is phosphorylated in vitro by Cdc5, a mitotic Polo-like kinase, and by the yeast cyclin-dependent kinase, Cdc28. Consistently, the cell cycle-dependent Rad53 mobility shift requires both Cdc5 and Cdc28 activities. We mapped the in vitro targeted phosphorylation sites by mass spectrometry and confirmed with mass spectroscopy that serines 774, 789 and 791 within Rad53 are phosphorylated in vivo in M-phase arrested cells. By creating nonphosphorylatable mutations in the endogenous RAD53 gene, we confirmed that the CDK and Polo kinase target sites are responsible for the observed cell cycle-dependent shift in protein mobility. The loss of phospho-acceptor sites does not interfere with Rad53 activation but accelerates checkpoint adaptation after induction of a single irreparable double-strand break. We thus demonstrate that cell cycle-dependent phosphorylation can fine-tune the response of Rad53 to DNA damage.

摘要

在芽殖酵母中,通过细胞周期,进化保守的检查点反应对 DNA 损伤剂的敏感性有所不同。具体来说,需要更高水平的损伤才能激活 S 期细胞中的下游检查点激酶 Rad53。我们在这里检查了细胞周期专用激酶对 Rad53 自身的磷酸化是否调节 Rad53 的激活。我们发现,在未受干扰的生长过程中,Rad53 在细胞周期的 G2、M 和 G1 期表现出较小的磷酸化依赖性电泳迁移率变化,而在 S 期则消失。我们表明,Rad53 在体外被有丝分裂 Polo 样激酶 Cdc5 和酵母细胞周期依赖性激酶 Cdc28 磷酸化。一致地,细胞周期依赖性 Rad53 迁移率变化需要 Cdc5 和 Cdc28 活性。我们通过质谱法对体外靶向磷酸化位点进行了作图,并通过质谱法证实了丝氨酸 774、789 和 791 在 M 期被细胞周期阻滞细胞体内磷酸化。通过在内源性 RAD53 基因中创建不可磷酸化的突变,我们证实了 CDK 和 Polo 激酶的靶位负责观察到的蛋白质迁移率的细胞周期依赖性变化。磷酸受体位点的丢失不会干扰 Rad53 的激活,但会加速单个不可修复的双链断裂诱导后的检查点适应。因此,我们证明了细胞周期依赖性磷酸化可以微调 Rad53 对 DNA 损伤的反应。

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