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在出芽酵母中,纺锤体检查点激活过程中Mad3/BubR1的磷酸化依赖于Polo激酶和极光激酶。

Mad3/BubR1 phosphorylation during spindle checkpoint activation depends on both Polo and Aurora kinases in budding yeast.

作者信息

Rancati Giulia, Crispo Valentina, Lucchini Giovanna, Piatti Simonetta

机构信息

Dipartimento di Biotecnologie e Bioscienze, Universita' degli Studi di Milano-Bicocca, Milan, Italy.

出版信息

Cell Cycle. 2005 Jul;4(7):972-80. doi: 10.4161/cc.4.7.1829. Epub 2005 Jul 9.

Abstract

During mitosis the spindle assembly checkpoint (SAC) delays the onset of anaphase and mitotic exit until all chromosomes are bipolarly attached to spindle fibers. Both lack of attachment due to spindle/kinetochore defects and lack of tension across kinetochores generate the "wait anaphase" signal transmitted by the SAC, which involves the evolutionarily conserved Mad1, Mad2, Mad3/BubR1, Bub1, Bub3 and Mps1 proteins, and inhibits the activity of the ubiquitin ligase Cdc20/APC, that promotes both sister chromatid dissociation in anaphase and mitotic exit. In particular, Mad3/BubR1 is directly implicated, together with Mad2, in Cdc20 inactivation in both human and yeast cells, suggesting that its activity is likely finely regulated. We show that budding yeast Mad3, like its human orthologue BubR1, is a phosphoprotein that is hyperphosphorylated during mitosis and when SAC activation is triggered by microtubule depolymerizing agents, kinetochore defects or lack of kinetochore tension. In vivo Mad3 phosphorylation depends on the Polo kinase Cdc5 and, to a minor extent, the Aurora B kinase Ipl1. Accordingly, replacing with alanines five serine residues belonging to Polo kinase-dependent putative phosphorylation sites dramatically reduces Mad3 phosphorylation, suggesting that Mad3 is likely an in vivo target of Cdc5.

摘要

在有丝分裂过程中,纺锤体组装检查点(SAC)会延迟后期和有丝分裂退出的开始,直到所有染色体都双极附着于纺锤体纤维。由于纺锤体/动粒缺陷导致的附着缺失以及动粒间缺乏张力,都会产生由SAC传递的“等待后期”信号,该信号涉及进化上保守的Mad1、Mad2、Mad3/BubR1、Bub1、Bub3和Mps1蛋白,并抑制泛素连接酶Cdc20/APC的活性,Cdc20/APC在后期促进姐妹染色单体分离以及有丝分裂退出。特别是,Mad3/BubR1与Mad2一起,直接参与人类和酵母细胞中Cdc20的失活,这表明其活性可能受到精细调控。我们发现,芽殖酵母Mad3与其人类同源物BubR1一样,是一种磷蛋白,在有丝分裂期间以及当SAC激活由微管解聚剂、动粒缺陷或动粒张力缺失触发时会发生过度磷酸化。在体内,Mad3的磷酸化依赖于Polo激酶Cdc5,在较小程度上还依赖于极光激酶B Ipl1。因此,将属于Polo激酶依赖性假定磷酸化位点的五个丝氨酸残基替换为丙氨酸会显著降低Mad3的磷酸化,这表明Mad3可能是Cdc5在体内的作用靶点。

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