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酿酒酵母中PP2A催化亚基的羧甲基化是与B型亚基Cdc55p和Rts1p有效相互作用所必需的。

Carboxymethylation of the PP2A catalytic subunit in Saccharomyces cerevisiae is required for efficient interaction with the B-type subunits Cdc55p and Rts1p.

作者信息

Wei H, Ashby D G, Moreno C S, Ogris E, Yeong F M, Corbett A H, Pallas D C

机构信息

Department of Biochemistry and Winship Cancer Center, Emory University School of Medicine, Atlanta, Georgia 30322, USA.

出版信息

J Biol Chem. 2001 Jan 12;276(2):1570-7. doi: 10.1074/jbc.M008694200.

Abstract

Protein phosphatase 2A (PP2A) is an essential eukaryotic serine/threonine phosphatase known to play important roles in cell cycle regulation. Association of different B-type targeting subunits with the heterodimeric core (A/C) enzyme is known to be an important mechanism of regulating PP2A activity, substrate specificity, and localization. However, how the binding of these targeting subunits to the A/C heterodimer might be regulated is unknown. We have used the budding yeast Saccharomyces cerevisiae as a model system to investigate the hypothesis that covalent modification of the C subunit (Pph21p/Pph22p) carboxyl terminus modulates PP2A complex formation. Two approaches were taken. First, S. cerevisiae cells were generated whose survival depended on the expression of different carboxyl-terminal Pph21p mutants. Second, the major S. cerevisiae methyltransferase (Ppm1p) that catalyzes the methylation of the PP2A C subunit carboxyl-terminal leucine was identified, and cells deleted for this methyltransferase were utilized for our studies. Our results demonstrate that binding of the yeast B subunit, Cdc55p, to Pph21p was disrupted by either acidic substitution of potential carboxyl-terminal phosphorylation sites on Pph21p or by deletion of the gene for Ppm1p. Loss of Cdc55p association was accompanied in each case by a large reduction in binding of the yeast A subunit, Tpd3p, to Pph21p. Moreover, decreased Cdc55p and Tpd3p binding invariably resulted in nocodazole sensitivity, a known phenotype of CDC55 or TPD3 deletion. Furthermore, loss of methylation also greatly reduced the association of another yeast B-type subunit, Rts1p. Thus, methylation of Pph21p is important for formation of PP2A trimeric and dimeric complexes, and consequently, for PP2A function. Taken together, our results indicate that methylation and phosphorylation may be mechanisms by which the cell dynamically regulates PP2A complex formation and function.

摘要

蛋白磷酸酶2A(PP2A)是一种必需的真核丝氨酸/苏氨酸磷酸酶,已知在细胞周期调控中发挥重要作用。不同的B型靶向亚基与异二聚体核心(A/C)酶的结合是调节PP2A活性、底物特异性和定位的重要机制。然而,这些靶向亚基与A/C异二聚体的结合是如何被调节的尚不清楚。我们使用芽殖酵母酿酒酵母作为模型系统来研究C亚基(Pph21p/Pph22p)羧基末端的共价修饰调节PP2A复合物形成这一假说。我们采用了两种方法。首先,构建了其存活依赖于不同羧基末端Pph21p突变体表达的酿酒酵母细胞。其次,鉴定了催化PP2A C亚基羧基末端亮氨酸甲基化的主要酿酒酵母甲基转移酶(Ppm1p),并利用缺失该甲基转移酶的细胞进行我们的研究。我们的结果表明,Pph21p上潜在羧基末端磷酸化位点的酸性取代或Ppm1p基因的缺失都会破坏酵母B亚基Cdc55p与Pph21p的结合。在每种情况下,Cdc55p结合的丧失都伴随着酵母A亚基Tpd3p与Pph21p结合的大幅减少。此外,Cdc55p和Tpd3p结合的减少总是导致对诺考达唑敏感,这是已知的CDC55或TPD3缺失的表型。此外,甲基化的丧失也大大降低了另一种酵母B型亚基Rts1p的结合。因此,Pph21p的甲基化对于PP2A三聚体和二聚体复合物的形成很重要,因此对于PP2A的功能也很重要。综上所述,我们的结果表明甲基化和磷酸化可能是细胞动态调节PP2A复合物形成和功能的机制。

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