Chen Jian, Hu Rongbin, Zhu Yinfeng, Shen Guoxin, Zhang Hong
Department of Biological Sciences, Texas Tech University, Lubbock, Texas 79409 (J.C., R.H., Y.Z., G.S., H.Z.); andZhejiang Academy of Agricultural Sciences, Hangzhou, Zhejiang Province 310021, China (G.S.).
Department of Biological Sciences, Texas Tech University, Lubbock, Texas 79409 (J.C., R.H., Y.Z., G.S., H.Z.); andZhejiang Academy of Agricultural Sciences, Hangzhou, Zhejiang Province 310021, China (G.S.)
Plant Physiol. 2014 Nov;166(3):1519-34. doi: 10.1104/pp.114.250563. Epub 2014 Oct 3.
PROTEIN PHOSPHATASE 2A (PP2A) is a major group of serine/threonine protein phosphatases in eukaryotes. It is composed of three subunits: scaffolding subunit A, regulatory subunit B, and catalytic subunit C. Assembly of the PP2A holoenzyme in Arabidopsis (Arabidopsis thaliana) depends on Arabidopsis PHOSPHOTYROSYL PHOSPHATASE ACTIVATOR (AtPTPA). Reduced expression of AtPTPA leads to severe defects in plant development, altered responses to abscisic acid, ethylene, and sodium chloride, and decreased PP2A activity. In particular, AtPTPA deficiency leads to decreased methylation in PP2A-C subunits (PP2Ac). Complete loss of PP2Ac methylation in the suppressor of brassinosteroid insensitive1 mutant leads to 30% reduction of PP2A activity, suggesting that PP2A with a methylated C subunit is more active than PP2A with an unmethylated C subunit. Like AtPTPA, PP2A-A subunits are also required for PP2Ac methylation. The interaction between AtPTPA and PP2Ac is A subunit dependent. In addition, AtPTPA deficiency leads to reduced interactions of B subunits with C subunits, resulting in reduced functional PP2A holoenzyme formation. Thus, AtPTPA is a critical factor for committing the subunit A/subunit C dimer toward PP2A heterotrimer formation.
蛋白磷酸酶2A(PP2A)是真核生物中丝氨酸/苏氨酸蛋白磷酸酶的主要类别。它由三个亚基组成:支架亚基A、调节亚基B和催化亚基C。拟南芥(Arabidopsis thaliana)中PP2A全酶的组装依赖于拟南芥磷酸酪氨酸磷酸酶激活剂(AtPTPA)。AtPTPA表达降低会导致植物发育出现严重缺陷,对脱落酸、乙烯和氯化钠的反应改变,以及PP2A活性降低。特别是,AtPTPA缺陷会导致PP2A-C亚基(PP2Ac)甲基化减少。油菜素类固醇不敏感1突变体的抑制子中PP2Ac甲基化完全丧失会导致PP2A活性降低30%,这表明具有甲基化C亚基的PP2A比具有未甲基化C亚基的PP2A更具活性。与AtPTPA一样,PP2A-A亚基也是PP2Ac甲基化所必需的。AtPTPA与PP2Ac之间的相互作用依赖于A亚基。此外,AtPTPA缺陷会导致B亚基与C亚基的相互作用减少,从而导致功能性PP2A全酶形成减少。因此,AtPTPA是促使亚基A/亚基C二聚体形成PP2A异源三聚体的关键因素。