Piattoni Claudia V, Ferrero Danisa M L, Dellaferrera Ignacio, Vegetti Abelardo, Iglesias Alberto Á
Laboratorio de Enzimología Molecular, Instituto de Agrobiotecnología del Litoral (Consejo Nacional de Investigaciones Científicas y Técnicas - Universidad Nacional del Litoral) and Facultad de Bioquímica y Ciencias Biológicas (Universidad Nacional del Litoral), Centro Científico Tecnológico, Consejo Nacional de Investigaciones Científicas y Técnicas Santa FeSanta Fe, Argentina.
Cultivos Extensivos, Facultad de Ciencias Agrarias, Universidad Nacional del Litoral, EsperanzaArgentina.
Front Plant Sci. 2017 Apr 11;8:522. doi: 10.3389/fpls.2017.00522. eCollection 2017.
Cytosolic glyceraldehyde-3-phosphate dehydrogenase (NAD-GAPDH) is involved in a critical energetic step of glycolysis and also has many important functions besides its enzymatic activity. The recombinant wheat NAD-GAPDH was phosphorylated at Ser205 by a SNF1-Related protein kinase 1 (SnRK1) from wheat heterotrophic (but not from photosynthetic) tissues. The S205D mutant enzyme (mimicking the phosphorylated form) exhibited a significant decrease in activity but similar affinity toward substrates. Immunodetection and activity assays showed that NAD-GAPDH is phosphorylated , the enzyme depicting different activity, abundance and phosphorylation profiles during development of seeds that mainly accumulate starch (wheat) or lipids (castor oil seed). NAD-GAPDH activity gradually increases along wheat seed development, but protein levels and phosphorylation status exhibited slight changes. Conversely, in castor oil seed, the activity slightly increased and total protein levels do not significantly change in the first half of seed development but both abruptly decreased in the second part of development, when triacylglycerol synthesis and storage begin. Interestingly, phospho-NAD-GAPDH levels reached a maximum when the seed switch their metabolism to mainly support synthesis and accumulation of carbon reserves. After this point the castor oil seed NAD-GAPDH protein levels and activity highly decreased, and the protein stability assays showed that the protein would be degraded by the proteasome. The results presented herein suggest that phosphorylation of NAD-GAPDH during seed development would have impact on the partitioning of triose-phosphate between different metabolic pathways and cell compartments to support the specific carbon, energy and reducing equivalent demands during synthesis of storage products.
胞质甘油醛-3-磷酸脱氢酶(NAD-GAPDH)参与糖酵解的关键能量步骤,并且除了其酶活性外还具有许多重要功能。来自小麦异养组织(而非光合组织)的1-相关蛋白激酶1(SnRK1)将重组小麦NAD-GAPDH在Ser205位点磷酸化。S205D突变酶(模拟磷酸化形式)的活性显著降低,但对底物的亲和力相似。免疫检测和活性分析表明,NAD-GAPDH被磷酸化,在主要积累淀粉(小麦)或脂质(蓖麻籽)的种子发育过程中,该酶呈现出不同的活性、丰度和磷酸化谱。NAD-GAPDH活性沿小麦种子发育过程逐渐增加,但蛋白质水平和磷酸化状态变化轻微。相反,在蓖麻籽中,活性略有增加,种子发育前半期总蛋白质水平无显著变化,但在发育后半期,当三酰甘油合成和储存开始时,二者均突然下降。有趣的是,当种子将其代谢转换以主要支持碳储备的合成和积累时,磷酸化NAD-GAPDH水平达到最大值。在此之后,蓖麻籽NAD-GAPDH蛋白质水平和活性大幅下降,蛋白质稳定性分析表明该蛋白质将被蛋白酶体降解。本文给出的结果表明,种子发育过程中NAD-GAPDH的磷酸化会影响磷酸丙糖在不同代谢途径和细胞区室之间的分配,以支持储存产物合成过程中特定的碳、能量和还原当量需求。