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Arabidopsis uses two gluconeogenic gateways for organic acids to fuel seedling establishment

机译:拟南芥使用两个糖异生途径获得有机酸,以促进幼苗生长

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摘要

Gluconeogenesis is a fundamental metabolic process that allows organisms to make sugars from non-carbohydrate stores such as lipids and protein. In eukaryotes only one gluconeogenic route has been described from organic acid intermediates and this relies on the enzyme phosphoenolpyruvate carboxykinase (PCK). Here we show that two routes exist in Arabidopsis, and that the second uses pyruvate, orthophosphate dikinase (PPDK). Gluconeogenesis is critical to fuel the transition from seed to seedling. Arabidopsis pck1 and ppdk mutants are compromised in seed-storage reserve mobilization and seedling establishment. Radiolabelling studies show that PCK predominantly allows sugars to be made from dicarboxylic acids, which are products of lipid breakdown. However, PPDK also allows sugars to be made from pyruvate, which is a major product of protein breakdown. We propose that both routes have been evolutionarily conserved in plants because, while PCK expends less energy, PPDK is twice as efficient at recovering carbon from pyruvate.
机译:糖异生是一个基本的代谢过程,它使生物体可以从非碳水化合物的存储中制造糖,例如脂质和蛋白质。在真核生物中,从有机酸中间体仅描述了一种糖异生途径,这依赖于磷酸烯醇丙酮酸羧化激酶(PCK)。在这里,我们显示了拟南芥中存在两种途径,第二种途径使用丙酮酸,正磷酸二激酶(PPDK)。糖原异生对于促进从种子到幼苗的转化至关重要。拟南芥pck1和ppdk突变体在种子存储储备动员和幼苗建立中受损。放射性标记研究表明,PCK主要允许糖类由二羧酸制成,而二羧酸是脂质分解的产物。但是,PPDK还允许从丙酮酸制糖,丙酮酸是蛋白质分解的主要产物。我们认为这两种途径在植物中都得到了进化保护,因为尽管PCK消耗的能量更少,但是PPDK在从丙酮酸中回收碳的效率是后者的两倍。

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