Plant Physiol. 2015 Mar;167(3):671-81. doi: 10.1104/pp.114.254474.
Phosphoenolpyruvate carboxylase (PEPC) is a crucial enzyme that catalyzes an irreversible primary metabolic reaction in plants.Previous studies have used transgenic plants expressing ectopic PEPC forms with diminished feedback inhibition to examine the role of PEPC in carbon and nitrogen metabolism. To date, the in vivo role of PEPC in carbon and nitrogen metabolism has not been analyzed in plants. In this study, we examined the role of PEPC in plants, demonstrating that PPC1 and PPC2 were highly expressed genes encoding PEPC in Arabidopsis (Arabidopsis thaliana) leaves and that PPC1 and PPC2 accounted for approximately 93% of total PEPC activity in the leaves. A double mutant, ppc1/ppc2, was constructed that exhibited a severe growth-arrest phenotype. The ppc1/ppc2 mutant accumulated more starch and sucrose than wild-type plants when seedlings were grown under normal conditions. Physiological and metabolic analysis revealed that decreased PEPC activity in the ppc1/ppc2 mutant greatly reduced the synthesis of malate and citrate and severely suppressed ammonium assimilation. Furthermore, nitrate levels in the ppc1/ppc2 mutant were significantly lower than those in wild-type plants due to the suppression of ammonium assimilation. Interestingly, starch and sucrose accumulation could be prevented and nitrate levels could be maintained by supplying the ppc1/ppc2 mutant with exogenous malate and glutamate, suggesting that low nitrogen status resulted in the alteration of carbon metabolism and prompted the accumulation of starch and sucrose in the ppc1/ppc2 mutant. Our results demonstrate that PEPC in leaves plays a crucial role in modulating the balance of carbon and nitrogen metabolism in Arabidopsis.
磷酸烯醇式丙酮酸羧化酶(PEPC)是一种关键酶,它在植物中催化一个不可逆的初级代谢反应。以前的研究使用表达异位 PEPC 形式的转基因植物,这些植物的反馈抑制作用减弱,以研究 PEPC 在碳氮代谢中的作用。迄今为止,PEPC 在植物中的碳氮代谢中的体内作用尚未得到分析。在这项研究中,我们研究了 PEPC 在植物中的作用,表明 PPC1 和 PPC2 是拟南芥(Arabidopsis thaliana)叶片中高度表达的编码 PEPC 的基因,PPC1 和 PPC2 占叶片中总 PEPC 活性的约 93%。构建了一个双突变体 ppc1/ppc2,该突变体表现出严重的生长停滞表型。当幼苗在正常条件下生长时,ppc1/ppc2 突变体积累的淀粉和蔗糖比野生型植物多。生理和代谢分析表明,ppc1/ppc2 突变体中 PEPC 活性的降低大大减少了苹果酸和柠檬酸的合成,并严重抑制了铵同化。此外,由于铵同化的抑制,ppc1/ppc2 突变体中的硝酸盐水平明显低于野生型植物。有趣的是,通过向 ppc1/ppc2 突变体提供外源苹果酸和谷氨酸,可以防止淀粉和蔗糖的积累,并维持硝酸盐水平,这表明低氮状态导致碳代谢的改变,并促使淀粉和蔗糖在 ppc1/ppc2 突变体中积累。我们的结果表明,叶片中的 PEPC 在调节拟南芥中碳氮代谢的平衡中起着关键作用。