Departamento de Biología Vegetal y Ecología, Facultad de Biología, Universidad de Sevilla, Sevilla, Spain.
Departamento de Biología Vegetal y Ecología, Facultad de Ciencia y Tecnología, Universidad del País Vasco (UPV/EHU), Leioa, Spain.
Plant J. 2022 Jul;111(1):231-249. doi: 10.1111/tpj.15789. Epub 2022 May 19.
Phosphoenolpyruvate carboxylase (PEPC) is a carboxylating enzyme with important roles in plant metabolism. Most studies in C plants have focused on photosynthetic PEPC, but less is known about non-photosynthetic PEPC isozymes, especially with respect to their physiological functions. In this work, we analyzed the precise roles of the sorghum (Sorghum bicolor) PPC3 isozyme by the use of knock-down lines with the SbPPC3 gene silenced (Ppc3 lines). Ppc3 plants showed reduced stomatal conductance and plant size, a delay in flowering time, and reduced seed production. In addition, silenced plants accumulated stress indicators such as Asn, citrate, malate, and sucrose in roots and showed higher citrate synthase activity, even in control conditions. Salinity further affected stomatal conductance and yield and had a deeper impact on central metabolism in silenced plants compared to wild type, more notably in roots, with Ppc3 plants showing higher nitrate reductase and NADH-glutamate synthase activity in roots and the accumulation of molecules with a higher N/C ratio. Taken together, our results show that although SbPPC3 is predominantly a root protein, its absence causes deep changes in plant physiology and metabolism in roots and leaves, negatively affecting maximal stomatal opening, growth, productivity, and stress responses in sorghum plants. The consequences of SbPPC3 silencing suggest that this protein, and maybe orthologs in other plants, could be an important target to improve plant growth, productivity, and resistance to salt stress and other stresses where non-photosynthetic PEPCs may be implicated.
磷酸烯醇式丙酮酸羧化酶(PEPC)是一种具有重要代谢作用的羧化酶。大多数 C3 植物的研究都集中在光合型 PEPC 上,但对于非光合型 PEPC 同工酶的了解较少,尤其是其生理功能。在这项工作中,我们通过敲低 SbPPC3 基因(Ppc3 系)沉默的高粱(Sorghum bicolor)PPC3 同工酶来分析其确切作用。Ppc3 植株表现出气孔导度和植株大小降低、开花时间延迟以及种子产量减少。此外,沉默植株在根部分别积累了天冬酰胺、柠檬酸、苹果酸和蔗糖等应激标志物,并且在对照条件下表现出更高的柠檬酸合酶活性。盐度进一步影响气孔导度和产量,并且对沉默植物的中心代谢产生了比野生型更深的影响,在根部分尤为明显,Ppc3 植株的根中硝酸还原酶和 NADH-谷氨酸合酶活性更高,并且积累了具有更高 N/C 比的分子。总之,我们的结果表明,尽管 SbPPC3 主要是一种根蛋白,但它的缺失会导致高粱根和叶中的植物生理学和代谢发生深刻变化,对最大气孔开度、生长、生产力以及胁迫响应产生负面影响。SbPPC3 沉默的后果表明,该蛋白(也许在其他植物中的同源蛋白)可能是一个重要的靶点,可以提高植物的生长、生产力以及对盐胁迫和其他可能涉及非光合型 PEPC 的胁迫的抗性。