Laboratory for Molecular Photobioenergetics, HUN-REN Biological Research Centre, Institute of Plant Biology, Temesvári krt. 62, Szeged H-6726, Hungary.
Doctoral School of Biology, University of Szeged, Közép fasor 52, Szeged H-6722, Hungary.
Plant Physiol. 2024 Oct 1;196(2):1691-1711. doi: 10.1093/plphys/kiae409.
Ascorbate (Asc) is a major plant metabolite that plays crucial roles in various processes, from reactive oxygen scavenging to epigenetic regulation. However, to what extent and how Asc modulates metabolism is largely unknown. We investigated the consequences of chloroplastic and total cellular Asc deficiencies by studying chloroplastic Asc transporter mutant lines lacking PHOSPHATE TRANSPORTER 4; 4 and the Asc-deficient vtc2-4 mutant of Arabidopsis (Arabidopsis thaliana). Under regular growth conditions, both Asc deficiencies caused minor alterations in photosynthesis, with no apparent signs of oxidative damage. In contrast, metabolomics analysis revealed global and largely overlapping alterations in the metabolome profiles of both Asc-deficient mutants, suggesting that chloroplastic Asc modulates plant metabolism. We observed significant alterations in amino acid metabolism, particularly in arginine metabolism, activation of nucleotide salvage pathways, and changes in secondary metabolism. In addition, proteome-wide analysis of thermostability revealed that Asc may interact with enzymes involved in arginine metabolism, the Calvin-Benson cycle, and several photosynthetic electron transport components. Overall, our results suggest that, independent of oxidative stress, chloroplastic Asc modulates the activity of diverse metabolic pathways in vascular plants and may act as an internal metabolite signal.
抗坏血酸(Asc)是一种主要的植物代谢物,在各种过程中发挥着至关重要的作用,从清除活性氧到表观遗传调控。然而,Asc 调节代谢的程度和方式在很大程度上尚不清楚。我们通过研究缺乏 PHOSPHATE TRANSPORTER 4;4 的质体 Asc 转运体突变体和拟南芥(Arabidopsis thaliana)的 Asc 缺陷型 vtc2-4 突变体,研究了质体和总细胞 Asc 缺乏的后果。在常规生长条件下,两种 Asc 缺乏都导致光合作用的微小变化,没有明显的氧化损伤迹象。相比之下,代谢组学分析显示两种 Asc 缺陷突变体的代谢组图谱都存在广泛且大部分重叠的改变,表明质体 Asc 调节植物代谢。我们观察到氨基酸代谢的显著改变,特别是精氨酸代谢、核苷酸补救途径的激活以及次生代谢的改变。此外,耐热性的全蛋白质组分析表明,Asc 可能与参与精氨酸代谢、卡尔文-本森循环和几种光合作用电子传递成分的酶相互作用。总的来说,我们的结果表明,质体 Asc 独立于氧化应激调节维管植物中多种代谢途径的活性,并且可能作为一种内部代谢物信号发挥作用。