1Research School of Biology, Australian National University, Canberra, ACT 2601 Australia.
2Present Address: IRHS (Institut de Recherche en Horticulture et Semences), UMR 1345, INRA, Agrocampus-Ouest, Université d'Angers, SFR 4207 QuaSaV, 49071 Angers, Beaucouzé France.
Commun Biol. 2019 Oct 16;2:379. doi: 10.1038/s42003-019-0616-y. eCollection 2019.
Intense efforts have been devoted to describe the biochemical pathway of plant sulphur (S) assimilation from sulphate. However, essential information on metabolic regulation of S assimilation is still lacking, such as possible interactions between S assimilation, photosynthesis and photorespiration. In particular, does S assimilation scale with photosynthesis thus ensuring sufficient S provision for amino acids synthesis? This lack of knowledge is problematic because optimization of photosynthesis is a common target of crop breeding and furthermore, photosynthesis is stimulated by the inexorable increase in atmospheric CO. Here, we used high-resolution S and C tracing technology with NMR and LC-MS to access direct measurement of metabolic fluxes in S assimilation, when photosynthesis and photorespiration are varied via the gaseous composition of the atmosphere (CO, O). We show that S assimilation is stimulated by photorespiratory metabolism and therefore, large photosynthetic fluxes appear to be detrimental to plant cell sulphur nutrition.
人们投入了大量精力来描述植物从硫酸盐中吸收硫的生化途径。然而,关于硫吸收的代谢调控的重要信息仍然缺乏,例如硫吸收、光合作用和光呼吸之间可能存在的相互作用。特别是,硫吸收是否与光合作用成比例,从而确保为氨基酸合成提供足够的硫供应?由于缺乏这方面的知识,优化光合作用成为作物选育的常见目标,此外,光合作用还受到大气中 CO 浓度不断增加的刺激。在这里,我们使用高分辨率的 S 和 C 示踪技术与 NMR 和 LC-MS 来获取通过大气成分(CO、O)变化时硫吸收代谢通量的直接测量值。我们表明,硫吸收受到光呼吸代谢的刺激,因此,大的光合作用通量似乎对植物细胞的硫营养有害。