Dellero Younès, Berardocco Solenne, Bouchereau Alain
INRAE, Université Rennes, Institut Agro, IGEPP-UMR1349, P2M2-MetaboHUB, Le Rheu, 35653, France.
INRAE, Université Rennes, Institut Agro, IGEPP-UMR1349, P2M2-MetaboHUB, Le Rheu, 35653, France.
J Plant Physiol. 2024 Jan;292:154162. doi: 10.1016/j.jplph.2023.154162. Epub 2023 Dec 13.
Plant central carbon metabolism comprises several important metabolic pathways acting together to support plant growth and yield establishment. Despite the emergence of C-based dynamic approaches, the regulation of metabolic fluxes between light and dark conditions has not yet received sufficient attention for agronomically relevant plants. Here, we investigated the impact of light/dark conditions on carbon allocation processes within central carbon metabolism of Brassica napus after U-C-glucose incorporation into leaf discs. Leaf gas-exchanges and metabolite contents were weakly impacted by the leaf disc method and the incorporation of glucose. C-analysis by GC-MS showed that U-C-glucose was converted to fructose for de novo biosynthesis of sucrose at similar rates in both light and dark conditions. However, light conditions led to a reduced commitment of glycolytic carbons towards respiratory substrates (pyruvate, alanine, malate) and TCA cycle intermediates compared to dark conditions. Analysis of C-enrichment at the isotopologue level and metabolic pathway isotopic tracing reconstructions identified the contribution of multiple pathways to serine biosynthesis in light and dark conditions. However, the direct contribution of the glucose-6-phosphate shunt to serine biosynthesis was not observed. Our results also provided isotopic evidences for an active metabolic connection between the TCA cycle, glycolysis and photorespiration in light conditions through a rapid reallocation of TCA cycle decarboxylations back to the TCA cycle through photorespiration and glycolysis. Altogether, these results suggest the active coordination of core metabolic pathways across multiple compartments to reorganize C-flux modes.
植物中心碳代谢包括几个重要的代谢途径,它们共同作用以支持植物生长和产量形成。尽管基于碳的动态方法已经出现,但对于具有农学相关性的植物,光暗条件下代谢通量的调节尚未得到足够关注。在此,我们研究了光/暗条件对甘蓝型油菜中心碳代谢中碳分配过程的影响,方法是将U-C-葡萄糖掺入叶圆片中。叶圆片法和葡萄糖掺入对叶片气体交换和代谢物含量的影响较弱。气相色谱-质谱联用仪(GC-MS)进行的碳分析表明,在光照和黑暗条件下,U-C-葡萄糖以相似的速率转化为果糖用于蔗糖的从头生物合成。然而,与黑暗条件相比,光照条件导致糖酵解碳向呼吸底物(丙酮酸、丙氨酸、苹果酸)和三羧酸循环中间产物的分配减少。在同位素异构体水平上对碳富集的分析以及代谢途径同位素示踪重建确定了多种途径在光照和黑暗条件下对丝氨酸生物合成的贡献。然而,未观察到6-磷酸葡萄糖分流对丝氨酸生物合成的直接贡献。我们的结果还提供了同位素证据,表明在光照条件下,通过光呼吸和糖酵解将三羧酸循环脱羧产物快速重新分配回三羧酸循环,三羧酸循环、糖酵解和光呼吸之间存在活跃的代谢联系。总之,这些结果表明核心代谢途径在多个区室之间进行活跃协调以重组碳通量模式。