Research School of Biology, ANU Joint College of Sciences, Australian National University, Canberra, ACT 2601, Australia; and Institut de Recherche en Horticulture et Semences, INRA d'Angers, Université d'Angers, Structure Fédérative de Recherche QUASAV, 42 rue Georges Morel, Beaucouzé 49071, France.
AgroBiotechnology Institute (IdAB), CSIC-Government of Navarre, Av. Pamplona 123, Mutilva 31006, Spain.
Funct Plant Biol. 2024 Feb;51. doi: 10.1071/FP23255.
While the effect of CO2 enrichment on wheat (Triticum spp.) photosynthesis, nitrogen content or yield has been well-studied, the impact of elevated CO2 on metabolic pathways in organs other than leaves is poorly documented. In particular, glumes and awns, which may refix CO2 respired by developing grains and be naturally exposed to higher-than-ambient CO2 mole fraction, could show specific responses to elevated CO2 . Here, we took advantage of a free-air CO2 enrichment experiment and performed multilevel analyses, including metabolomics, ionomics, proteomics, major hormones and isotopes in Triticum durum . While in leaves, elevated CO2 tended to accelerate amino acid metabolism with many significantly affected metabolites, the effect on glumes and awns metabolites was modest. There was a lower content in compounds of the polyamine pathway (along with uracile and allantoin) under elevated CO2 , suggesting a change in secondary N metabolism. Also, cytokinin metabolism appeared to be significantly affected under elevated CO2 . Despite this, elevated CO2 did not affect the final composition of awn and glume organic matter, with the same content in carbon, nitrogen and other elements. We conclude that elevated CO2 mostly impacts on leaf metabolism but has little effect in awns and glumes, including their composition at maturity.
虽然 CO2 富集对小麦(Triticum spp.)光合作用、氮含量或产量的影响已经得到了很好的研究,但 CO2 升高对叶片以外器官代谢途径的影响却鲜有记录。特别是颖片和芒,它们可能会重新固定发育中的谷物呼吸释放的 CO2,并且自然暴露在高于环境的 CO2 摩尔分数下,可能会对 CO2 升高表现出特定的响应。在这里,我们利用自由空气 CO2 富集实验进行了多层次分析,包括代谢组学、离子组学、蛋白质组学、硬质小麦中的主要激素和稳定同位素。虽然在叶片中,CO2 升高往往会加速氨基酸代谢,许多代谢物受到显著影响,但对颖片和芒代谢物的影响较小。在 CO2 升高的情况下,多胺途径的化合物(包括尿嘧啶和尿囊素)含量较低,表明次生氮代谢发生了变化。此外,细胞分裂素代谢似乎在 CO2 升高下受到显著影响。尽管如此,CO2 升高并没有影响芒和颖片有机物的最终组成,其碳、氮和其他元素的含量相同。我们的结论是,CO2 升高主要影响叶片代谢,但对芒和颖片的影响很小,包括它们在成熟时的组成。