Centre for Crop Systems Analysis, Department of Plant Sciences, Wageningen University & Research, PO Box 430, 6700 AK Wageningen, The Netherlands.
Institute of Plant Protection, Jiangsu Academy of Agricultural Sciences, Nanjing, Jiangsu, China.
J Exp Bot. 2023 Nov 21;74(21):6692-6707. doi: 10.1093/jxb/erad329.
Triose phosphate utilization (TPU) is a biochemical process indicating carbon sink-source (im)balance within leaves. When TPU limits leaf photosynthesis, photorespiration-associated amino acid exports probably provide an additional carbon outlet and increase leaf CO2 uptake. However, whether TPU is modulated by whole-plant sink-source relations and nitrogen (N) budgets remains unclear. We address this question by model analyses of gas-exchange data measured on leaves at three growth stages of rice plants grown at two N levels. Sink-source ratio was manipulated by panicle pruning, by using yellower-leaf variant genotypes, and by measuring photosynthesis on adaxial and abaxial leaf sides. Across all these treatments, higher leaf N content resulted in the occurrence of TPU limitation at lower intercellular CO2 concentrations. Photorespiration-associated amino acid export was greater in high-N leaves, but was smaller in yellower-leaf genotypes, panicle-pruned plants, and for abaxial measurement. The feedback inhibition of panicle pruning on rates of TPU was not always observed, presumably because panicle pruning blocked N remobilization from leaves to grains and the increased leaf N content masked feedback inhibition. The leaf-level TPU limitation was thus modulated by whole-plant sink-source relations and N budgets during rice grain filling, suggesting a close link between within-leaf and whole-plant sink limitations.
三碳糖磷酸利用(TPU)是一种生化过程,表明叶片内的碳汇-源(im)平衡。当 TPU 限制叶片光合作用时,与光呼吸相关的氨基酸输出可能提供了额外的碳出口,并增加了叶片 CO2 吸收。然而,TPU 是否受到整株植物源-汇关系和氮(N)预算的调节尚不清楚。我们通过对在两个氮水平下生长的水稻植株在三个生长阶段的叶片气体交换数据进行模型分析来解决这个问题。通过穗修剪、使用黄叶变体基因型以及测量叶片腹面和背面的光合作用来操纵源-汇比。在所有这些处理中,较高的叶片 N 含量导致在较低的细胞间 CO2 浓度下发生 TPU 限制。高氮叶片的光呼吸相关氨基酸输出较大,但在黄叶基因型、穗修剪植物和背面测量中较小。穗修剪对 TPU 速率的反馈抑制并不总是观察到,可能是因为穗修剪阻止了叶片中氮向籽粒的再移动,并且增加的叶片 N 含量掩盖了反馈抑制。因此,在水稻灌浆期间,叶片水平的 TPU 限制受到整株植物源-汇关系和 N 预算的调节,这表明叶片内和整株植物的源限制之间存在密切联系。