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抑制叶绿体磷酸丙糖异构酶可引发水稻的无机磷限制光合作用。

Suppression of chloroplast triose phosphate isomerase evokes inorganic phosphate-limited photosynthesis in rice.

机构信息

Faculty of Agriculture, Iwate University, Morioka, Iwate 020-8550, Japan.

Graduate School of Agricultural Science, Tohoku University, Sendai 980-8572, Japan.

出版信息

Plant Physiol. 2022 Mar 4;188(3):1550-1562. doi: 10.1093/plphys/kiab576.

Abstract

The availability of inorganic phosphate (Pi) for ATP synthesis is thought to limit photosynthesis at elevated [CO2] when Pi regeneration via sucrose or starch synthesis is limited. We report here another mechanism for the occurrence of Pi-limited photosynthesis caused by insufficient capacity of chloroplast triose phosphate isomerase (cpTPI). In cpTPI-antisense transgenic rice (Oryza sativa) plants with 55%-86% reductions in cpTPI content, CO2 sensitivity of the rate of CO2 assimilation (A) decreased and even reversed at elevated [CO2]. The pool sizes of the Calvin-Benson cycle metabolites from pentose phosphates to 3-phosphoglycerate increased at elevated [CO2], whereas those of ATP decreased. These phenomena are similar to the typical symptoms of Pi-limited photosynthesis, suggesting sufficient capacity of cpTPI is necessary to prevent the occurrence of Pi-limited photosynthesis and that cpTPI content moderately affects photosynthetic capacity at elevated [CO2]. As there tended to be slight variations in the amounts of total leaf-N depending on the genotypes, relationships between A and the amounts of cpTPI were examined after these parameters were expressed per unit amount of total leaf-N (A/N and cpTPI/N, respectively). A/N at elevated [CO2] decreased linearly as cpTPI/N decreased before A/N sharply decreased, owing to further decreases in cpTPI/N. Within this linear range, decreases in cpTPI/N by 80% led to decreases up to 27% in A/N at elevated [CO2]. Thus, cpTPI function is crucial for photosynthesis at elevated [CO2].

摘要

无机磷酸盐(Pi)的可利用性被认为会限制光合作用,尤其是在[CO2]升高时,如果蔗糖或淀粉合成过程中不能有效地再生 Pi。我们在此报告另一种由叶绿体 3-磷酸甘油醛异构酶(cpTPI)容量不足引起 Pi 限制光合作用的机制。在 cpTPI 反义转基因水稻(Oryza sativa)植株中,cpTPI 含量降低了 55%-86%,CO2 同化速率(A)对[CO2]的敏感性降低,甚至在[CO2]升高时发生逆转。在[CO2]升高时,从五碳糖磷酸到 3-磷酸甘油酸的卡尔文-本森循环代谢物的池大小增加,而 ATP 的池大小减少。这些现象类似于典型的 Pi 限制光合作用的症状,表明 cpTPI 具有足够的容量来防止 Pi 限制光合作用的发生,并且 cpTPI 含量适度影响[CO2]升高时的光合作用能力。由于总叶氮量的多少因基因型而异,因此在这些参数表示为总叶氮量的单位量(A/N 和 cpTPI/N,分别)后,检查了 A 与 cpTPI/N 之间的关系。在 A/N 急剧下降之前,由于 cpTPI/N 的进一步下降,[CO2]升高时 A/N 呈线性下降。在这个线性范围内,cpTPI/N 减少 80%导致[CO2]升高时 A/N 减少 27%。因此,cpTPI 功能对于[CO2]升高时的光合作用至关重要。

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