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

Author:

Suzuki Yuji1ORCID,Ishiyama Keiki2ORCID,Yoon Dong-Kyung2ORCID,Takegahara-Tamakawa Yuki1,Kondo Eri2,Suganami Mao2ORCID,Wada Shinya3ORCID,Miyake Chikahiro3ORCID,Makino Amane2ORCID

Affiliation:

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

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

3. Graduate School of Agricultural Science, Kobe University, Kobe 657-8501, Japan

Abstract

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].

Funder

Scientific Research from the Japan Society for the Promotion of Science

Core Research for Evolutional Science and Technology from the Japan Science and Technology Agency

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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