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Tight relationship between two photosystems is robust in rice leaves under various nitrogen conditions.
Ozaki, Hiroshi; Mizokami, Yusuke; Sugiura, Daisuke; Sohtome, Takayuki; Miyake, Chikahiro; Sakai, Hidemitsu; Noguchi, Ko.
Afiliação
  • Ozaki H; School of Life Sciences, Tokyo University of Pharmacy and Life Sciences, Horinouchi 1432-1, Hachioji, Tokyo, 192-0392, Japan.
  • Mizokami Y; School of Life Sciences, Tokyo University of Pharmacy and Life Sciences, Horinouchi 1432-1, Hachioji, Tokyo, 192-0392, Japan.
  • Sugiura D; Graduate School of Bioagricultural Sciences, Nagoya University, Chikusa, Nagoya, 464-8601, Japan.
  • Sohtome T; Department of System Development, Bunkoukeiki Co. Ltd, Tokyo, 192-0033, Japan.
  • Miyake C; Department of Applied Biological Science, Graduate School for Agricultural Science, Kobe University, Kobe, 657-8501, Japan.
  • Sakai H; Institute for Agro-Environmental Sciences, National Agriculture and Food Research Organization (NARO), Ibaraki, Japan.
  • Noguchi K; School of Life Sciences, Tokyo University of Pharmacy and Life Sciences, Horinouchi 1432-1, Hachioji, Tokyo, 192-0392, Japan. knoguchi@toyaku.ac.jp.
J Plant Res ; 136(2): 201-210, 2023 Mar.
Article em En | MEDLINE | ID: mdl-36536238
ABSTRACT
Leaf nitrogen (N) level affects not only photosynthetic CO2 assimilation, but also two photosystems of the photosynthetic electron transport. The quantum yield of photosystem II [Y(II)] and the non-photochemical yield due to the donor side limitation of photosystem I [Y(ND)], which denotes the fraction of oxidized P700 (P700+) to total P700, oppositely change depending on leaf N level, and the negative correlation between these two parameters has been reported in leaves of plants cultivated at various N levels in growth chambers. Here, we aimed to clarify whether this correlation is maintained after short-term changes in leaf N level, and what parameters are the most responsive to the changes in leaf N level under field conditions. We cultivated rice varieties at two N fertilization levels in paddy fields, treated additional N fertilization to plants grown at low N, and measured parameters of two photosystems of mature leaves. In rice leaves under low N condition, the Y(ND) increased and the photosynthetic linear electron flow was suppressed. In this situation, the accumulation of P700+ can function as excess energy dissipation. After the N addition, both Y(ND) and Y(II) changed, and the negative correlation between them was maintained. We used a newly-developed device to assess the photosystems. This device detected the similar changes in Y(ND) after the N addition, and the negative correlation between Y(ND) and photosynthetic O2 evolution rates was observed in plants under various N conditions. This study has provided strong field evidence that the Y(ND) largely changes depending on leaf N level, and that the Y(II) and Y(ND) are negatively correlated with each other irrespective of leaf N level, varieties and annual variation. The Y(ND) can stably monitor the leaf N status and the linear electron flow under field conditions.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Oryza Idioma: En Revista: J Plant Res Assunto da revista: BOTANICA Ano de publicação: 2023 Tipo de documento: Article País de afiliação: Japão

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Oryza Idioma: En Revista: J Plant Res Assunto da revista: BOTANICA Ano de publicação: 2023 Tipo de documento: Article País de afiliação: Japão