4.7 Article

Effect of oxygen on the non-photochemical quenching of vascular plants and potential oxygen deficiency in the stroma of PsbS-knock-out rice

Journal

PLANT SCIENCE
Volume 286, Issue -, Pages 1-6

Publisher

ELSEVIER IRELAND LTD
DOI: 10.1016/j.plantsci.2019.05.015

Keywords

Cyclic electron flow; Non-photochemical quenching; Oxygen; Photosynthesis; PsbS protein; Rice

Funding

  1. Next-Generation Biogreen 21 Program (SSAC) [PJ013155012019]
  2. Rural Development Administration, Republic of Korea
  3. Basic Science Research Program of the National Foundation of Korea (NRF) - Ministry of Science, ICT and Future Planning [NRF-2017R1A2A2A05001287]
  4. Science Development Foundation under the President of the Republic of Azerbaijan [EIF-KETPL-2-2015-1(25)-56/35/3]
  5. Rural Development Administration (RDA), Republic of Korea [PJ013155012019] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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The excessive and harmful light energy absorbed by the photosystem (PS) II of higher plants is dissipated as heat through a protective mechanism termed non-photochemical quenching (NPQ) of chlorophyll fluorescence. PsbS-knock-out (KO) mutants lack the trans-thylakoid proton gradient (Delta pH)-dependent part of NPQ. To elucidate the molecular mechanism of NPQ, we investigated its dependency on oxygen. The development of NPQ in wild-type (WT) rice under low-oxygen (LO) conditions was reduced to more than 50% of its original value. However, under high-oxygen (HO) conditions, the NPQ of both WT and PsbS-KO mutants recovered. Moreover, WT and PsbS-KO mutant leaves infiltrated with the Delta pH dissipating uncoupler nigericin showed increased NPQ values under HO conditions. The experiments using intact chloroplasts and protoplasts of Arabidopsis thaliana supported that the LO effects observed in rice leaves were not due to carbon dioxide deficiency. There was a noticeable 90% reduction in the half-time of P700 oxidation rate in LO-treated leaves compared with that of WT control leaves, but the HO treatment did not significantly change the half-time of P700 oxidation rate. Overall, the results obtained here indicate that the stroma of the PsbS-KO plants could be potentially under O-2 deficiency. Because the functions of PsbS in rice leaves are likely to be similar to those in other higher plants, our findings offer novel insights into the role of oxygen in the development of NPQ.

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