Photoprotection mechanisms under different CO2 regimes during photosynthesis in a green alga Chlorella variabilis

被引:0
作者
Yoshifumi Ueno
Ginga Shimakawa
Shimpei Aikawa
Chikahiro Miyake
Seiji Akimoto
机构
[1] Kobe University,Graduate School of Science
[2] Kobe University,Graduate School of Agricultural Science
[3] Japan International Research Center for Agricultural Sciences,Institute for Integrative Biology of the Cell
[4] CEA,undefined
[5] CNRS,undefined
[6] Université Paris-Sud,undefined
[7] Université Paris-Saclay,undefined
来源
Photosynthesis Research | 2020年 / 144卷
关键词
Alternative electron flow; Excitation energy transfer; Green alga; Light harvesting; Non-photochemical quenching; Time-resolved fluorescence spectroscopy;
D O I
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中图分类号
学科分类号
摘要
Oxygenic photosynthesis converts light energy into chemical energy via electron transport and assimilates CO2 in the Calvin–Benson cycle with the chemical energy. Thus, high light and low CO2 conditions induce the accumulation of electrons in the photosynthetic electron transport system, resulting in the formation of reactive oxygen species. To prevent the accumulation of electrons, oxygenic photosynthetic organisms have developed photoprotection mechanisms, including non-photochemical quenching (NPQ) and alternative electron flow (AEF). There are diverse molecular mechanisms underlying NPQ and AEF, and the corresponding molecular actors have been identified and characterized using a model green alga Chlamydomonas reinhardtii. In contrast, detailed information about the photoprotection mechanisms is lacking for other green algal species. In the current study, we examined the photoprotection mechanisms responsive to CO2 in the green alga Chlorella variabilis by combining the analyses of pulse-amplitude-modulated fluorescence, O2 evolution, and the steady-state and time-resolved fluorescence spectra. Under the CO2-limited condition, ΔpH-dependent NPQ occurred in photosystems I and II. Moreover, O2-dependent AEF was also induced. Under the CO2-limited condition with carbon supplementation, NPQ was relaxed and light-harvesting chlorophyll-protein complex II was isolated from both photosystems. In C. variabilis, the O2-dependent AEF and the mechanisms that instantly convert the light-harvesting functions of both photosystems may be important for maintaining efficient photosynthetic activities under various CO2 conditions.
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页码:397 / 407
页数:10
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  • [1] Akimoto S(2012)Adaptation of light-harvesting systems of Biochim Biophys Acta 1817 1483-1489
  • [2] Yokono M(2016) to light conditions, probed by time-resolved fluorescence spectroscopy Biochim Biophys Acta 1857 1651-1660
  • [3] Hamada F(2010)Dynamic reorganization of photosystem II supercomplexes in response to variations in light intensities Proc Natl Acad Sci USA 107 11128-11133
  • [4] Teshigahara A(2015) mutants affected on heat dissipation clarify the evolution of photoprotection mechanisms upon land colonization Life 5 716-743
  • [5] Aikawa S(2013)Cyanobacterial oxygenic photosynthesis is protected by flavodiiron proteins Plant Cell 25 545-557
  • [6] Kondo A(2016)A dual strategy to cope with high light in Proc Natl Acad Sci USA 113 14864-14869
  • [7] Albanese P(2017)UV-B photoreceptor-mediated protection of the photosynthetic machinery in Curr Opin Plant Biol 37 78-86
  • [8] Manfredi M(2005)Alternative electron transport pathways in photosynthesis: a confluence of regulation Photosynth Res 84 173-180
  • [9] Meneghesso A(2016)Origin of the F685 and F695 fluorescence in photosystem II J Biol Chem 291 7334-7346
  • [10] Marengo E(2010)Identification of pH-sensing sites in the light harvesting complex stress-related 3 protein essential for triggering non-photochemical quenching in Trends Plant Sci 15 330-336