The Photosynthetic Electron Transport Chain of Oxygenic Photosynthesis

被引:5
|
作者
Qi, Man [1 ]
Zhao, Ziyu [1 ]
Nixon, Peter J. [1 ,2 ]
机构
[1] Imperial Coll London, Dept Life Sci, Sir Ernst Chain Bldg Wolfson Labs, London, England
[2] Imperial Coll London, Dept Life Sci, Sir Ernst Chain Bldg Wolfson Labs, S Kensington Campus, London SW7 2AZ, England
来源
BIOELECTRICITY | 2023年 / 5卷 / 01期
基金
英国生物技术与生命科学研究理事会;
关键词
photosystem; ATP synthase; proton-motive force; thylakoid membrane; cyanobacteria; chloroplasts; CYTOCHROME B(6)F COMPLEX; PHOTOSYSTEM-II; O-2;
D O I
10.1089/bioe.2023.0003
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Oxygenic photosynthesis, performed by plants, algae, and cyanobacteria, is the major route by which solar energy is converted into chemical energy on earth. This process provides the essentials (e.g., food and fuels) for humans to survive and is responsible for oxygenating the earth's atmosphere, which allowed the evolution of multicellular life. Photon energy is harvested during the so-called "light reactions" and used to extract electrons from water, which are then transported through an electron transport chain-in a type of bioelectric current-that is coupled to the movement of protons across the thylakoid membrane, storing energy in the form of a proton electrochemical gradient. The net result of the light reactions is the synthesis of adenosine triphosphate and reduced nicotinamide adenine dinucleotide phosphate, which are used by the "dark" or "light-independent" reactions to convert carbon dioxide into carbohydrates in the Calvin-Benson cycle. In this study, we summarize the structure and function of the main redox-active proteins involved in electron transfer and highlight some recent developments aiming to enhance the efficiency and robustness of the light reactions.
引用
收藏
页码:31 / 38
页数:8
相关论文
共 50 条
  • [31] Inclusion of an oxygen pool into photosynthetic electron-transport chain
    Ivanov, B.
    Khorobrykh, S.
    Mubarakshina, M.
    Marina, K.
    PHOTOSYNTHESIS RESEARCH, 2007, 91 (2-3) : 193 - 193
  • [32] SPECIFIC BINDING OF INHIBITORS BY ELECTRON CARRIERS OF PHOTOSYNTHETIC ELECTRON-TRANSPORT CHAIN
    STROTMANN, H
    TISCHER, W
    EDELMANN, K
    BERICHTE DER DEUTSCHEN BOTANISCHEN GESELLSCHAFT, 1974, 87 (03): : 457 - 463
  • [33] ELECTRON TRANSPORT IN PHOTOSYNTHESIS
    WITT, HT
    DORING, G
    RUMBERG, B
    SCHMIDTM.P
    SIGGEL, U
    STIEHL, HH
    BROOKHAVEN SYMPOSIA IN BIOLOGY, 1966, (19) : 161 - &
  • [34] Primary Productivity Was Limited by Electron Donors Prior to the Advent of Oxygenic Photosynthesis
    Ward, Lewis M.
    Rasmussen, Birger
    Fischer, Woodward W.
    JOURNAL OF GEOPHYSICAL RESEARCH-BIOGEOSCIENCES, 2019, 124 (02) : 211 - 226
  • [35] Oxygenic photosynthesis and the distribution of chloroplasts
    Gantt, Elisabeth
    PHOTOSYNTHESIS RESEARCH, 2011, 107 (01) : 1 - 6
  • [36] On the origin of oxygenic photosynthesis and Cyanobacteria
    Sanchez-Baracaldo, Patricia
    Cardona, Tanai
    NEW PHYTOLOGIST, 2020, 225 (04) : 1440 - 1446
  • [37] Oxygenic photosynthesis without galactolipids
    Awai, Koichiro
    Ohta, Hiroyuki
    Sato, Naoki
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2014, 111 (37) : 13571 - 13575
  • [38] The evolution of oxygenic photosynthesis - A scenario
    Sauer, K.
    PHOTOSYNTHESIS RESEARCH, 2007, 91 (2-3) : 273 - 273
  • [39] Vibronic coherence in oxygenic photosynthesis
    Fuller F.D.
    Pan J.
    Gelzinis A.
    Butkus V.
    Senlik S.S.
    Wilcox D.E.
    Yocum C.F.
    Valkunas L.
    Abramavicius D.
    Ogilvie J.P.
    Nature Chemistry, 2014, 6 (8) : 706 - 711
  • [40] The origin and evolution of oxygenic photosynthesis
    Blankenship, RE
    Hartman, H
    TRENDS IN BIOCHEMICAL SCIENCES, 1998, 23 (03) : 94 - 97