Conservation and dissipation of light energy in desiccation-tolerant photoautotrophs, two sides of the same coin

被引:18
作者
Heber, Ulrich [1 ]
机构
[1] Univ Wurzburg, Julius von Sachs Inst, D-97082 Wurzburg, Germany
关键词
Desiccation tolerance; Energy conservation; Energy dissipation; Reaction centres; Photosynthesis; Photoprotection; SINGLET OXYGEN PRODUCTION; PHOTOSYSTEM-II; REACTION CENTERS; PHOTOSYNTHETIC ORGANISMS; PHOTOCHEMICAL-REACTIONS; CHARGE SEPARATION; CATION FORMATION; PHOTOPROTECTION; MECHANISM; LICHEN;
D O I
10.1007/s11120-012-9738-5
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Conservation of light energy in photosynthesis is possible only in hydrated photoautotrophs. It requires complex biochemistry and is limited in capacity. Charge separation in reaction centres of photosystem II initiates energy conservation but opens also the path to photooxidative damage. A main mechanism of photoprotection active in hydrated photoautotrophs is controlled by light. This is achieved by coupling light flux to the protonation of a special thylakoid protein which activates thermal energy dissipation. This mechanism facilitates the simultaneous occurrence of energy conservation and energy dissipation but cannot completely prevent damage by light. Continuous metabolic repair is required to compensate damage. More efficient photoprotection is needed by desiccation-tolerant photoautotrophs. Loss of water during desiccation activates ultra-fast energy dissipation in mosses and lichens. Desiccation-induced energy dissipation neither requires a protonation reaction nor light but photoprotection often increases when light is present during desiccation. Two different mechanisms contribute to photoprotection of desiccated photoautotrophs. One facilitates energy dissipation in the antenna of photosystem II which is faster than energy capture by functional reaction centres. When this is insufficient for full photoprotection, the other one permits energy dissipation in the reaction centres themselves.
引用
收藏
页码:5 / 13
页数:9
相关论文
共 47 条
  • [1] Architecture of a charge-transfer state regulating light harvesting in a plant antenna protein
    Ahn, Tae Kyu
    Avenson, Thomas J.
    Ballottari, Matteo
    Cheng, Yuan-Chung
    Niyogi, Krishna K.
    Bassi, Roberto
    Fleming, Graham R.
    [J]. SCIENCE, 2008, 320 (5877) : 794 - 797
  • [2] [Anonymous], 1963, STUDIES MICROALGAE P
  • [3] PHOTOINHIBITION OF PHOTOSYSTEM-2 - INACTIVATION, PROTEIN DAMAGE AND TURNOVER
    ARO, EM
    VIRGIN, I
    ANDERSSON, B
    [J]. BIOCHIMICA ET BIOPHYSICA ACTA, 1993, 1143 (02) : 113 - 134
  • [4] Production and scavenging of reactive oxygen species in chloroplasts and their functions
    Asada, Kozi
    [J]. PLANT PHYSIOLOGY, 2006, 141 (02) : 391 - 396
  • [5] Zeaxanthin radical cation formation in minor light-harvesting complexes of higher plant antenna
    Avenson, Thomas J.
    Ahn, Tae Kyu
    Zigmantas, Donatas
    Niyogi, Krishna K.
    Li, Zhirong
    Ballottari, Matteo
    Bassi, Roberto
    Fleming, Graham R.
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 2008, 283 (06) : 3550 - 3558
  • [6] Crystal structure of plant light-harvesting complex shows the active, energy-transmitting state
    Barros, Tiago
    Royant, Antoine
    Standfuss, Jorg
    Dreuw, Andreas
    Kuhlbrandt, Werner
    [J]. EMBO JOURNAL, 2009, 28 (03) : 298 - 306
  • [7] Berera R, 2011, INT WORKSH MECH NONP, P57
  • [8] Analysis of LhcSR3, a Protein Essential for Feedback De-Excitation in the Green Alga Chlamydomonas reinhardtii
    Bonente, Giulia
    Ballottari, Matteo
    Truong, Thuy B.
    Morosinotto, Tomas
    Ahn, Tae K.
    Fleming, Graham R.
    Niyogi, Krishna K.
    Bassi, Roberto
    [J]. PLOS BIOLOGY, 2011, 9 (01)
  • [9] Clegg RM, 2010, P OPTICAL BIOPSY, P1
  • [10] Demmig-Adams B, 2006, ADV PHOTOSYNTHESIS R, V21