A simple artificial light-harvesting dyad as a model for excess energy dissipation in oxygenic photosynthesis

被引:115
|
作者
Berera, R
Herrero, C
van Stokkum, IHM
Vengris, M
Kodis, G
Palacios, RE
van Amerongen, H
van Grondelle, R
Gust, D
Moore, TA
Moore, AL
Kennis, JTM [1 ]
机构
[1] Vrije Univ Amsterdam, Fac Sci, Div Phys & Astron, Dept Biophys, NL-1081 HV Amsterdam, Netherlands
[2] Arizona State Univ, Dept Chem & Biochem, Tempe, AZ 85287 USA
[3] Arizona State Univ, Ctr Study Early Events Photosynth, Tempe, AZ 85287 USA
[4] Univ Wageningen & Res Ctr, Lab Biophys, NL-6703 HA Wageningen, Netherlands
关键词
artificial photosynthesis; carotenoid; nonphotochemical quenching; photoprotection; xanthophyll cycle;
D O I
10.1073/pnas.0508530103
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Under excess illumination, plant photosystem 11 dissipates excess energy through the quenching of chlorophyll fluorescence, a process known as nonphotochemical quenching. Activation of nonphotochemical quenching has been linked to the conversion of a carotenoid with a conjugation length of nine double bonds (violaxanthin) into an 11-double-bond carotenoid (zeaxanthin). It has been suggested that the increase in the conjugation length turns the carotenoid from a nonquencher into a quencher of chlorophyll singlet excited states, but unequivocal evidence is lacking. Here, we present a transient absorption spectroscopic study on a model system made up of a zinc phthalocyanine (PC) molecule covalently linked to carotenoids with 9, 10, or 11 conjugated carbon-carbon double bonds. We show that a carotenoid can act as an acceptor of PC excitation energy, thereby shortening its singlet excited-state lifetime. The conjugation length of the carotenoid is critical to the quenching process. Remarkably, the addition of only one double bond can turn the carotenoid from a nonquencher into a very strong quencher. By studying the solvent polarity dependence of the quenching using target analysis of the time-resolved data, we show that the quenching proceeds through energy transfer from the excited PC to the optically forbidden S, state of the carotenoid, coupled to an intramolecular charge-transfer state. The mechanism for excess energy dissipation in photosystem 11 is discussed in view of the insights obtained on this simple model system.
引用
收藏
页码:5343 / 5348
页数:6
相关论文
共 50 条
  • [21] Artificial photosynthesis dendrimers integrating light-harvesting, electron delivery and hydrogen production
    Xun, Zhiqing
    Yu, Tianjun
    Zeng, Yi
    Chen, Jinping
    Zhang, Xiaohui
    Yang, Guoqiang
    Li, Yi
    JOURNAL OF MATERIALS CHEMISTRY A, 2015, 3 (24) : 12965 - 12971
  • [22] Powering the future of molecular artificial photosynthesis with light-harvesting metallosupramolecular dye assemblies
    Frischmann, Peter D.
    Mahata, Kingsuk
    Wuerthner, Frank
    CHEMICAL SOCIETY REVIEWS, 2013, 42 (04) : 1847 - 1870
  • [23] Light harvesting in oxygenic photosynthesis: Structural biology meets spectroscopy
    Croce, Roberta
    van Amerongen, Herbert
    SCIENCE, 2020, 369 (6506) : 933 - +
  • [24] Light-Harvesting Complex Stress-Related Proteins Catalyze Excess Energy Dissipation in Both Photosystems of Physcomitrella patens
    Pinnola, Alberta
    Cazzaniga, Stefano
    Alboresi, Alessandro
    Nevo, Reinat
    Levin-Zaidman, Smadar
    Reich, Ziv
    Bassi, Roberto
    PLANT CELL, 2015, 27 (11): : 3213 - 3227
  • [25] CHLOROPHYLL A IN POLYSTYRENE AS A MODEL OF LIGHT-HARVESTING ANTENNA OF PHOTOSYNTHESIS - A FLUORESCENCE STUDY
    GODIK, VI
    URBANOVA, M
    BORISOV, AY
    VACEK, K
    STUDIA BIOPHYSICA, 1981, 82 (03): : 179 - 184
  • [26] Dephasing and Dissipation in a Source-Drain Model of Light-Harvesting Systems
    Xiong, Shi-Jie
    Chen, Lipeng
    Zhao, Yang
    CHEMPHYSCHEM, 2014, 15 (13) : 2859 - 2870
  • [27] Zn-containing porphyrin as a biomimetic light-harvesting molecule for biocatalyzed artificial photosynthesis
    Kim, Jae Hong
    Lee, Sahng Ha
    Lee, Joon Seok
    Lee, Minah
    Park, Chan Beum
    CHEMICAL COMMUNICATIONS, 2011, 47 (37) : 10227 - 10229
  • [28] Excitation energy transfer in model light-harvesting antennae
    Subramanian, V
    Evans, DG
    JOURNAL OF PHYSICAL CHEMISTRY B, 2004, 108 (03): : 1085 - 1095
  • [29] Emergent models for artificial light-harvesting
    Creatore, Celestino
    Chin, Alex W.
    Parker, Michael A.
    Emmott, Stephen
    FRONTIERS IN MATERIALS, 2015, 2
  • [30] Energy dissipation mechanisms in the FCPb light-harvesting complex of the diatom Cyclotella meneghiniana
    Elnour, Huzifa M. A. M.
    Dietzel, Lars
    Ramanan, Charusheela
    Buechel, Claudia
    van Grondelle, Rienk
    Krueger, Tjaart P. J.
    BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 2018, 1859 (10): : 1151 - 1160