Excitation energy transfer in the LHC-II trimer: a model based on the new 2.72 Å structure

被引:0
|
作者
Juha Linnanto
Jari Martiskainen
Viivi Lehtovuori
Janne Ihalainen
Robertas Kananavicius
Roberto Barbato
Jouko Korppi-Tommola
机构
[1] University of Jyväskylä,Physical Chemistry Laboratory
[2] Università del Piemonte Orientale,Dipartimento di Scienze e Tecnologie Avanzate
来源
Photosynthesis Research | 2006年 / 87卷
关键词
energy transfer; exciton; femtosecond; LHC-II; light harvesting;
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学科分类号
摘要
Energy transfer of the light harvesting complex LHC-II trimer, extracted from spinach, was studied in the Qy region at room temperature by femtosecond transient absorption spectroscopy. Configuration interaction exciton method [Linnanto et al. (1999) J Phys Chem B 103: 8739–8750] and 2.72 Å structural information reported by Liu et al. was used to calculate spectroscopic properties and excitation energy transfer rates of the complex. Site energies of the pigments and coupling constants of pigment pairs in close contact were calculated by using a quantum chemical configuration interaction method. Gaussian random variation of the diagonal and off-diagonal exciton matrix elements was used to account for inhomogeneous broadening. Rate calculations included only the excitonic states initially excited and probed in the experiments. A kinetic model was used to simulate time and wavelength dependent absorption changes after excitation on the blue side of the Qy transition and compared to experimentally recorded rates. Analysis of excitonic wavefunctions allowed identification of pigments initially excited and probed into later. It was shown that excitation of the blue side of the Qy band of a single LHC-II complex results in energy transfer from chlorophyll b’s of the lumenal side to chlorophyll a’s located primarly on one of the monomers of the stromal side.
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页码:267 / 279
页数:12
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