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Picosecond fluorescence of intact and dissolved PSI-LHCI crystals
Authors:van Oort Bart  Amunts Alexey  Borst Jan Willem  van Hoek Arie  Nelson Nathan  van Amerongen Herbert  Croce Roberta
Institution:* Laboratory of Biophysics, Wageningen University, 6703 HA Wageningen, The Netherlands
Microspectroscopy Centre Wageningen, 6703 HA Wageningen, The Netherlands
Laboratory of Biochemistry, Wageningen University, 6703 HA Wageningen, The Netherlands
§ Department of Biochemistry, George S. Wise Faculty of Life Sciences, Tel Aviv University, Tel Aviv 69978, Israel
Department of Biophysical Chemistry/Groningen Biomolecular Sciences and Biotechnology Institute, University of Groningen, 9747 AG Groningen, The Netherlands
Abstract:Over the past several years, many crystal structures of photosynthetic pigment-protein complexes have been determined, and these have been used extensively to model spectroscopic results obtained on the same proteins in solution. However, the crystal structure is not necessarily identical to the structure of the protein in solution. Here, we studied picosecond fluorescence of photosystem I light-harvesting complex I (PSI-LHCI), a multisubunit pigment-protein complex that catalyzes the first steps of photosynthesis. The ultrafast fluorescence of PSI-LHCI crystals is identical to that of dissolved crystals, but differs considerably from most kinetics presented in the literature. In contrast to most studies, the data presented here can be modeled quantitatively with only two compartments: PSI core and LHCI. This yields the rate of charge separation from an equilibrated core (22.5 ± 2.5 ps) and rates of excitation energy transfer from LHCI to core (kLC) and vice versa (kCL). The ratio between these rates, R = kCL/kLC, appears to be wavelength-dependent and scales with the ratio of the absorption spectra of LHCI and core, indicating the validity of a detailed balance relation between both compartments. kLC depends slightly but nonsystematically on detection wavelength, averaging (9.4 ± 4.9 ps)−1. R ranges from 0.5 (<690 nm) to ∼1.3 above 720 nm.
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