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Molecular adaptation of photoprotection: triplet states in light-harvesting proteins
Authors:Gall Andrew  Berera Rudi  Alexandre Maxime T A  Pascal Andrew A  Bordes Luc  Mendes-Pinto Maria M  Andrianambinintsoa Sandra  Stoitchkova Katerina V  Marin Alessandro  Valkunas Leonas  Horton Peter  Kennis John T M  van Grondelle Rienk  Ruban Alexander  Robert Bruno
Institution:CEA, Institute of Biology and Technology of Saclay, Gif sur Yvette, France;Department of Physics and Astronomy, Faculty of Sciences, Vrije Universiteit, Amsterdam, The Netherlands;§Center for Physical Sciences and Technology, Vilnius, Lithuania;Department of Theoretical Physics, Vilnius University, Vilnius, Lithuania;Department of Molecular Biology and Biotechnology, University of Sheffield, Sheffield, United Kingdom;∗∗School of Biological and Chemical Sciences, Queen Mary University of London, London, United Kingdom
Abstract:The photosynthetic light-harvesting systems of purple bacteria and plants both utilize specific carotenoids as quenchers of the harmful (bacterio)chlorophyll triplet states via triplet-triplet energy transfer. Here, we explore how the binding of carotenoids to the different types of light-harvesting proteins found in plants and purple bacteria provides adaptation in this vital photoprotective function. We show that the creation of the carotenoid triplet states in the light-harvesting complexes may occur without detectable conformational changes, in contrast to that found for carotenoids in solution. However, in plant light-harvesting complexes, the triplet wavefunction is shared between the carotenoids and their adjacent chlorophylls. This is not observed for the antenna proteins of purple bacteria, where the triplet is virtually fully located on the carotenoid molecule. These results explain the faster triplet-triplet transfer times in plant light-harvesting complexes. We show that this molecular mechanism, which spreads the location of the triplet wavefunction through the pigments of plant light-harvesting complexes, results in the absence of any detectable chlorophyll triplet in these complexes upon excitation, and we propose that it emerged as a photoprotective adaptation during the evolution of oxygenic photosynthesis.
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