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Alternative photosynthetic electron flow to oxygen in marine Synechococcus
Authors:Shaun Bailey  Anastasios Melis  Pierre Cardol  Giovanni Finazzi  Gry Mine Berg  Jeff Shrager
Institution:a The Carnegie Institution, Department of Plant Biology, 260 Panama Street, Stanford, CA 94305, USA
b Department of Plant and Microbial Biology, 111 Koshland Hall, University of California, Berkeley, CA 94720, USA
c UMR 7141,CNRS-Université Paris 6, Institut de Biologie Physico-Chimique, 75005 Paris, France
d Department of Life Sciences, Université de Liège, 4000 Liège, Belgium
e Department of Geophysics, Stanford University, Stanford, CA 94305, USA
f Civil and Environmental Engineering, Stanford University, Stanford, CA 94305, USA
Abstract:Cyanobacteria dominate the world's oceans where iron is often barely detectable. One manifestation of low iron adaptation in the oligotrophic marine environment is a decrease in levels of iron-rich photosynthetic components, including the reaction center of photosystem I and the cytochrome b6f complex R.F. Strzepek and P.J. Harrison, Photosynthetic architecture differs in coastal and oceanic diatoms, Nature 431 (2004) 689-692.]. These thylakoid membrane components have well characterised roles in linear and cyclic photosynthetic electron transport and their low abundance creates potential impediments to photosynthetic function. Here we show that the marine cyanobacterium Synechococcus WH8102 exhibits significant alternative electron flow to O2, a potential adaptation to the low iron environment in oligotrophic oceans. This alternative electron flow appears to extract electrons from the intersystem electron transport chain, prior to photosystem I. Inhibitor studies demonstrate that a propyl gallate-sensitive oxidase mediates this flow of electrons to oxygen, which in turn alleviates excessive photosystem II excitation pressure that can often occur even at relatively low irradiance. These findings are also discussed in the context of satisfying the energetic requirements of the cell when photosystem I abundance is low.
Keywords:cytb6f  cytochrome b6f  PSI  photosystem I  PSII  photosystem II  PBS  phycobilisome  PTOX  plastoquinol terminal oxidase  ETR  electron transport rate  PQ  plastoquinone/plastoquinol  Pgal  propyl gallate
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