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      Analysis of the sodium chloride-dependent respiratory kinetics of wheat mitochondria reveals differential effects on phosphorylating and non-phosphorylating electron transport pathways.

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          Abstract

          A number of previous studies have documented the gross response of mitochondrial respiration to salinity treatment, but it is unclear how NaCl directly affects the kinetics of plant phosphorylating and non-phosphorylating electron transport pathways. This study investigates the direct effects of NaCl upon different respiratory pathways in wheat, by measuring rates of isolated mitochondrial oxygen consumption across different substrate oxidation pathways in saline media. We also profile the abundance of respiratory proteins by using targeted selected reaction monitoring (SRM) mass spectrometry of mitochondria isolated from control and salt-treated wheat plants. We show that all pathways of electron transport were inhibited by NaCl concentrations above 400 mM; however electron transfer chains showed divergent responses to NaCl concentrations between 0 and 200 mM. Stimulation of oxygen consumption was measured in response to NaCl in scenarios where exogenous NADH was provided as substrate and electron flow was coupled to the generation of a proton gradient across the inner membrane. Protein abundance measurements show that several enzymes with activities less affected by NaCl are induced by salinity, whereas enzymes with activities inhibited by NaCl are depleted. These data deepen our understanding of how plant respiration responds to NaCl, offering new mechanistic explanations for the divergent salinity responses of whole-plant respiratory rate in the literature.

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          Author and article information

          Journal
          Plant Cell Environ.
          Plant, cell & environment
          Wiley-Blackwell
          1365-3040
          0140-7791
          Apr 2016
          : 39
          : 4
          Affiliations
          [1 ] ARC Centre of Excellence in Plant Energy Biology, M316, The University of Western Australia, Crawley, WA, 6009, Australia.
          [2 ] Botanical Institute and Cluster of Excellence on Plant Sciences (CEPLAS), University of Cologne, Cologne, 50674, Germany.
          [3 ] School of Chemistry and Biochemistry, M316, The University of Western Australia, Crawley, WA, 6009, Australia.
          Article
          10.1111/pce.12653
          26470009
          b10aa85b-7e23-4b48-9d73-a913a8e9fdc3
          History

          respiration,oxidative phosphorylation,mitochondrial electron transfer,alternative oxidase,Triticum spp,SRM mass spectrometry

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