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Identification of dimedone-trapped sulfenylated proteins in plants under stress
Authors:Salma Akter  Sebastien Carpentier  Frank Van Breusegem  Joris Messens
Institution:1. Department of Plant Systems Biology, VIB, 9052 Ghent, Belgium;2. Department of Plant Biotechnology and Bioinformatics, Ghent University, 9052 Ghent, Belgium;3. Structural Biology Research Center, VIB, 1050 Brussels, Belgium;4. Brussels Center for Redox Biology, 1050 Brussels, Belgium;5. Structural Biology Brussels, Vrije Universiteit Brussel, 1050 Brussels, Belgium;6. Department of Fisheries, Faculty of Biological Sciences, University of Dhaka, 1000 Dhaka, Bangladesh;7. Division of Crop Biotechnics, KU Leuven University, 3001 Leuven, Belgium;8. Facility for Systems Biology based Mass Spectrometry, KU Leuven University, 3000 Leuven, Belgium
Abstract:In stressed plants, the reactive oxygen species (ROS) levels rise. Key to ROS signaling research are detection and identification of the protein cysteine sulfenylation (-SOH), the ROS-mediated oxidative product of a thiol (-SH). Arabidopsis thaliana seedlings were stressed with hydrogen peroxide (H2O2) and the sulfenylated proteins were tagged with dimedone. Dimedone-tagged sulfenic acid proteins were visualized on a two-dimensional electrophoresis (2DE) immunoblot with an anticysteine sulfenic acid antibody and were subsequently detected by mass spectrometry. We optimized the detection method for protein sulfenylation in Arabidopsis. We conclude that dimedone can penetrate the cell wall, does not stress plants, and can “read” the changes in the protein sulfenylation pattern under oxidative stress. We observed that the number of sulfenylated proteins in plants treated with 10 mM H2O2 was higher than that in untreated plants. A total of 39 sulfenylated protein spots were found on 2DE immunoblots. By means of mass spectrometry, 11 sulfenylated proteins were discovered involved in primary metabolism, redox regulation, translation and signaling pathways. Hence, by combining an immunochemical 2DE strategy with mass spectrometry, we were able to identify sulfenylated proteins in H2O2-stressed Arabidopsis seedlings. The sulfenylated proteins can be considered for further validation as redox regulators in plants.
Keywords:Oxidative stress  Sulfenylation  Dimedone
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