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Singlet-Oxygen-Induced Phospholipase A2 Inhibition: A Major Role for Interfacial Tryptophan Dioxidation
Authors:Dr. Zahra Nasri  Seyedali Memari  Sebastian Wenske  Ramona Clemen  Dr. Ulrike Martens  Prof. Mihaela Delcea  Dr. Sander Bekeschus  Prof. Klaus-Dieter Weltmann  Prof. Thomas von Woedtke  Dr. Kristian Wende
Affiliation:1. Center for Innovation Competence (ZIK) plasmatis, Leibniz Institute for Plasma Science and Technology (INP), Felix-Hausdorff-Straße 2, 17489 Greifswald, Germany;2. Center for Innovation Competence (ZIK) plasmatis, Leibniz Institute for Plasma Science and Technology (INP), Felix-Hausdorff-Straße 2, 17489 Greifswald, Germany

Institute of Anatomy and Cell Biology, University Medicine Greifswald, Friedrich-Loeffler-Straße 23c, Greifswald, 17487 Germany;3. Institute of Biochemistry, University of Greifswald, Felix-Hausdorff-Straße 4, Greifswald, 17489 Germany

Abstract:Several studies have revealed that various diseases such as cancer have been associated with elevated phospholipase A2 (PLA2) activity. Therefore, the regulation of PLA2 catalytic activity is undoubtedly vital. In this study, effective inactivation of PLA2 due to reactive species produced from cold physical plasma as a source to model oxidative stress is reported. We found singlet oxygen to be the most relevant active agent in PLA2 inhibition. A more detailed analysis of the plasma-treated PLA2 identified tryptophan 128 as a hot spot, rich in double oxidation. The significant dioxidation of this interfacial tryptophan resulted in an N-formylkynurenine product via the oxidative opening of the tryptophan indole ring. Molecular dynamics simulation indicated that the efficient interactions between the tryptophan residue and phospholipids are eliminated following tryptophan dioxidation. As interfacial tryptophan residues are predominantly involved in the attaching of membrane enzymes to the bilayers, tryptophan dioxidation and indole ring opening leads to the loss of essential interactions for enzyme binding and, consequently, enzyme inactivation.
Keywords:cold physical plasma  enzyme inhibition  plasma chemistry  protein modifications  reactive oxygen and nitrogen species
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