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Development of ebsulfur analogues as potent antibacterials against methicillin-resistant Staphylococcus aureus
Institution:1. Department of Chemistry, The Scripps Research Institute, Jupiter, FL 33458, United States;2. Department of Molecular Therapeutics, The Scripps Research Institute, Jupiter, FL 33458, United States;3. Natural Products Library Initiative at The Scripps Research Institute, The Scripps Research Institute, Jupiter, FL 33458, United States;1. School of Petroleum and Chemical Engineering, Dalian University of Technology, State Key Laboratory of Fine Chemicals, 2 Dagong Road, Liaodongwan New District, Panjin 124221, China;2. School of Food and Environment, Dalian University of Technology, 2 Dagong Road, Liaodongwan New District, Panjin 124221, China;1. Department of Microbiology and Immunobiology, 4 Blackfan Circle, Boston, MA 02115, USA;2. Department of Biochemistry and Molecular Biology, 206 South Frear Laboratory, University Park, PA 16802, USA;1. Department of Biochemistry, Federal University of Technology, Akure, Ondo State, Nigeria;2. Programa Posgraduacao em Bioquimica Toxciologica, Centro de Ciencias Naturais e Exatas, Universidade Federal de Santa Maria, RS, Brazil
Abstract:Antibiotic resistance is a worldwide problem that needs to be addressed. Staphylococcus aureus is one of the dangerous “ESKAPE” pathogens that rapidly evolve and evade many current FDA-approved antibiotics. Thus, there is an urgent need for new anti-MRSA compounds. Ebselen (also known as 2-phenyl-1,2-benzisoselenazol-3(2H)-one) has shown promising activity in clinical trials for cerebral ischemia, bipolar disorder, and noise-induced hearing loss. Recently, there has been a renewed interest in exploring the antibacterial properties of ebselen. In this study, we synthesized an ebselen-inspired library of 33 compounds where the selenium atom has been replaced by sulfur (ebsulfur derivatives) and evaluated them against a panel of drug-sensitive and drug-resistant S. aureus and non-S. aureus strains. Within our library, we identified three outstanding analogues with potent activity against all S. aureus strains tested (MIC values mostly ?2 μg/mL), and numerous additional ones with overall very good to good antibacterial activity (1–7.8 μg/mL). We also characterized the time-kill analysis, anti-biofilm ability, hemolytic activity, mammalian cytotoxicity, membrane-disruption ability, and reactive oxygen species (ROS) production of some of these analogues.
Keywords:Antibiotic  Benzisothiazolinone  Biofilm  ESKAPE  Reactive oxygen species (ROS)  Resistance
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