| Literature DB >> 28505394 |
Laurent Sevaille1, Laurent Gavara1, Carine Bebrone2,3, Filomena De Luca4, Lionel Nauton5,6, Maud Achard7,8, Paola Mercuri2, Silvia Tanfoni4, Luisa Borgianni4, Carole Guyon1, Pauline Lonjon1,9, Gülhan Turan-Zitouni10, Julia Dzieciolowski11, Katja Becker11, Lionel Bénard12, Ciaran Condon13, Ludovic Maillard1, Jean Martinez1, Jean-Marie Frère2, Otto Dideberg5, Moreno Galleni2, Jean-Denis Docquier4, Jean-François Hernandez1.
Abstract
Metallo-β-lactamases (MBLs) cause resistance of Gram-negative bacteria to β-lactam antibiotics and are of serious concern, because they can inactivate the last-resort carbapenems and because MBL inhibitors of clinical value are still lacking. We previously identified the original binding mode of 4-amino-2,4-dihydro-5-(2-methylphenyl)-3H-1,2,4-triazole-3-thione (compound IIIA) within the dizinc active site of the L1 MBL. Herein we present the crystallographic structure of a complex of L1 with the corresponding non-amino compound IIIB (1,2-dihydro-5-(2-methylphenyl)-3H-1,2,4-triazole-3-thione). Unexpectedly, the binding mode of IIIB was similar but reverse to that of IIIA. The 3 D structures suggested that the triazole-thione scaffold was suitable to bind to the catalytic site of dizinc metalloenzymes. On the basis of these results, we synthesized 54 analogues of IIIA or IIIB. Nineteen showed IC50 values in the micromolar range toward at least one of five representative MBLs (i.e., L1, VIM-4, VIM-2, NDM-1, and IMP-1). Five of these exhibited a significant inhibition of at least four enzymes, including NDM-1, VIM-2, and IMP-1. Active compounds mainly featured either halogen or bulky bicyclic aryl substituents. Finally, some compounds were also tested on several microbial dinuclear zinc-dependent hydrolases belonging to the MBL-fold superfamily (i.e., endonucleases and glyoxalase II) to explore their activity toward structurally similar but functionally distinct enzymes. Whereas the bacterial tRNases were not inhibited, the best IC50 values toward plasmodial glyoxalase II were in the 10 μm range.Entities:
Keywords: antibiotics; bacterial resistance; lactams; metalloenzymes; nitrogen heterocycles
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Year: 2017 PMID: 28505394 DOI: 10.1002/cmdc.201700186
Source DB: PubMed Journal: ChemMedChem ISSN: 1860-7179 Impact factor: 3.466