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PMID: 31906402 Published · epublish English

Kinetic, Thermodynamic, and Crystallographic Studies of 2-Triazolylthioacetamides as Verona Integron-Encoded Metallo-β-Lactamase 2 (VIM-2) Inhibitor.

Biomolecules ·Vol. 10 ·No. 1 ·2020-00-01

Xiang Y, Zhang YJ, Ge Y, Zhou Y, Chen C, Wahlgren WY, Tan X, Chen X, Yang KW

Abstract

Inhibition of β-lactamases presents a promising strategy to restore the β-lactams antibacterial activity to resistant bacteria. In this work, we found that aromatic carboxyl substituted 2-triazolylthioacetamides 1a-j inhibited VIM-2, exhibiting an IC50 value in the range of 20.6-58.6 μM. The structure-activity relationship study revealed that replacing the aliphatic carboxylic acid with aromatic carboxyl improved the inhibitory activity of 2-triazolylthioacetamides against VIM-2. 1a-j (16 mg/mL) restored the antibacterial activity of cefazolin against E. coli cell expressing VIM-2, resulting in a 4-8-fold reduction in MICs. The isothermal titration calorimetry (ITC) characterization suggested that the primary binding 2-triazolylthioacetamide (1b, 1c, or 1h) to VIM-2 was a combination of entropy and enthalpy contributions. Further, the crystal structure of VIM-2 in complex with 1b was obtained by co-crystallization with a hanging-drop vapour-diffusion method. The crystal structure analysis revealed that 1b bound to two Zn(II) ions of the enzyme active sites, formed H-bound with Asn233 and structure water molecule, and interacted with the hydrophobic pocket of enzyme activity center utilizing hydrophobic moieties; especially for the phenyl of aromatic carboxyl which formed π-π stacking with active residue His263. These studies confirmed that aromatic carboxyl substituted 2-triazolylthioacetamides are the potent VIM-2 inhibitors scaffold and provided help to further optimize 2-triazolylthioacetamides as VIM-2 even or broad-spectrum MβLs inhibitors.

Keywords
2-triazolylthioacetamides antibiotic resistance crystallographic study metallo-β-lactamase VIM-2 inhibitor thermodynamics
MeSH 主题词
Anti-Bacterial Agents/chemistry Bacteria/metabolism Bacterial Proteins/metabolism Binding Sites/physiology Catalytic Domain/physiology Crystallography, X-Ray/methods Escherichia coli/metabolism Integrons/physiology Kinetics Microbial Sensitivity Tests Models, Molecular Molecular Structure Protein Binding/physiology Structure-Activity Relationship Thermodynamics Thioacetamide/chemistry,metabolism Triazoles/chemistry,metabolism beta-Lactamases/chemistry,metabolism
Article Info
Journal
Biomolecules
Abbr.
Biomolecules
ISSN
2218-273X
Published
2020-00-01
Language
English
Country/Region
Switzerland
NLM ID
101596414
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