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Structure and Dynamics of FosA-Mediated Fosfomycin Resistance in Klebsiella pneumoniae and Escherichia coli.
- Source :
-
Antimicrobial agents and chemotherapy [Antimicrob Agents Chemother] 2017 Oct 24; Vol. 61 (11). Date of Electronic Publication: 2017 Oct 24 (Print Publication: 2017). - Publication Year :
- 2017
-
Abstract
- Fosfomycin exhibits broad-spectrum antibacterial activity and is being reevaluated for the treatment of extensively drug-resistant pathogens. Its activity in Gram-negative organisms, however, can be compromised by expression of FosA, a metal-dependent transferase that catalyzes the conjugation of glutathione to fosfomycin, rendering the antibiotic inactive. In this study, we solved the crystal structures of two of the most clinically relevant FosA enzymes: plasmid-encoded FosA3 from Escherichia coli and chromosomally encoded FosA from Klebsiella pneumoniae (FosA <superscript>KP</superscript> ). The structure, molecular dynamics, catalytic activity, and fosfomycin resistance of FosA3 and FosA <superscript>KP</superscript> were also compared to those of FosA from Pseudomonas aeruginosa (FosA <superscript>PA</superscript> ), for which prior crystal structures exist. E. coli TOP10 transformants expressing FosA3 and FosA <superscript>KP</superscript> conferred significantly greater fosfomycin resistance (MIC, >1,024 μg/ml) than those expressing FosA <superscript>PA</superscript> (MIC, 16 μg/ml), which could be explained in part by the higher catalytic efficiencies of the FosA3 and FosA <superscript>KP</superscript> enzymes. Interestingly, these differences in enzyme activity could not be attributed to structural differences at their active sites. Instead, molecular dynamics simulations and hydrogen-deuterium exchange experiments with FosA <superscript>KP</superscript> revealed dynamic interconnectivity between its active sites and a loop structure that extends from the active site of each monomer and traverses the dimer interface. This dimer interface loop is longer and more extended in FosA <superscript>KP</superscript> and FosA3 than in FosA <superscript>PA</superscript> , and kinetic analyses of FosA <superscript>KP</superscript> and FosA <superscript>PA</superscript> loop-swapped chimeric enzymes highlighted its importance in FosA activity. Collectively, these data yield novel insights into fosfomycin resistance that could be leveraged to develop new strategies to inhibit FosA and potentiate fosfomycin activity.<br /> (Copyright © 2017 American Society for Microbiology.)
- Subjects :
- Anti-Bacterial Agents pharmacology
Bacterial Proteins genetics
Catalytic Domain
Crystallography, X-Ray
Deuterium Exchange Measurement
Drug Resistance, Bacterial drug effects
Escherichia coli genetics
Escherichia coli Proteins genetics
Escherichia coli Proteins metabolism
Gene Expression Regulation, Bacterial drug effects
Klebsiella pneumoniae genetics
Microbial Sensitivity Tests
Molecular Dynamics Simulation
Potassium metabolism
Protein Multimerization
Drug Resistance, Bacterial physiology
Escherichia coli drug effects
Escherichia coli Proteins chemistry
Fosfomycin pharmacology
Klebsiella pneumoniae drug effects
Subjects
Details
- Language :
- English
- ISSN :
- 1098-6596
- Volume :
- 61
- Issue :
- 11
- Database :
- MEDLINE
- Journal :
- Antimicrobial agents and chemotherapy
- Publication Type :
- Academic Journal
- Accession number :
- 28874374
- Full Text :
- https://doi.org/10.1128/AAC.01572-17