Abstract

The hydrolysis of β-lactam antibiotics by β-lactamase enzymes is the most prominent antibiotic resistance mechanism for many pathogenic bacteria. Out of this broad class of enzymes, metallo-β-lactamases are of special clinical interest because of their broad substrate specificities. Several in vitro inhibitors for various metallo-β-lactamases have been reported with no clinical efficacy. Previously, we described a 10-nucleotide single stranded DNA aptamer (10-mer) that inhibits Bacillus cereus 5/B/6 metallo-β-lactamase very effectively. Here, we find that the aptamer shows uncompetitive inhibition of Bacillus cereus 5/B/6 metallo-β-lactamase during cefuroxime hydrolysis. To understand the mechanism of inhibition, we report a 2.5 Å resolution X-ray crystal structure and solution-state NMR analysis of the free enzyme. Chemical shift perturbations were observed in the HSQC spectra for several residues upon titrating with increasing concentrations of the 10-mer. In the X-ray crystal structure, these residues are distal to the active site, suggesting an allosteric mechanism for the aptamer inhibition of the enzyme. HADDOCK molecular docking simulations suggest that the 10-mer docks 26 Å from the active site. We then mutated the three lysine residues in the basic binding patch to glutamine and measured the catalytic activity and inhibition by the 10-mer. No significant inhibition of these mutants was observed by the 10-mer as compared to wild type. Interestingly, mutation of Lys50 (Lys78; according to standard MBL numbering system) resulted in reduced enzymatic activity relative to wild type in the absence of inhibitor, further highlighting an allosteric mechanism for inhibition.

Highlights

  • Deleting the flanking DNA sequences upstream and downstream of the predicted 10-mer hairpin structure resulted in the same inhibition of Bacillus cereus 5/B/6 (5/B/6) MBL activity as the 30-mer DNA, and the isolated flanking sequences did not inhibit on their own [14]

  • We described the structural basis for nanomolar uncompetitive inhibition of B. cereus 5/ B/6 metallo-β-lactamase during cefuroxime hydrolysis by a 10-nucleotide DNA aptamer

  • Different reaction mechanisms have been proposed for New Delhi metallo-β-lactamase 1 (NDM-1) MBL hydrolysis of carbapenem and cephalosporin βlactams [56, 57]

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Summary

A DNA aptamer reveals an allosteric site for inhibition in metallo-β-lactamases

Nazmul H. Khan1, Anthony A. BuiID1, Yang Xiao1, R. Bryan Sutton2, Robert W. Shaw1*, Benjamin J. Wylie1, Michael P. LathamID1* Citation: Khan NH, Bui AA, Xiao Y, Sutton RB, Shaw RW, Wylie BJ, et al (2019) A DNA aptamer reveals an allosteric site for inhibition in metallo-βlactamases. PLoS ONE 14(4): e0214440. https:// doi.org/10.1371/journal.pone.0214440 Data Availability Statement: All relevant data are in the paper. Funding: Use of the Stanford Synchrotron Radiation Lightsource, SLAC National Accelerator Laboratory, is supported by the U.S Department of Energy, Office of Science, Office of Basic Energy Sciences, under Contract No DE-AC0176SF00515. The SSRL Structural Molecular Biology Program is supported by the DOE Office of Biological and Environmental Research, and by the National Institute of General Medical Sciences, National Institutes of Health (including

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