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Phosphate Promotes the Recovery of Mycobacterium tuberculosis β-Lactamase from Clavulanic Acid Inhibition
Author(s) -
Wouter Elings,
R. Tassoni,
Steven A. van der Schoot,
Wendy Luu,
Josef P. Kynast,
Lin Dai,
Anneloes Blok,
Monika Timmer,
Bogdan I. Florea,
Neesh Pannu,
Marcellus Ubbink
Publication year - 2017
Publication title -
biochemistry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.43
H-Index - 253
eISSN - 1520-4995
pISSN - 0006-2960
DOI - 10.1021/acs.biochem.7b00556
Subject(s) - clavulanic acid , chemistry , beta lactamase inhibitors , mycobacterium tuberculosis , phosphate , hydrolysis , dissociation constant , biochemistry , enzyme , microbiology and biotechnology , antibiotics , biology , tuberculosis , amoxicillin , medicine , receptor , pathology
The rise of multi- and even totally antibiotic resistant forms of Mycobacterium tuberculosis underlines the need for new antibiotics. The pathogen is resistant to β-lactam compounds due to its native serine β-lactamase, BlaC. This resistance can be circumvented by administration of a β-lactamase inhibitor. We studied the interaction between BlaC and the inhibitor clavulanic acid. Our data show hydrolysis of clavulanic acid and recovery of BlaC activity upon prolonged incubation. The rate of clavulanic acid hydrolysis is much higher in the presence of phosphate ions. A specific binding site for phosphate is identified in the active site pocket, both in the crystalline state and in solution. NMR spectroscopy experiments show that phosphate binds to this site with a dissociation constant of 30 mM in the free enzyme. We conclude that inhibition of BlaC by clavulanic acid is reversible and that phosphate ions can promote the hydrolysis of the inhibitor.

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