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Penicillanic Acid Sulfones Inactivate the Extended-Spectrum ß-Lactamase CTX-M-15 through Formation of a Serine-Lysine Cross-Link: an Alternative Mechanism of ß-Lactamase Inhibition.
Hinchliffe, Philip; Tooke, Catherine L; Bethel, Christopher R; Wang, Benlian; Arthur, Christopher; Heesom, Kate J; Shapiro, Stuart; Schlatzer, Daniela M; Papp-Wallace, Krisztina M; Bonomo, Robert A; Spencer, James.
Afiliación
  • Hinchliffe P; School of Cellular and Molecular Medicine, University of Bristolgrid.5337.2, Bristol, United Kingdom.
  • Tooke CL; School of Cellular and Molecular Medicine, University of Bristolgrid.5337.2, Bristol, United Kingdom.
  • Bethel CR; Research Service, Louis Stokes Cleveland Department of Veterans Affairs, Cleveland, Ohio, USA.
  • Wang B; Department of Proteomics and Bioinformatics, Case Western Reserve Universitygrid.67105.35 School of Medicine, Cleveland, Ohio, USA.
  • Arthur C; School of Chemistry, University of Bristolgrid.5337.2, Bristol, United Kingdom.
  • Heesom KJ; Proteomics Facility, Faculty of Life Sciences, University of Bristolgrid.5337.2, Bristol, United Kingdom.
  • Shapiro S; Allecra Therapeutics SAS, Saint-Louis, France.
  • Schlatzer DM; Department of Proteomics and Bioinformatics, Case Western Reserve Universitygrid.67105.35 School of Medicine, Cleveland, Ohio, USA.
  • Papp-Wallace KM; Research Service, Louis Stokes Cleveland Department of Veterans Affairs, Cleveland, Ohio, USA.
  • Bonomo RA; Department of Medicine, Case Western Reserve Universitygrid.67105.35 School of Medicine, Cleveland, Ohio, USA.
  • Spencer J; Department of Biochemistry, Case Western Reserve Universitygrid.67105.35 School of Medicine, Cleveland, Ohio, USA.
mBio ; 13(3): e0179321, 2022 06 28.
Article en En | MEDLINE | ID: mdl-35612361
ABSTRACT
ß-Lactamases hydrolyze ß-lactam antibiotics and are major determinants of antibiotic resistance in Gram-negative pathogens. Enmetazobactam (formerly AAI101) and tazobactam are penicillanic acid sulfone (PAS) ß-lactamase inhibitors that differ by an additional methyl group on the triazole ring of enmetazobactam, rendering it zwitterionic. In this study, ultrahigh-resolution X-ray crystal structures and mass spectrometry revealed the mechanism of PAS inhibition of CTX-M-15, an extended-spectrum ß-lactamase (ESBL) globally disseminated among Enterobacterales. CTX-M-15 crystals grown in the presence of enmetazobactam or tazobactam revealed loss of the Ser70 hydroxyl group and formation of a lysinoalanine cross-link between Lys73 and Ser70, two residues critical for catalysis. Moreover, the residue at position 70 undergoes epimerization, resulting in formation of a d-amino acid. Cocrystallization of enmetazobactam or tazobactam with CTX-M-15 with a Glu166Gln mutant revealed the same cross-link, indicating that this modification is not dependent on Glu166-catalyzed deacylation of the PAS-acylenzyme. A cocrystal structure of enmetazobactam with CTX-M-15 with a Lys73Ala mutation indicates that epimerization can occur without cross-link formation and positions the Ser70 Cß closer to Lys73, likely facilitating formation of the Ser70-Lys73 cross-link. A crystal structure of a tazobactam-derived imine intermediate covalently linked to Ser70, obtained after 30 min of exposure of CTX-M-15 crystals to tazobactam, supports formation of an initial acylenzyme by PAS inhibitors on reaction with CTX-M-15. These data rationalize earlier results showing CTX-M-15 deactivation by PAS inhibitors to involve loss of protein mass, and they identify a distinct mechanism of ß-lactamase inhibition by these agents. IMPORTANCE ß-Lactams are the most prescribed antibiotic class for treating bacterial diseases, but their continued efficacy is threatened by bacterial strains producing ß-lactamase enzymes that catalyze their inactivation. The CTX-M family of ESBLs are major contributors to ß-lactam resistance in Enterobacterales, preventing effective treatment with most penicillins and cephalosporins. Combining ß-lactams with ß-lactamase inhibitors (BLIs) is a validated route to overcome such resistance. Here, we describe how exposure to enmetazobactam and tazobactam, BLIs based on a penicillanic acid sulfone (PAS) scaffold, leads to a protein modification in CTX-M-15, resulting in irremediable inactivation of this most commonly encountered member of the CTX-M family. High-resolution X-ray crystal structures showed that PAS exposure induces formation of a cross-link between Ser70 and Lys73, two residues critical to ß-lactamase function. This previously undescribed mechanism of inhibition furthers our understanding of ß-lactamase inhibition by classical PAS inhibitors and provides a basis for further, rational inhibitor development.
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Texto completo: 1 Base de datos: MEDLINE Asunto principal: Sulbactam / Inhibidores de beta-Lactamasas Idioma: En Revista: MBio Año: 2022 Tipo del documento: Article País de afiliación: Reino Unido

Texto completo: 1 Base de datos: MEDLINE Asunto principal: Sulbactam / Inhibidores de beta-Lactamasas Idioma: En Revista: MBio Año: 2022 Tipo del documento: Article País de afiliación: Reino Unido