Natural protein engineering in the Ω-loop: the role of Y221 in ceftazidime and ceftolozane resistance in Pseudomonas -derived cephalosporinase

Author:

Mack Andrew R.12ORCID,Kumar Vijay3ORCID,Taracila Magdalena A.24,Mojica Maria F.125ORCID,O'Shea Margaret2,Schinabeck William2,Silver Galen2ORCID,Hujer Andrea M.24,Papp-Wallace Krisztina M.234ORCID,Chen Shuang6,Haider Shozeb67ORCID,Caselli Emilia8ORCID,Prati Fabio8ORCID,van den Akker Focco3ORCID,Bonomo Robert A.13459ORCID

Affiliation:

1. Department of Molecular Biology and Microbiology, Case Western Reserve University School of Medicine , Cleveland, Ohio, USA

2. Research Service, VA Northeast Ohio Healthcare System , Cleveland, Ohio, USA

3. Department of Biochemistry, Case Western Reserve University School of Medicine , Cleveland, Ohio, USA

4. Department of Medicine, Case Western Reserve University School of Medicine , Cleveland, Ohio, USA

5. CWRU-Cleveland VAMC Center for Antimicrobial Resistance and Epidemiology (Case VA CARES) , Cleveland, Ohio, USA

6. Department of Pharmaceutical and Biological Chemistry, School of Pharmacy, University College London , London, England, United Kingdom

7. UCL Centre for Advanced Research Computing, University College London , London, England, United Kingdom

8. Department of Life Sciences, University of Modena and Reggio Emilia , Modena, Italy

9. Department of Pharmacology, Case Western Reserve University School of Medicine , Cleveland, Ohio, USA

Abstract

ABSTRACT A wide variety of clinically observed single amino acid substitutions in the Ω-loop region have been associated with increased minimum inhibitory concentrations and resistance to ceftazidime (CAZ) and ceftolozane (TOL) in Pseudomonas -derived cephalosporinase and other class C β-lactamases. Herein, we demonstrate the naturally occurring tyrosine to histidine substitution of amino acid 221 (Y221H) in Pseudomonas -derived cephalosporinase (PDC) enables CAZ and TOL hydrolysis, leading to similar kinetic profiles ( k cat = 2.3 ± 0.2 µM and 2.6 ± 0.1 µM, respectively). Mass spectrometry of PDC-3 establishes the formation of stable adducts consistent with the formation of an acyl enzyme complex, while spectra of E219K (a well-characterized, CAZ- and TOL-resistant comparator) and Y221H are consistent with more rapid turnover. Thermal denaturation experiments reveal decreased stability of the variants. Importantly, PDC-3, E219K, and Y221H are all inhibited by avibactam and the boronic acid transition state inhibitors (BATSIs) LP06 and S02030 with nanomolar IC 50 values and the BATSIs stabilize all three enzymes. Crystal structures of PDC-3 and Y221H as apo enzymes and complexed with LP06 and S02030 (1.35–2.10 Å resolution) demonstrate ligand-induced conformational changes, including a significant shift in the position of the sidechain of residue 221 in Y221H (as predicted by enhanced sampling well-tempered metadynamics simulations) and extensive hydrogen bonding between the enzymes and BATSIs. The shift of residue 221 leads to the expansion of the active site pocket, and molecular docking suggests substrates orientate differently and make different intermolecular interactions in the enlarged active site compared to the wild-type enzyme.

Funder

HHS | NIH | National Institute of Allergy and Infectious Diseases

Publisher

American Society for Microbiology

Subject

Infectious Diseases,Pharmacology (medical),Pharmacology

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