Repurposing a drug to punish carbapenem-resistant <i>Acinetobacter baumannii</i>

J Jennifer M. Colquhoun (Research Service, Atlanta VA Medical Center) C Carter U. Brzezinski (Department of Chemistry, Emory University) A Andrew Ji (Research Service, Atlanta VA Medical Center) J Julianna Marotta (Department of Microbiology and Immunology, Emory University School of Medicine) F Franziska A. V. Elsen (Department of Bioscience, Center for Functional Protein Assemblies, Technical University of Munich, School of Natural Sciences) R Robert A. Bonomo (Medical Service, Louis Stokes Cleveland Department of Veteran Affairs Medical Center) K Kerrie L. May (Department of Microbiology and Immunology, Emory University School of Medicine) S Stephan A. Sieber (Center for Functional Protein Assemblies (CPA), Department of Bioscience, TUM School of Natural Sciences, Technical University of Munich (TUM), Ernst-Otto-Fischer-Straße 8 85748, Garching, Germany) M Marcin Grabowicz W William M. Wuest (Department of Chemistry, Emory University) P Philip N. Rather (Research Service, Atlanta VA Medical Center)

Abstract

The OXA β-lactamases in Acinetobacter baumannii represent a primary mechanism for resistance to the carbapenems, a class of antibiotics that represent a last line for treatment. In a screen of an U.S. Food and Drug Administration (FDA)-approved drug library, we identified fendiline, a calcium channel blocker, had significantly more antimicrobial activity against OXA-23 expressing cells. Genetic and proteomic studies revealed that fendiline inhibited the essential lipoprotein trafficking pathway (Lol) in both A. baumannii (LolFD) and Escherichia coli (LolCDE). We demonstrate that OXA-23 is an outer membrane lipoprotein and its overexpression resulted in increased lethality in lolFD- depleted A. baumannii . Our results indicate that overexpression of the OXA-23 β-lactamase in A. baumannii stresses normal lipoprotein trafficking, which makes these cells more susceptible to fendiline. Overall, our data reveal a link between carbapenem resistance and the Lol pathway, which can be leveraged for new drug development.

Article Details

Volume / Issue Vol. 122, Issue 24
Published June 17, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (11)

J

Jennifer M. Colquhoun

Research Service, Atlanta VA Medical Center

C

Carter U. Brzezinski

Department of Chemistry, Emory University

A

Andrew Ji

Research Service, Atlanta VA Medical Center

J

Julianna Marotta

Department of Microbiology and Immunology, Emory University School of Medicine

F

Franziska A. V. Elsen

Department of Bioscience, Center for Functional Protein Assemblies, Technical University of Munich, School of Natural Sciences

R

Robert A. Bonomo

Medical Service, Louis Stokes Cleveland Department of Veteran Affairs Medical Center

K

Kerrie L. May

Department of Microbiology and Immunology, Emory University School of Medicine

S

Stephan A. Sieber

Center for Functional Protein Assemblies (CPA), Department of Bioscience, TUM School of Natural Sciences, Technical University of Munich (TUM), Ernst-Otto-Fischer-Straße 8 85748, Garching, Germany

M

Marcin Grabowicz

W

William M. Wuest

Department of Chemistry, Emory University

P

Philip N. Rather

Research Service, Atlanta VA Medical Center