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Updated: Aug 28, 2025

Author Spotlight: Advancing Antibiotic Resistance Research Using an Efflux-Deficient Bacterial Strain and a Single-Copy Gene Expression System
Published on: January 5, 2024
Structural Basis of Peptide-Based Antimicrobial Inhibition of a Resistance-Nodulation-Cell Division Multidrug Efflux
Meinan Lyu1, Julio C Ayala2,3, Isabella Chirakos1
1Department of Pharmacology, Case Western Reserve Universitygrid.67105.35 School of Medicine, Cleveland, Ohio, USA.
Abstract:
Bacterial efflux pumps in the resistance-nodulation-cell division (RND) family of Gram-negative bacteria contribute significantly to the development of antimicrobial resistance by many pathogens. In this study, we selected the MtrD transporter protein of Neisseria gonorrhoeae as it is the sole RND pump possessed by this strictly human pathogen and can export multiple antimicrobials, including antibiotics, bile salts, detergents, dyes, and antimicrobial peptides. Using knowledge from our previously published structures of MtrD in the presence or absence of bound antibiotics as a model and the known ability of MtrCDE to export cationic antimicrobial peptides, we hypothesized that cationic peptides could be accommodated within MtrD binding sites. Furthermore, we thought that MtrD-bound peptides lacking antibacterial action could sensitize bacteria to an antibiotic normally exported by the MtrCDE efflux pump or other similar RND-type pumps possessed by different Gram-negative bacteria. We now report the identification of a novel nonantimicrobial cyclic cationic antimicrobial peptide, which we termed CASP (cationic antibiotic-sensitizing peptide). By single-particle cryo-electron microscopy, we found that CASP binds within the periplasmic cleft region of MtrD using overlapping and distinct amino acid contact sites that interact with another cyclic peptide (colistin) or a linear human cationic antimicrobial peptide derived from human LL-37. While CASP could not sensitize Neisseria gonorrhoeae to an antibiotic (novobiocin) that is a substrate for RND pumps, it could do so against multiple Gram-negative, rod-shaped bacteria. We propose that CASP (or future derivatives) could serve as an adjuvant for the antibiotic treatment of certain Gram-negative infections previously thwarted by RND transporters. IMPORTANCE RND efflux pumps can export numerous antimicrobials that enter Gram-negative bacteria, and their action can reduce the efficacy of antibiotics and provide decreased susceptibility to various host antimicrobials. Here, we identified a cationic antibiotic-sensitizing peptide (CASP) that binds within the periplasmic cleft of an RND transporter protein (MtrD) produced by Neisseria gonorrhoeae. Surprisingly, CASP was able to render rod-shaped Gram-negative bacteria, but not gonococci, susceptible to an antibiotic that is a substrate for the gonococcal MtrCDE efflux pump. CASP (or its future derivatives) could be used as an adjuvant to treat infections for which RND efflux contributes to multidrug resistance.
Insights
Researchers discovered a novel peptide, CASP (cationic antibiotic-sensitizing peptide), that binds to bacterial efflux pumps. CASP sensitizes Gram-negative bacteria to antibiotics, offering a potential new strategy against antimicrobial resistance.
Area of Science:
- Molecular Biology
- Microbiology
- Structural Biology
Background:
- Resistance-nodulation-cell division (RND) family efflux pumps are crucial in Gram-negative bacterial antimicrobial resistance.
- Neisseria gonorrhoeae's MtrD transporter exports multiple antimicrobials, including antibiotics and antimicrobial peptides.
- RND pump activity reduces antibiotic efficacy and bacterial susceptibility to host defense peptides.
Purpose of the Study:
- To investigate if cationic peptides can bind to the MtrD transporter.
- To determine if non-antibacterial peptides can sensitize bacteria to antibiotics exported by RND pumps.
- To identify novel compounds that can overcome RND-mediated multidrug resistance.
Main Methods:
- Identification and characterization of a novel cyclic cationic peptide, termed CASP (cationic antibiotic-sensitizing peptide).
- Single-particle cryo-electron microscopy to determine the binding site and interactions of CASP within the MtrD transporter.
- Testing CASP's ability to sensitize Neisseria gonorrhoeae and other Gram-negative bacteria to antibiotics.
Main Results:
- A novel non-antibacterial cyclic cationic peptide, CASP, was identified.
- Cryo-EM revealed CASP binds to the periplasmic cleft of MtrD, interacting with distinct amino acid sites.
- CASP sensitized various Gram-negative bacteria, but not Neisseria gonorrhoeae, to an antibiotic substrate of RND pumps.
Conclusions:
- CASP binds to the RND transporter MtrD and can act as an antibiotic-sensitizing agent.
- CASP demonstrates potential as an adjuvant therapy for Gram-negative infections where RND efflux is a resistance mechanism.
- Further development of CASP derivatives may offer a strategy to combat multidrug-resistant Gram-negative bacteria.
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