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Updated: Oct 29, 2025

Nanomechanics of Drug-target Interactions and Antibacterial Resistance Detection
Published on: October 25, 2013
Antibiotic Potentiation in Multidrug-Resistant Gram-Negative Pathogenic Bacteria by a Synthetic Peptidomimetic
Elnaz Harifi Mood1, Lise Goltermann1, Camilla Brolin1
1Center for Peptide-based Antibiotics, Department of Cellular and Molecular Medicine, The Panum Institute, Faculty of Health and Medical Sciences, University of Copenhagen, Blegdamsvej 3, DK-2200 Copenhagen, Denmark.
Abstract:
The peptidomimetic H-[NLys-tBuAla]6-NH2 (CEP-136), which exhibits low inherent antimicrobial activity against Gram-negative bacteria (MIC = 16-64 μM), was shown to significantly potentiate the antibacterial activity of several clinically important antibiotics against the human pathogens Escherichia coli, Klebsiella pneumoniae, Acinetobacter baumannii, and Pseudomonas aeruginosa. Thus, the antibacterial spectrum of rifampicin, clarithromycin, and azithromycin could be extended to include also these Gram-negative bacteria. Additionally, the potentiation effect was demonstrated in a panel of clinically relevant multidrug-resistant isolates including extended-spectrum β-lactamase (ESBL)- and carbapenemase-producing as well as colistin-resistant strains. For some peptidomimetic-antibiotic combinations, the strong synergy corresponded to a more than 50-fold reduction of the minimal inhibitory concentration of the antibiotic. Mechanistic studies indicate that the potentiation arises from a permeabilization effect exerted on the outer membrane lipopolysaccharide layer of the Gram-negative bacteria without significant disruption of the inner membrane. Furthermore, the peptidomimetic enhancer exhibited only a marginal effect on the viability of mammalian HepG2 cells even at concentrations 100-fold higher than that enabling the antibiotic enhancement. Also, a low hemolytic activity combined with limited in vivo acute toxicity of CEP-136 in healthy mice allowed in vivo validation of the potentiation effect on both rifampicin and azithromycin treatment in a murine peritonitis model. Thus, CEP-136 is an interesting hit compound for further development of effective adjuvants for repurposing antibiotics for use against infections by multidrug-resistant Gram-negative bacteria.
Insights
The peptidomimetic CEP-136 enhances antibiotic effectiveness against multidrug-resistant Gram-negative bacteria like E. coli. This compound shows low toxicity and potential for repurposing antibiotics to combat resistant infections.
Area of Science:
- Microbiology
- Pharmacology
- Drug Discovery
Background:
- Gram-negative bacteria pose significant treatment challenges due to multidrug resistance.
- Existing antibiotics often lack efficacy against resistant strains like E. coli and P. aeruginosa.
- Novel strategies are needed to overcome antibiotic resistance.
Purpose of the Study:
- To evaluate the potential of peptidomimetic H-[NLys-tBuAla]6-NH2 (CEP-136) as an enhancer for antibiotic activity.
- To determine if CEP-136 can broaden the spectrum of existing antibiotics against Gram-negative pathogens.
- To assess the safety and in vivo efficacy of CEP-136 as an adjuvant therapy.
Main Methods:
- Minimal inhibitory concentration (MIC) assays were performed to assess synergistic effects.
- CEP-136's mechanism of action was investigated through membrane permeabilization studies.
- Cytotoxicity assays using HepG2 cells and in vivo studies in a murine peritonitis model were conducted.
Main Results:
- CEP-136 significantly potentiated the activity of rifampicin, clarithromycin, and azithromycin against Gram-negative bacteria, including multidrug-resistant strains.
- Synergistic effects led to over 50-fold reductions in antibiotic MICs.
- CEP-136 demonstrated low toxicity to mammalian cells and limited in vivo toxicity in mice, with successful in vivo validation of potentiation.
Conclusions:
- CEP-136 acts as an effective adjuvant, enhancing antibiotic efficacy against challenging Gram-negative pathogens.
- The compound's mechanism involves outer membrane permeabilization without significant inner membrane disruption.
- CEP-136 holds promise for developing novel strategies to repurpose antibiotics against multidrug-resistant infections.
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