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Antibiotic-in-Cyclodextrin-in-Liposomes: Formulation Development and Interactions with Model Bacterial Membranes
Kalliopi-Kelli A Vandera1, Pietro Picconi1, Margarita Valero2
1School of Cancer & Pharmaceutical Science, Institute of Pharmaceutical Science, King's College London, Franklin-Wilkins Building, 150 Stamford Street, London SE1 9NH, U.K.
Abstract:
Gram-negative bacteria possess numerous defenses against antibiotics, due to the intrinsic permeability barrier of their outer membrane (OM), explaining the recalcitrance of some common and life-threatening infections. We report the formulation of a new drug, PPA148, which shows promising activity against all Gram-negative bacteria included in the ESKAPEE pathogens. PPA148 was solubilized by inclusion complexation with cyclodextrin followed by encapsulation in liposomes. The complex and liposomal formulation presented increased activity against E. coli compared to the pure drug when assessed with the Kirby Bauer assay. The novel formulation containing 1 μg PPA148 reached similar efficacy levels equivalent to those of 30 μg of pure rifampicin. A range of biophysical techniques was used to explore the mechanism of drug uptake. Langmuir trough (LT) and neutron reflectivity (NR) techniques were employed to monitor the interactions between the drug and the formulation with model membranes. We found evidence for liposome fusion with the model Gram-negative outer membrane and for cyclodextrins acting as inner membrane (IM) permeation enhancers without presenting intrinsic antimicrobial activity. An antibiotic-in-cyclodextrin-in-liposomes (ACL) formulation was developed, which targets both the bacterial OM and IM, and offers promise as a means to breach the Gram-negative cell envelope.
Insights
A novel antibiotic formulation, PPA148, effectively targets Gram-negative bacteria by overcoming their outer membrane defenses. This antibiotic-in-cyclodextrin-in-liposomes (ACL) approach enhances drug delivery and efficacy against challenging infections.
Area of Science:
- Microbiology
- Drug Delivery
- Biophysics
Background:
- Gram-negative bacteria pose significant treatment challenges due to their protective outer membrane.
- Existing antibiotics often struggle to penetrate this barrier, leading to persistent infections.
Purpose of the Study:
- To develop and evaluate a novel drug formulation, PPA148, for enhanced activity against Gram-negative pathogens.
- To investigate the mechanism of action and delivery of the new formulation.
Main Methods:
- Formulation of PPA148 using cyclodextrin complexation and liposomal encapsulation.
- Assessment of antimicrobial activity against ESKAPEE pathogens using Kirby Bauer assay.
- Biophysical techniques including Langmuir trough and neutron reflectivity to study membrane interactions.
Main Results:
- The novel antibiotic-in-cyclodextrin-in-liposomes (ACL) formulation demonstrated increased efficacy against *E. coli* compared to pure PPA148.
- 1 μg of the ACL formulation showed comparable efficacy to 30 μg of pure rifampicin.
- Evidence suggests liposome fusion with the outer membrane and cyclodextrins enhancing inner membrane permeation.
Conclusions:
- The ACL formulation effectively breaches the Gram-negative bacterial cell envelope.
- This novel approach offers a promising strategy to combat antibiotic resistance in Gram-negative infections.
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