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Development of Inhalable Bacteriophage Liposomes Against Pseudomonas aeruginosa
Shruti S Sawant1, Maizbha Uddin Ahmed1, Nathan-Gautham Gantala1
1Department of Industrial and Molecular Pharmaceutics, College of Pharmacy, Purdue University, West Lafayette, IN 47907, USA.
Abstract:
Background:Pseudomonas aeruginosa is one of the major pathogens that cause respiratory infections. The rise of antimicrobial resistance has prompted a need for alternatives to conventional antibiotics. Bacteriophages (phages), natural predators of bacteria, are gaining interest as an alternative therapeutic option against drug-resistant infections. However, phage viability can be lost during manufacturing and delivery. Recent studies show that phages can be taken up by lung epithelial cells, which makes fewer phages available for antibacterial action against extracellular bacteria P. aeruginosa in the airways. Methods: In this study, we encapsulated phages in liposomes using thin film hydration. The effect of processing conditions and phage loading titer on the phage encapsulation and viability was studied. The impact of nebulization on phage viability was tested using an air-jet nebulizer (PARI-LC Plus). Phage cellular uptake was evaluated using an in vitro H441 lung epithelial cell model, grown at the air-liquid interface. Results: Our results demonstrate favorable encapsulation (58 ± 6.02%) can be achieved with minimum loss in phage titer (0.64 ± 0.21 log) by using a low phage titer for hydration. The liposomal formulations exhibited controlled release of phages over 10 h. The formulation also reduced the loss of phage viability during nebulization from 1.55 ± 0.04 log (for phage suspension) to 1.08 ± 0.05 log (for phage liposomes). Encapsulation of phages in liposomes enabled a two-fold reduction in phage cellular uptake and longer extracellular phage retention in the human lung epithelial cell monolayer. Conclusions: Our results indicate that liposomal encapsulation favors phage protection and improves phage availability for antibacterial activity. These findings highlight the potential of liposomes for inhaled phage delivery.
Insights
Liposomes protect bacteriophages (phages) during nebulization and reduce cellular uptake, enhancing their availability for treating Pseudomonas aeruginosa respiratory infections.
Area of Science:
- Biotechnology
- Infectious Diseases
- Drug Delivery
Background:
- Pseudomonas aeruginosa is a major cause of respiratory infections, with rising antimicrobial resistance necessitating alternative treatments.
- Bacteriophages (phages) are explored as alternatives to antibiotics, but their viability can be compromised during manufacturing and delivery.
- Phage uptake by lung epithelial cells reduces efficacy against extracellular P. aeruginosa.
Purpose of the Study:
- To encapsulate bacteriophages (phages) in liposomes for improved delivery and efficacy against P. aeruginosa.
- To evaluate the impact of liposomal encapsulation on phage viability, nebulization, cellular uptake, and extracellular retention.
Main Methods:
- Phages were encapsulated in liposomes using thin film hydration.
- Encapsulation efficiency, phage viability, and controlled release were assessed.
- The impact of nebulization on phage viability and cellular uptake in a lung epithelial cell model was evaluated.
Main Results:
- Favorable encapsulation (58%) was achieved with minimal phage titer loss (0.64 log) using a low phage titer for hydration.
- Liposomal formulations demonstrated controlled release over 10 hours and reduced phage viability loss during nebulization.
- Liposome encapsulation decreased phage cellular uptake by two-fold and increased extracellular phage retention.
Conclusions:
- Liposomal encapsulation protects phages, enhancing their availability for antibacterial action against P. aeruginosa.
- Liposomes show potential for inhaled phage delivery systems to combat respiratory infections.
- This approach offers a promising strategy to overcome challenges in phage therapy for drug-resistant bacteria.
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