Evaluating phage-antibiotic synergy in differentiated primary airway epithelial cultures against Pseudomonas aeruginosa
Ng, R. N.; Gwatimba, A.; Chang, B. J.; Stick, S. M.; Kicic, A.
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Chronic Pseudomonas aeruginosa lung infections are becoming harder to treat due to global escalation of antimicrobial resistance (AMR). Bacteriophage (phage) therapy has emerged as a promising adjunct to conventional antibiotics, especially in chronic lung infections such as those seen in cystic fibrosis (CF). However, phage monotherapy may be limited by the emergence of phage-resistant bacterial populations and there remains limited preclinical evidence evaluating both antimicrobial efficacy and host safety in physiologically relevant human airway models. Here, we evaluated the safety and antimicrobial activity of Kara-mokiny 3, a myovirus bacteriophage, alone and in combination with subinhibitory concentrations of tobramycin using fully differentiated paediatric primary airway epithelial cells (pAECs) cultured at the air-liquid interface (ALI). Kara-mokiny 3 rapidly reduced P. aeruginosa viability and exhibited synergistic activity with tobramycin, resulting in significantly greater bacterial killing than either treatment alone. Importantly, phage treatment replicated efficiently in the presence of its bacterial host while preserving epithelial morphology, mucin production and epithelial barrier architecture., without inducing cytotoxicity or excessive IL-6 and IL-8 inflammatory responses. These findings demonstrate that phage-antibiotic combination therapy can enhance antimicrobial activity while maintaining epithelial safety in a physiologically relevant human airway model. This study represents one of the first comprehensive evaluations of phage-antibiotic combination therapy in differentiated primary airway epithelial cultures, providing important preclinical evidence supporting the development of personalised phage-based therapies for the treatment of MDR pulmonary infections. ImportanceThe rise of MDR P. aeruginosa has created an urgent need for alternative treatment strategies for chronic lung infections. Although phage therapy is receiving increasing clinical attention, there is limited evidence evaluating its safety and efficacy in physiologically relevant human airway models. Using differentiated primary airway epithelial cultures, we demonstrate that a phage-antibiotic combination reduces bacterial burden without compromising epithelial integrity and toxicity or excessive inflammatory responses. These findings provide translational evidence supporting phage-antibiotic combination therapy and highlight the value of primary airway epithelial models for the preclinical assessment of emerging antimicrobial interventions, supporting the translation of personalised phage therapies.
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