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Nir-Paz, R.

Publications and source records attributed to Nir-Paz, R..

2 recordsLinked to original sources

Expanding Clinical Phage Microbiology:‎Simulating Phage Inhalation for Respiratory Tract Infections ‎

Phage therapy is a promising antibacterial strategy for resistant respiratory tract infections. Phage inhalation may serve this goal; however, it requires a careful assessment of their delivery by this approach. Here we present an in-vitro model to evaluate phage inhalation. Eight phages, most of which target CF-common pathogens, were aerosolized and administered to a real-scale CT{square}derived 3D airways model with a breathing simulator. Viable phage loads reaching the output of the nebulizer and the tracheal level of the model were determined and compared to the loaded amount. Phage inhalation resulted in a diverse range of titer reduction, primarily associated with the nebulization process. No correlation was found between phage delivery to the phage physical or genomic dimensions. These findings highlight the need for tailored simulations of phage delivery, ideally by a patient-specific model in addition to proper phage matching, to increase the potential of phage therapy success. Take-Home MessagePhage therapy can be used against infectious diseases if personally tailored. Using a 3D airways model, we show that phage delivery by inhalation to the respiratory tract is unpredictable and also requires a precise evaluation.

microbiology

Clinical Phage Microbiology:A suggested framework and recommendations for the in-vitro matching steps ‎of phage therapy

Personalized-phage-therapy is a promising solution for the emerging crisis of bacterial infections that fail to be eradicated by conventional antibiotics. One of the most crucial elements of personalized-phage-therapy is the proper matching of phages and antibiotics to the target bacteria in a given clinical setting. However, to date, there is no consensus guideline for laboratory procedures that enable in vitro evaluation of phages intended for treatment. In this work, we suggest a framework and strategies identify appropriate phages and combine them with antibiotics in clinical microbiology laboratories. This framework, which we term here "Clinical Phage Microbiology" is based on our experience and other previously reported cases of both, successful and failed phage treatments. Additionally, we discuss troubleshooting methodologies for possible pitfalls and special cases that may need to be assessed before treatment including interactions with the host immune system, biofilms, and polymicrobial infections. We believe that the "Clinical Phage Microbiology" pipeline presented here should serve as the basis for standardization of laboratory protocols to match phages for personalized therapy.

microbiology