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Showing posts from September 20, 2026

Nature Medicine Publishes First Detailed Consensus Guideline for Personalized Phage Therapy

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Personalized bacteriophage therapy has reached an important milestone. On September 21, 2026, Nature Medicine published what its authors describe as the first detailed, consensus-based guideline covering the practical use of personalized phage therapy from the identification of a patient’s bacterial pathogen to phage selection, pharmaceutical preparation, clinical administration, monitoring and long-term follow-up. The document moves beyond general recommendations and attempts to define a workable clinical and pharmaceutical framework for treating difficult bacterial infections when conventional options are insufficient. Figure 1. Overview of the two main approaches to bacteriophage therapy: personalized treatment based on phages matched to an individual patient’s bacterial isolate, and standardized phage products evaluated through clinical trials. The figure also distinguishes phage active pharmaceutical ingredients (APIs) from finished phage therapy medicinal products (PTMPs). Source...

HydroPhage Sustains Bacteriophage Delivery for Seven Days and Reduces Drug-Resistant Pseudomonas Wound Infections in Mice

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A new Nature Communications study addresses a problem that remains poorly defined in bacteriophage therapy: how much phage should be administered, how often it should be given, and whether systemic or local delivery is preferable when treating an established wound infection. Researchers led by Yung-Hao Lin, Tejas Dharmaraj and Qingquan Chen, with Ovijit Chaudhuri and Paul L. Bollyky jointly supervising the work, developed a murine Pseudomonas aeruginosa wound model specifically designed to compare these variables and then used the results to engineer a sustained-release phage hydrogel called HydroPhage. The study was accepted on September 9, 2026. The work involved researchers from Stanford University and Stanford Medicine together with collaborators from University Hospital Münster, Radboud University, New Jersey Institute of Technology and other institutions. Its experimental focus was not simply whether a bacteriophage could kill P. aeruginosa, but how pharmacological variables suc...

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