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February 12, 2026Nature Communications5 citationsOpen Access

Ecological partitioning enables phage–antibiotic cooperation in a human Pseudomonas infection

TLTiffany LuongLKLukeman KharratKCKevin Champagne-Jorgensen

Key Points

  • This research aims to clarify the interactions between bacteriophages and antibiotics in treating multidrug-resistant Pseudomonas infections.
  • Longitudinal, multiomic analysis of a male with cystic fibrosis and a Pseudomonas infection.
  • Ciprofloxacin was administered after discontinuing colistin due to side effects.
  • An intravenous two-phage cocktail was introduced to observe effects on bacterial populations.
  • Analysis of bacterial subpopulations in relation to phage and antibiotic exposure.
  • Mucoid and nonmucoid bacterial subpopulations exhibited different responses to phage and antibiotic treatment.
  • One phage dominated interactions initially but showed attenuation after seven days.
  • Phage-resistant bacterial variants emerged but expanded minimally compared to sensitive populations.
  • IgM antibody responses correlated with the loss and activity of the dominant phage.

Abstract

Abstract Bacteriophage–antibiotic coadministration is increasingly used for refractory infections, yet the in vivo interactions among phages, bacteria, antibiotics, and host immunity remain poorly defined. We report a longitudinal, multiomic case analysis of a male in his seventies with cystic fibrosis (CF) experiencing an acute-on-chronic pulmonary exacerbation caused by multidrug-resistant (MDR) Pseudomonas aeruginosa . After colistin discontinuation due to nephrotoxicity, ciprofloxacin was initiated, with an intravenous two-phage cocktail introduced days later. Distinct mucoid and nonmucoid bacterial subpopulations associated differentially with antibiotic versus phage exposure, consistent with nonoverlapping selective pressures. Phage activity was temporally constrained, with one phage dominating early bacterial and genomic signals before attenuating after approximately seven days, despite continued genomic detectability. In contrast, the second phage showed no evidence of productive activity. This asymmetry coincided with phage-reactive humoral immunity: pre-existing IgM was associated with lack of recoverability of one phage, while treatment-associated IgM emergence temporally tracked attenuation of the dominant phage. Although phage-resistant variants arose during therapy, they showed limited expansion relative to susceptible populations. These findings define a mechanistic framework—chemobiotherapy—in which chemical and biological antimicrobials coordinate through ecological and immunologic complementarity rather than direct pharmacologic synergy.

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Cite This Study

Luong et al. (2026) studied this question.

synapsesocial.com/papers/698d6ebb5be6419ac0d547d8https://doi.org/10.1038/s41467-026-69247-w
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