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Updated: May 29, 2025

Author Spotlight: Investigating Bacteriophage-Induced Immune Responses in Gnotobiotic Mice
Published on: January 26, 2024
Multi-strain phage induced clearance of bacterial infections
Jacopo Marchi1, Chau Nguyen Ngoc Minh2,3, Laurent Debarbieux2
1Department of Biology, University of Maryland, College Park, Maryland, United States of America.
Abstract:
Bacteriophage (or 'phage' - viruses that infect and kill bacteria) are increasingly considered as a therapeutic alternative to treat antibiotic-resistant bacterial infections. However, bacteria can evolve resistance to phage, presenting a significant challenge to the near- and long-term success of phage therapeutics. Application of mixtures of multiple phages (i.e., 'cocktails') has been proposed to limit the emergence of phage-resistant bacterial mutants that could lead to therapeutic failure. Here, we combine theory and computational models of in vivo phage therapy to study the efficacy of a phage cocktail, composed of two complementary phages motivated by the example of Pseudomonas aeruginosa facing two phages that exploit different surface receptors, LUZ19v and PAK_P1. As confirmed in a Luria-Delbrück fluctuation test, this motivating example serves as a model for instances where bacteria are extremely unlikely to develop simultaneous resistance mutations against both phages. We then quantify therapeutic outcomes given single- or double-phage treatment models, as a function of phage traits and host immune strength. Building upon prior work showing monophage therapy efficacy in immunocompetent hosts, here we show that phage cocktails comprised of phage targeting independent bacterial receptors can improve treatment outcome in immunocompromised hosts and reduce the chance that pathogens simultaneously evolve resistance against phage combinations. The finding of phage cocktail efficacy is qualitatively robust to differences in virus-bacteria interactions and host immune dynamics. Altogether, the combined use of theory and computational analysis highlights the influence of viral life history traits and receptor complementarity when designing and deploying phage cocktails in immunocompetent and immunocompromised hosts.
Insights
Phage therapy uses viruses to kill bacteria. Using phage cocktails, especially those targeting different bacterial receptors, can improve treatment outcomes for immunocompromised patients and prevent bacteria from evolving resistance to multiple phages.
Area of Science:
- Microbiology
- Virology
- Computational Biology
Background:
- Antibiotic resistance is a growing threat, driving interest in bacteriophage (phage) therapy.
- Bacteria can evolve resistance to phages, challenging therapeutic efficacy.
- Phage cocktails are proposed to mitigate resistance development.
Purpose of the Study:
- To investigate the efficacy of phage cocktails against bacterial infections using computational models.
- To assess the impact of phage receptor complementarity and host immunity on therapeutic outcomes.
Main Methods:
- Developed and utilized computational models of in vivo phage therapy.
- Employed a Luria-Delbrück fluctuation test to model simultaneous resistance.
- Quantified therapeutic outcomes for single-phage and phage cocktail treatments.
Main Results:
- Phage cocktails targeting independent bacterial receptors improve outcomes in immunocompromised hosts.
- Cocktails significantly reduce the probability of bacteria evolving simultaneous resistance.
- Efficacy is robust across different virus-bacteria interactions and host immune dynamics.
Conclusions:
- Phage cocktails are a promising strategy to overcome phage resistance in bacterial infections.
- Viral life history traits and receptor complementarity are crucial for designing effective phage cocktails.
- Computational analysis aids in optimizing phage cocktail deployment for diverse host immune statuses.
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