Active Infection & Immunity Cancer

Phage-Antimicrobial combination strategies for management of multidrug-resistant E. coli and K. pneumoniae

In plain English

AI plain-English summary

Bacteriophages—viruses that prey on bacteria—are being tested alongside antibiotics to see if the combination can kill multidrug-resistant *E. coli* and *Klebsiella pneumoniae* infections that no longer respond to standard drugs alone. This matters because antibiotic resistance is rising faster than new drugs are arriving. Even when novel antibiotics reach the clinic, bacteria quickly evolve resistance to them. Phages attack bacteria in a completely different way, but researchers have little solid data on how to pair them with antibiotics for maximum effect—whether in a test tube, inside human cells, or in a living animal. The project will run those experiments across multiple models, from computer simulations to patient-derived organoids to mice, and will also track whether the body’s immune system develops antibodies that neutralise the phages over time. If the work succeeds, it will produce a practical roadmap for designing phage-antibiotic cocktails that could be used in hospitals. That would give clinicians a new tool against infections that currently force longer hospital stays, more toxic treatments, and higher death rates. The research is applied and directly aimed at changing clinical practice, not fundamental science.

View original technical description
Multidrug-resistant (MDR) bacterial infections constitute a major challenge, resulting in significant morbidity and mortality. One of the cornerstones of the management of AMR infections is development of antimicrobials. In recent years several novel antimicrobials have been developed, but the emergence of resistance has already been described, and novel approaches are needed to improve the efficacy of current treatment regimens, while preventing development of resistance. Bacteriophages are viruses that selectively target bacteria, causing lysis of bacterial cells. Phage therapy has emerged as a potential tool to mitigate the effects of AMR. The possibility of using phages in combination with antimicrobials is largely unexplored although our evidence, and that of others, suggests that phages can improve the efficacy of antibiotics. However, there is limited knowledge about how to combine them, how this works in vitro and in vivo including impacts on the immune system. Herein, we describe a project aimed at generating pivotal information on how to optimally combine phages and antimicrobials by using several infection models – in silico, in vitro, ex vivo cell culture, patient-derived organoid models, and murine animal models. We will also investigate the emergence of phage resistance and development of antibodies in animals receiving long-term treatment with phages. This project explores the utility of phage-antimicrobial combinations in various infection models and will direct roadmaps for clinical use.

View the original record at the funder ↗

Researchers

Alasdair MacGowan (Co-Investigator)Martha Clokie (Principal Investigator)

Related Research

Grants with similar aims, by meaning.

Unraveling the interactions of phage therapy, microbiota, and immunity against multi-drug resistant bacteria
Phage mitigation of Klebsiella infection: a new approach for AMR
Addressing antimicrobial resistance by combining bioengineering and bacteriophage approaches
ANIHWA call2 - A bacteriophage-based approach to reducing infections caused by antibiotic resistant Escherichia coli
Phages and their ecological strategies to advance phage therapy

Original classification

Research Grant

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