Synthetic phages built from scratch in the lab will be equipped with genetic "kill switches" to prevent them from escaping into the environment. Antimicrobial resistance is rendering standard antibiotics ineffective against many infections. Phage therapy—using viruses that naturally kill bacteria—offers a promising alternative, but natural phages are difficult to control and commercialise. Synthetic phages, designed and built from the ground up, allow precise control over which bacteria they target and how they kill them. However, a major barrier remains: ensuring these engineered viruses cannot replicate or survive outside the clinic, where they might harm beneficial microbes or be misused. This project aims to build genome-safeguarding technologies—built-in biocontainment systems—that are robust enough to prevent the evolution of escape mutants. The team will design and build synthetic phages, then test how well different containment strategies work in lab cultures and in animal models of respiratory infection. If successful, this foundational technology could unlock the entire synthetic phage industry. It would allow companies to develop safe, patentable phage-based treatments for multidrug-resistant infections, and position the UK to set global safety standards for this emerging field.
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Rising levels of antimicrobial resistance worldwide threaten our healthcare systems and the global economy, which both rely on a ready supply of cheap and effective antimicrobial drugs to treat infections and prevent infections occurring in routine care. Phage therapy is a promising alternative to traditional chemical antibiotics for treating multidrug resistant bacterial infections that has proven to be lifesaving as a last-line treatment. However, conventional phage therapy faces multiple barriers to widespread use and commercialization. A promising emerging alternative is to use synthetic phages in place of natural phages building on recent advances in synthetic genomics technologies in Manchester that enable the rapid design/build of genomes from scratch. Synthetic phage therapy has a number of key advantages, including but not limited to: (i) Precise control over phage genomic contents to improve safety; (ii) Programmable specificity of the targeted bacterium leaving beneficial microbes intact; (iii) Directing phages to specific host niches or cell types; (iv) Adding bacteria-killing toxins to more effectively clear bacterial pathogens; (v) Adding genes or modifications to evade bacterial immunity systems. Synthetic phage therapy, therefore, has the potential to be transformative, offering both safer and more effective treatments for patients, as well as far greater ability to produce protectable IP and thus commercially viable phage-based products for companies. To deliver on this transformative potential, however, we must first overcome a major barrier: preventing unwanted release of synthetic phages outside the clinic. In this project, we focus on developing a foundational technology that will be essential for the safe use of synthetic phage therapy in humans and animals: the development of genome safeguarding technologies for synthetic phages that will ensure their long-term biosecurity and biocontainment, preventing their unintended release and/or misuse by third parties. Such safety mechanisms are inherent to all mature technologies and, here, must be robust to the evolution of escape mutants whilst not negatively impacting treatment effectiveness. Our interdisciplinary project combines synthetic genomics to design and build synthetic phages, evolutionary microbiological experiments to test how different biocontainment strategies affect phage escape and bacterial resistance evolution, together with tests of how biocontainment affects the efficacy of synthetic phage therapy to treat infections in both in vitro and in vivo models of respiratory infection. We believe that genome safeguarding technologies will be foundational for the entire synthetic phage technologies industry (which stretches far beyond phage therapy into diverse fields and other biotechnologies) and will be essential for the widespread commercialization and adoption of synthetic phage therapy worldwide. Our project will place UK at the forefront of the fast-growing global phage-based technologies industry and ensure the UK has a leading role in setting the global standards for safe use of synthetic phages.
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