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McCallin, S.

Publications and source records attributed to McCallin, S..

2 recordsLinked to original sources

CRISPR-Cas9 enables efficient genome engineering of the strictly lytic, broad host-range staphylococcal bacteriophage K

Staphylococcus aureus is an important opportunistic pathogen, responsible for a range of diseases that often prove challenging to treat due to resistance to methicillin, vancomycin, and other antimicrobials. Bacteriophages present a promising alternative to target such pathogens, particularly when conventional drugs are ineffective. The antimicrobial efficacy of phage therapeutics can be further improved through genetic engineering. Among S. aureus phages, members of the Twortvirinae subfamily, characterized by their strictly lytic nature and broad host range, are considered the most promising therapeutic candidates. However, their large genome sizes make them notoriously difficult to engineer. In this study, we utilized Twortvirus K as a model to develop an efficient phage engineering platform, leveraging homologous recombination and CRISPR-Cas9-assisted counterselection. As proof of principle, this platform was utilized to construct a nanoluciferase (nluc)-encoding reporter phage (K::nluc) and tested as a preliminary, bioluminescence-based approach for identifying viable Staphylococcus cells. Independent of their phage-resistance profile, 100% of tested clinical S. aureus isolates emitted bioluminescence upon K::nluc challenge. This diagnostic assay was further adapted to complex matrices such as human whole blood and bovine raw milk, simulating S. aureus detection scenarios in bacteremia and bovine mastitis. Beyond reporter phage-based diagnostics, our engineering technology opens avenues for the design and engineering of therapeutic Twortvirinae phages to combat drug-resistant S. aureus strains.

bioengineering↗

Engineered reporter phages for rapid detection of Escherichia coli, Klebsiella spp., and Enterococcus spp. in urine

The rapid detection and species-level differentiation of bacterial pathogens facilitates antibiotic stewardship and improves disease management. Here, we develop a rapid bacteriophage-based diagnostic assay to detect the most prevalent pathogens causing urinary tract infections: Escherichia coli, Klebsiella spp., and Enterococcus spp. For each uropathogen, two virulent phages were genetically engineered to express a nanoluciferase reporter gene upon host infection. Using 206 patient urine samples, reporter phage-induced bioluminescence was quantified to identify bacteriuria and the assay was benchmarked against conventional urinalysis. Overall, E. coli, Klebsiella spp., and Enterococcus spp. were each detected with high sensitivity (68%, 78%, 85%), specificity (99%, 99%, 99%), and accuracy (90%, 94%, 96%) at a resolution of [>=]103 CFU/ml within 5 h. We further demonstrate how bioluminescence in urine can be used to predict phage antibacterial activity, demonstrating the future potential of reporter phages as companion diagnostics that guide patient-phage matching prior to therapeutic phage application.

microbiology↗