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Woudstra, C.

Publications and source records attributed to Woudstra, C..

2 recordsLinked to original sources

The branched receptor binding complex of Ackermannviridae phages promotes adaptative host recognition

Bacteriophages may express multiple receptor binding proteins, enabling the recognition of distinct and diverse bacterial receptors for infection of a broad range of strains. Ackermannviridae phages recognize diverse O-antigens or K-antigens as receptors by expressing multiple tail spike proteins (TSPs). These TSPs interact and form a branched protein complex protruding from the baseplate attached to the distal tail. Here, we aimed to mimic the evolution of the TSP complex by studying the acquisition of new TSPs without disrupting the functionality of the complex. Using kuttervirus phage S117 as a backbone, we demonstrated the acquisition of entire tsp genes from Kuttervirus and Agtrevirus phages within the Ackermannviridae family. A fifth TSP was designed to interact with the complex and provide new host recognition to expand the branched TSP complex. Interestingly, the acquisition of tsp5 resulted in new variants of the branched TSP complex due to the exchange or deletion of tsp genes. Overall, our study provides novel insight into the development of the branched TSP complex, enabling Ackermannviridae phages to adapt to new hosts.

microbiology↗

Engineering of Salmonella phages into novel antimicrobial Tailocins

Due to the extensive use of antibiotics, the increase of infections caused by antibiotic resistant bacteria are now a global health concern. Phages have proven useful for treating bacterial infections and represent a promising alternative or complement to antibiotic treatment. Yet, other alternative exists, such as bacteria-produced non-replicative protein complexes that can kill their targeted bacteria by puncturing their membrane (Tailocins). To expand the repertoire of Tailocins available, we suggest a new approach transforming phages into Tailocins. Here we genetically engineered the virulent Ackermannviridae phage S117, as well as temperate phages Fels-1, -2 and Gifsy-1 and -2 targeting the food pathogen Salmonella, by deleting the portal vertex or major capsid gene using CRISPR-Cas9. We report the production of Tailocin particles from engineered virulent and temperate phages able to kill their native host. Our work represents a steppingstone to tape into the huge diversity of phages and transform them into versatile puncturing new antimicrobials.

synthetic biology↗