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A Tail Fiber Protein and a Receptor-Binding Protein Mediate ICP2 Bacteriophage Interactions with Vibrio cholerae OmpU
Andrea N W Lim1, Minmin Yen1, Kimberley D Seed1
1Department of Molecular Biology and Microbiology, Tufts University School of Medicine, Boston, Massachusetts, USA.
Abstract:
ICP2 is a virulent bacteriophage (phage) that preys on Vibrio cholerae. ICP2 was first isolated from cholera patient stool samples. Some of these stools also contained ICP2-resistant isogenic V. cholerae strains harboring missense mutations in the trimeric outer membrane porin protein OmpU, identifying it as the ICP2 receptor. In this study, we identify the ICP2 proteins that mediate interactions with OmpU by selecting for ICP2 host range mutants within infant rabbits infected with a mixture of wild-type and OmpU mutant strains. ICP2 host range mutants that can now infect OmpU mutant strains have missense mutations in the putative tail fiber gene gp25 and the putative adhesin gene gp23. Using site-specific mutagenesis, we show that single or double mutations in gp25 are sufficient to generate the host range mutant phenotype. However, at least one additional mutation in gp23 is required for robust plaque formation on specific OmpU mutants. Mutations in gp23 alone were insufficient to produce a host range mutant phenotype. All ICP2 host range mutants retained the ability to form plaques on wild-type V. cholerae cells. The strength of binding of host range mutants to V. cholerae correlated with plaque morphology, indicating that the selected mutations in gp25 and gp23 restore molecular interactions with the receptor. We propose that ICP2 host range mutants evolve by a two-step process. First, gp25 mutations are selected for their broad host range, albeit accompanied by low-level phage adsorption. Subsequent selection occurs for gp23 mutations that further increase productive binding to specific OmpU alleles, allowing for near-wild-type efficiencies of adsorption and subsequent phage multiplication. IMPORTANCE Concern over multidrug-resistant bacterial pathogens, including Vibrio cholerae, has led to renewed interest in phage biology and the potential for phage therapy. ICP2 is a genetically unique virulent phage isolated from cholera patient stool samples. It is also one of three phages in a prophylactic cocktail that have been shown to be effective in animal models of infection and the only one of the three that requires a protein receptor (OmpU). This study identifies an ICP2 tail fiber and a receptor binding protein and examines how ICP2 responds to the selective pressures of phage-resistant OmpU mutants. We found that this particular coevolutionary arms race presents fitness costs to both ICP2 and V. cholerae.
Insights
Bacteriophage ICP2 evolves to infect Vibrio cholerae with mutated OmpU receptors. Mutations in tail fiber gene gp25 and adhesin gene gp23 allow ICP2 to overcome resistance, impacting phage therapy potential.
Area of Science:
- Microbiology
- Virology
- Genetics
Background:
- Vibrio cholerae is a significant human pathogen.
- Bacteriophage ICP2 targets V. cholerae and uses outer membrane protein OmpU as its receptor.
- ICP2-resistant V. cholerae strains possess mutations in OmpU.
Purpose of the Study:
- To identify ICP2 proteins responsible for OmpU interaction.
- To understand the evolutionary response of ICP2 to OmpU-mediated resistance.
Main Methods:
- Selection of ICP2 host range mutants in infant rabbits infected with wild-type and OmpU mutant V. cholerae.
- Site-specific mutagenesis of ICP2 genes gp25 and gp23.
- Analysis of phage binding and plaque formation.
Main Results:
- Mutations in ICP2's gp25 and gp23 genes confer host range expansion.
- Single or double mutations in gp25 enable infection of OmpU mutants.
- Additional mutations in gp23 are required for efficient plaque formation on specific OmpU mutants.
- ICP2 host range mutants retain infectivity against wild-type V. cholerae.
Conclusions:
- ICP2 evolves resistance to OmpU mutations through a two-step process involving gp25 and gp23.
- This coevolutionary arms race imposes fitness costs on both phage and bacteria.
- Understanding these interactions is crucial for developing phage therapy against V. cholerae.
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