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Isolation of generalized transducing bacteriophages for uropathogenic strains of Escherichia coli
E J Battaglioli1, G A Baisa, A E Weeks
1Department of Medical Microbiology and Immunology, University of Wisconsin-Madison, Madison, WI 53706, USA.
Abstract:
The traditional genetic procedure for random or site-specific mutagenesis in Escherichia coli K-12 involves mutagenesis, isolation of mutants, and transduction of the mutation into a clean genetic background. The transduction step reduces the likelihood of complications due to secondary mutations. Though well established, this protocol is not tenable for many pathogenic E. coli strains, such as uropathogenic strain CFT073, because it is resistant to known K-12 transducing bacteriophages, such as P1. CFT073 mutants generated via a technique such as lambda Red mutagenesis may contain unknown secondary mutations. Here we describe the isolation and characterization of transducing bacteriophages for CFT073. Seventy-seven phage isolates were acquired from effluent water samples collected from a wastewater treatment plant in Madison, WI. The phages were differentiated by a host sensitivity-typing scheme with a panel of E. coli strains from the ECOR collection and clinical uropathogenic isolates. We found 49 unique phage isolates. These were then examined for their ability to transduce antibiotic resistance gene insertions at multiple loci between different mutant strains of CFT073. We identified 4 different phages capable of CFT073 generalized transduction. These phages also plaque on the model uropathogenic E. coli strains 536, UTI89, and NU14. The highest-efficiency transducing phage, ΦEB49, was further characterized by DNA sequence analysis, revealing a double-stranded genome 47,180 bp in length and showing similarity to other sequenced phages. When combined with a technique like lambda Red mutagenesis, the newly characterized transducing phages provide a significant development in the genetic tools available for the study of uropathogenic E. coli.
Insights
New bacteriophages capable of generalized transduction were isolated for uropathogenic Escherichia coli CFT073. These phages overcome limitations of traditional methods, enabling better genetic studies of pathogenic E. coli strains.
Area of Science:
- Microbiology
- Genetics
- Molecular Biology
Background:
- Traditional genetic manipulation of Escherichia coli K-12 relies on mutagenesis and transduction, but pathogenic strains like CFT073 are resistant to common phages.
- This resistance hinders genetic studies, as techniques like lambda Red mutagenesis may introduce secondary mutations in pathogenic E. coli.
Purpose of the Study:
- To isolate and characterize novel bacteriophages capable of generalized transduction for uropathogenic Escherichia coli CFT073.
- To develop improved genetic tools for studying pathogenic E. coli.
Main Methods:
- Isolation of bacteriophages from wastewater samples.
- Host sensitivity-typing using various E. coli strains.
- Testing phage ability to transduce antibiotic resistance genes between CFT073 mutants.
- DNA sequencing and characterization of the most efficient transducing phage.
Main Results:
- 49 unique phage isolates were identified from 77 initial isolates.
- Four distinct phages demonstrated generalized transduction capability for CFT073.
- These phages also infect other pathogenic E. coli strains (536, UTI89, NU14).
- Phage ΦEB49, the most efficient, has a 47,180 bp double-stranded genome with similarities to known phages.
Conclusions:
- The newly characterized transducing phages are valuable genetic tools for uropathogenic E. coli.
- These phages, combined with methods like lambda Red mutagenesis, facilitate genetic analysis of pathogenic E. coli strains.
- This research significantly advances the genetic toolkit for studying uropathogenic E. coli.
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