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T4-like Escherichia coli phages from the environment carry blaCTX-M
J R Mohan Raj1, R Vittal1, P Huilgol2
1Nitte University Centre for Science Education and Research, Mangaluru, India.
Abstract:
The resistance determinant blaCTX-M has many variants and has been the most commonly reported gene in clinical isolates of extended spectrum beta-lactamase producing Escherichia coli. Phages have been speculated as potential reservoirs of resistance genes and efficient vehicles for horizontal gene transfer. The objective of the study was to determine the prevalence and characterize bacteriophages that harbour the resistance determinant blaCTX-M . Escherichia coli specific bacteriophages were isolated from 15 samples including soil and water across Mangaluru, India using bacterial hosts that were sensitive to β-lactams. Phenotypic and genotypic characterization based on plaque morphology, host range, restriction fragment length polymorphism (RFLP), presence of blaCTX-M and electron microscopy was performed. Of 36 phages isolated, seven were positive for Group 1 of blaCTX-M . Based on host range and RFLP pattern, the seven phages were classified into four distinct groups, each harbouring a variant of blaCTX-M . Five phages were T4-like Myoviridae by electron microscopy which was further confirmed by polymerase chain reaction (PCR) for T4 specific gp14. Generalized transduction of the CTX-M gene from these phages was also observed. The high prevalence (20%) of this gene blaCTX-M in the phage pool confirms the significant role of Myoviridae members, specifically T4-like phages in the dissemination of this resistance gene.
Significance And Impact Of The Study:
The CTX-M gene that confers resistance to Beta-lactam class of drugs is widespread and diverse. Understanding mechanisms of antimicrobial resistance transfer is a key to devise methods for controlling it. Few studies indicate that bacteriophages are involved in the transfer of this gene but the type of phages involved and the degree of involvement remains to be explored. Our work has been able to identify the class of phages and the magnitude of involvement in the dissemination of this gene.
Insights
Bacteriophages, particularly T4-like Myoviridae, significantly contribute to the spread of the blaCTX-M gene, a key determinant of extended-spectrum beta-lactamase resistance in Escherichia coli.
Area of Science:
- Microbiology
- Genetics
- Molecular Biology
Background:
- The blaCTX-M gene is a prevalent determinant of extended-spectrum beta-lactamase (ESBL) production in Escherichia coli.
- Bacteriophages are increasingly recognized as potential reservoirs and vectors for antimicrobial resistance genes.
- Understanding the role of phages in horizontal gene transfer is crucial for combating antimicrobial resistance.
Purpose of the Study:
- To determine the prevalence of bacteriophages carrying the blaCTX-M resistance determinant.
- To characterize these bacteriophages, including their genetic makeup and morphology.
- To elucidate the role of specific phage types in the dissemination of blaCTX-M.
Main Methods:
- Isolation of Escherichia coli-specific bacteriophages from environmental samples (soil and water).
- Phenotypic and genotypic characterization: plaque morphology, host range, RFLP, blaCTX-M detection via PCR, and electron microscopy.
- Assessment of generalized transduction for the CTX-M gene.
Main Results:
- Seven out of 36 isolated phages harbored the blaCTX-M gene (Group 1).
- These seven phages were classified into four distinct groups based on host range and RFLP, each carrying a blaCTX-M variant.
- Five phages were identified as T4-like Myoviridae, confirmed by electron microscopy and PCR.
- Generalized transduction of the CTX-M gene by these phages was observed.
- A 20% prevalence of blaCTX-M in the isolated phage pool was found.
Conclusions:
- T4-like Myoviridae phages are significant vectors for the dissemination of the blaCTX-M resistance gene.
- The study identified the specific class of phages and quantified their involvement in blaCTX-M spread.
- Findings highlight the importance of bacteriophages in the evolution and spread of antimicrobial resistance.
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