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Updated: May 23, 2025

Phage Phenomics: Physiological Approaches to Characterize Novel Viral Proteins
Published on: June 11, 2015
Physicochemical, genomic, and phenotypic characterization of Escherichia phage BME3
Belén Toaquiza-Vilca1, Diego Quito-Avila2,3, Pedro Maldonado-Alvarado1
1Department of Food Science and Biotechnology, Escuela Politécnica Nacional (EPN), Quito, Ecuador.
Abstract:
Infections caused by pathogenic Escherichia coli strains are increasing, and with the rising of antimicrobial resistance among bacterial pathogens, alternative therapeutic options are being actively explored, including phage therapy. In this research, a new bacteriophage, provisionally named BME3, with lytic activity against Escherichia coli was identified and characterized at the physicochemical, morphological, and genetic levels. BME3 was isolated from the tropical estuarine waters of Estero Salado, Guayaquil, Ecuador. Subsequently, it was purified and amplified, followed by a series of tests that included host range, stability studies, morphological characterization by transmission electron microscopy (TEM), and whole genome sequencing. The genomic analysis revealed that BME3 is closely related to members of the genus Justusliebigvirus, with a double-stranded DNA genome of 147,371 bp in length, a GC content of 37.5%, and 16 tRNA genes. In addition, BME3 lacks genes associated with lysogenesis, antibiotic resistance, or virulence. BME3 infected approximately 48% (13/27) of environmental E. coli strains. Among these, the infection rate was higher for antibiotic-resistant strains (67%) compared to intermediate and sensitive strains (33%). The phage infected E. coli and Salmonella sp. strains but did not affect Bacillus sp., Pseudomonas sp., or Vibrio sp. Moreover, BME3 was found to be stable at temperatures below 60°C, in pH ranges between 5 and 9, and was not sensitive to chloroform. TEM analysis supported the genetic sequence that assigned BME3 to the class Caudoviricetes. Phenotypic, genomic, and physicochemical characterization suggests that BME3 represents a promising option for phage therapy, with the potential to control antibiotic-resistant bacteria.IMPORTANCEAlthough metagenomics offers a wealth of information, not all microorganisms can be isolated and cultivated in the laboratory. In this study, we successfully isolated and characterized a phage belonging to the Justusliebigvirus genus. This group has been poorly studied regarding its physicochemical properties and lysis profile against antibiotic-resistant environmental bacteria. These bacteriophages have received less attention compared to well-studied models such as phage T4. The isolation and characterization of the indigenous polyvalent bacteriophage BME3, obtained from tropical estuarine waters in Ecuador, provide valuable insights into its potential applications for environmental control of Escherichia coli and for mitigating the spread of bacterial resistance.
Insights
A novel bacteriophage, BME3, isolated from Ecuador, shows lytic activity against pathogenic Escherichia coli strains, including antibiotic-resistant ones. This discovery offers a promising alternative for phage therapy against resistant bacterial infections.
Area of Science:
- Microbiology
- Virology
- Biotechnology
Background:
- Increasing infections caused by pathogenic Escherichia coli strains and rising antimicrobial resistance necessitate alternative therapeutic strategies.
- Phage therapy, utilizing bacteriophages to combat bacterial infections, is an actively explored alternative.
- The genus Justusliebigvirus remains poorly studied regarding its physicochemical properties and lytic activity against antibiotic-resistant bacteria.
Purpose of the Study:
- To isolate and characterize a novel bacteriophage, BME3, with lytic activity against Escherichia coli.
- To evaluate the physicochemical, morphological, and genetic properties of bacteriophage BME3.
- To assess the potential of BME3 as a therapeutic agent against antibiotic-resistant E. coli.
Main Methods:
- Isolation of bacteriophage BME3 from tropical estuarine waters in Ecuador.
- Purification, amplification, and characterization including host range, stability studies, transmission electron microscopy (TEM), and whole genome sequencing.
- Infection rate analysis against environmental E. coli strains, including antibiotic-resistant, intermediate, and sensitive strains.
Main Results:
- Bacteriophage BME3, belonging to the Justusliebigvirus genus, possesses a double-stranded DNA genome (147,371 bp) and lacks lysogenic, antibiotic resistance, or virulence genes.
- BME3 infected 48% of environmental E. coli strains, with a higher infection rate (67%) against antibiotic-resistant strains.
- The phage demonstrated stability at temperatures below 60°C and pH 5-9, infecting E. coli and Salmonella sp. but not Bacillus sp., Pseudomonas sp., or Vibrio sp.
Conclusions:
- Bacteriophage BME3 exhibits promising phenotypic, genomic, and physicochemical characteristics for phage therapy.
- BME3 represents a viable option for controlling antibiotic-resistant Escherichia coli.
- The characterization of this indigenous polyvalent bacteriophage provides valuable insights for environmental control of E. coli and mitigating bacterial resistance.
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