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.

PubMed

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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