Isolation and Characterization of Three Pseudomonas aeruginosa Viruses with Therapeutic Potential

Xiao Wang1, Jingjing Tang1, Wen Dang2

  • 1State Key Laboratory of Crop Stress Biology for Arid Areas, Shaanxi Key Laboratory of Agricultural and Environmental Microbiology, College of Life Sciences, Northwest A&F University, Yangling, Shaanxi, China.

Insights

Three novel bacteriophages targeting Pseudomonas aeruginosa were isolated and characterized. These phages demonstrate stability and efficacy in reducing bacterial biofilms and infections in a mouse model, offering potential for phage therapy against antibiotic-resistant bacteria.

Area of Science:

  • Microbiology and Virology
  • Bacteriophage Research
  • Antimicrobial Resistance Strategies

Background:

  • Pseudomonas aeruginosa is a common opportunistic pathogen causing hospital-acquired infections.
  • Antibiotic resistance in P. aeruginosa poses a significant challenge to conventional treatments.
  • Phage therapy presents a promising alternative for combating multidrug-resistant bacterial infections.

Purpose of the Study:

  • To isolate and characterize novel bacteriophages effective against Pseudomonas aeruginosa.
  • To evaluate the therapeutic potential of isolated phages, including their stability and biofilm clearance capabilities.
  • To assess the efficacy of phage treatment in reducing bacterial load and inflammation in a preclinical model.

Main Methods:

  • Isolation of bacteriophages using enrichment and double-layer agar overlay methods.
  • Morphological characterization and whole-genome sequencing of isolated phages (PA_LZ01, PA_LZ02, PA_LZ03).
  • Assessment of phage stability across different temperatures and pH levels, one-step growth curves, biofilm clearance assays, and *in vivo* efficacy in a mouse model.

Main Results:

  • Three bacteriophages (PA_LZ01, PA_LZ02, PA_LZ03) with icosahedral heads and contractile tails were isolated.
  • Genomic analysis revealed distinct taxonomic classifications for the phages: PA_LZ01 (Pbunavirus), PA_LZ02 (Pamexvirus), and PA_LZ03 (Mesyanzhinovviridae).
  • PA_LZ01 and PA_LZ02 exhibited significant stability, effective biofilm clearance, and reduced bacterial loads and inflammation *in vivo*.

Conclusions:

  • The isolated bacteriophages are stable under various environmental conditions and possess the ability to reduce P. aeruginosa biofilms.
  • PA_LZ01 and PA_LZ02 demonstrate therapeutic potential, effectively decreasing bacterial burden and inflammatory responses in a mouse model.
  • These findings support the use of these novel bacteriophages as candidates for developing phage therapy against P. aeruginosa infections.

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