Phage K gp102 Drives Temperature-Sensitive Antibacterial Activity on USA300 MRSA

Susan M Lehman1, Rohit Kongari1, Adam M Glass1

  • 1Center for Biologics Evaluation and Research, US Food and Drug Administration, Silver Spring, MD 20993, USA.

Viruses
|January 21, 2023
PubMed

Insights

Mutations in the gp102 gene of bacteriophage K enhance its ability to combat Staphylococcus aureus USA300 infections at body temperature. Loss-of-function mutations in gp102 improve phage therapy efficacy against this significant pathogen.

Area of Science:

  • Microbiology
  • Virology
  • Bacteriophage Therapy

Background:

  • Bacteriophages (phages) are viruses that infect bacteria and are being explored for treating bacterial infections.
  • Staphylococcus aureus, particularly the USA300 lineage, is a common cause of invasive human infections.
  • Phage K, a model myophage, shows temperature-sensitive growth on S. aureus USA300 strains, hindering its therapeutic potential at 37°C.

Purpose of the Study:

  • To identify mutations in phage K that improve its efficacy against S. aureus USA300 at human body temperature (37°C).
  • To investigate the genetic basis and functional implications of temperature-sensitive growth in phage K on USA300 strains.

Main Methods:

  • Isolation and characterization of phage K mutants with improved plaquing efficiency at 37°C on USA300 strains.
  • Genetic analysis of mutants to identify causative mutations, focusing on loss-of-function (LoF) in gp102.
  • In vitro and in vivo experiments to assess the antibacterial activity of wild-type and mutant phages against USA300 MRSA.

Main Results:

  • Sixty-five independent mutants of phage K exhibited improved growth and plaque formation at 37°C on USA300 strains.
  • All characterized mutants contained loss-of-function mutations in the phage gene gp102, encoding a protein of unknown function.
  • Disruption of gp102 enhanced phage-mediated suppression of bacterial growth in broth and improved therapeutic outcomes in a mouse model of respiratory tract infection.
  • The temperature-sensitive phenotype and improved efficacy were specific to USA300 MRSA strains.

Conclusions:

  • Loss-of-function mutations in gp102 are responsible for overcoming the temperature-sensitive growth defect of phage K on S. aureus USA300.
  • gp102 disruption enhances phage efficacy against USA300 MRSA, suggesting a potential strategy for improving phage therapy.
  • The conserved gene gp102 plays a role in the interaction between myophages and USA300 strains, potentially related to replication rate or host defense mechanisms.