Use of bacteriophage to target bacterial surface structures required for virulence: a systematic search for

Paul E Orndorff1

  • 1Department of Population Health and Pathobiology, College of Veterinary Medicine, North Carolina State University, 1060 William Moore Drive, Raleigh, NC, 27607, USA. paul_orndorff@ncsu.edu.

Current Genetics
|April 27, 2016
PubMed

Insights

Bacterial mutations conferring phage resistance often weaken pathogens, making them less harmful. This link between phage resistance and reduced virulence can guide the development of novel antibacterial therapies.

Area of Science:

  • Microbiology
  • Bacteriology
  • Molecular Biology

Background:

  • Bacteriophages (phages) target bacterial surface receptors essential for virulence.
  • Mutations conferring phage resistance often result in bacterial attenuation, reducing pathogenicity.
  • This dual effect presents opportunities for therapeutic strategies against bacterial infections.

Purpose of the Study:

  • To review the relationship between phage resistance and bacterial attenuation.
  • To explore the exploitation of this connection for developing novel antibacterial agents.
  • To highlight the potential of small molecule inhibitors targeting phage receptor biosynthesis.

Main Methods:

  • Review of existing literature on bacteriophage-bacteria interactions.
  • Analysis of studies demonstrating attenuation in phage-resistant bacterial mutants.
  • Discussion of high-throughput screening for inhibitors of phage receptor production.

Main Results:

  • Mutations conferring phage resistance frequently lead to attenuated virulence phenotypes.
  • Phage-resistant mutants are often avirulent in vivo despite normal laboratory growth.
  • Small molecule inhibitors targeting unique bacterial pathways offer a promising therapeutic avenue.

Conclusions:

  • The link between phage resistance and attenuation is a valuable principle for developing new antibacterial treatments.
  • Targeting phage receptor biosynthesis with specific inhibitors offers a potential alternative to broad-spectrum antibiotics.
  • This approach minimizes resistance development in commensal bacteria and offers specificity against pathogens.

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