A Tailspike with Exopolysaccharide Depolymerase Activity from a New Providencia stuartii Phage Makes

Hugo Oliveira1, Graça Pinto2, Bruna Mendes2,3

  • 1CEB-Centre of Biological Engineering, University of Minho, Braga, Portugal hugooliveira@deb.uminho.pt jazeredo@deb.uminho.pt.

Insights

A novel phage, Stuart, and its tailspike protein show promise against multidrug-resistant Providencia stuartii. This phage tailspike degrades bacterial exopolysaccharides, enhancing susceptibility to immune defenses without driving resistance.

Area of Science:

  • Microbiology and Virology
  • Bacteriophage research
  • Antimicrobial resistance

Background:

  • Providencia stuartii is an emerging multidrug-resistant nosocomial pathogen.
  • The rise of antibiotic resistance necessitates alternative therapeutic strategies.
  • Bacteriophages offer a potential avenue for combating resistant bacterial infections.

Purpose of the Study:

  • To isolate and characterize bacteriophages targeting multidrug-resistant Providencia stuartii.
  • To investigate the potential of phage-derived proteins as therapeutic agents.
  • To evaluate the efficacy of phage tailspike depolymerase activity against P. stuartii.

Main Methods:

  • Isolation and genomic analysis of a novel P. stuartii bacteriophage, named Stuart.
  • Identification and characterization of phage virion components, focusing on tailspike proteins.
  • Assay of tailspike depolymerase activity on bacterial exopolysaccharides and assessment of bacterial susceptibility to serum killing.

Main Results:

  • Phage Stuart, a podovirus with a 41,218-bp genome, was isolated from multidrug-resistant P. stuartii.
  • A phage tailspike protein with depolymerase activity was identified, essential for infecting multiple P. stuartii hosts.
  • The tailspike degraded exopolysaccharides, increasing bacterial susceptibility to serum killing without inducing resistance.

Conclusions:

  • Phage tail-associated depolymerases are effective antivirulence agents against P. stuartii.
  • These depolymerases can enhance the host immune system's ability to clear infections.
  • Unlike antibiotics, phage tailspikes exhibit specific activity and do not promote bacterial resistance, offering a novel therapeutic approach.

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