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Published on: May 8, 2013
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.
Abstract:
Providencia stuartii is emerging as a significant drug-resistant nosocomial pathogen, which encourages the search for alternative therapies. Here, we have isolated Providencia stuartii phage Stuart, a novel podovirus infecting multidrug-resistant hospital isolates of this bacterium. Phage Stuart is a proposed member of a new Autographivirinae subfamily genus, with a 41,218-bp genome, direct 345-bp repeats at virion DNA ends, and limited sequence similarity of proteins to proteins in databases. Twelve out of the 52 predicted Stuart proteins are virion components. We found one to be a tailspike with depolymerase activity. The tailspike could form a highly thermostable oligomeric β-structure migrating close to the expected trimer in a nondenaturing gel. It appeared to be essential for the infection of three out of four P. stuartii hosts infected by phage Stuart. Moreover, it degraded the exopolysaccharide of relevant phage Stuart hosts, making the bacteria susceptible to serum killing. Prolonged exposure of a sensitive host to the tailspike did not cause the emergence of bacteria resistant to the phage or to serum killing, opposite to the prolonged exposure to the phage. This indicates that phage tail-associated depolymerases are attractive antivirulence agents that could complement the immune system in the fight with P. stuartiiIMPORTANCE The pace at which multidrug-resistant strains emerge has been alarming. P. stuartii is an infrequent but relevant drug-resistant nosocomial pathogen causing local to systemic life-threatening infections. We propose an alternative approach to fight this bacterium based on the properties of phage tailspikes with depolymerase activity that degrade the surface bacterial polymers, making the bacteria susceptible to the immune system. Unlike antibiotics, phage tailspikes have narrow and specific substrate spectra, and by acting as antivirulent but not bactericidal agents they do not cause the selection of resistant bacteria.
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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