Characterization and genome sequencing of a Citrobacter freundii phage CfP1 harboring a lysin active against

Hugo Oliveira1, Graça Pinto1, Ana Oliveira1

  • 1CEB-Centre of Biological Engineering, University of Minho, Campus de Gualtar, 4710-057, Braga, Portugal.

Insights

A novel bacteriophage, CfP1, effectively targets multidrug-resistant Citrobacter freundii infections. Its derived lysin enzyme shows potent antimicrobial activity, offering a promising alternative to antibiotics for hard-to-treat Citrobacter strains.

Area of Science:

  • Microbiology and Virology
  • Bacteriophage Therapy
  • Antimicrobial Resistance

Background:

  • Citrobacter spp. are increasingly recognized as significant nosocomial pathogens.
  • These bacteria exhibit high antibiotic resistance, complicating treatment of infections.
  • Novel therapeutic strategies are crucial for combating multidrug-resistant Citrobacter infections.

Purpose of the Study:

  • To characterize the first myovirus, vB_CfrM_CfP1 (CfP1), lytic against Citrobacter freundii.
  • To evaluate the genomic features and antimicrobial potential of the CfP1 bacteriophage and its lysin.
  • To assess the efficacy of CfP1 lysin as a therapeutic agent against Citrobacter spp.

Main Methods:

  • Microbiological and genomic characterization of the myovirus CfP1.
  • Determination of CfP1's host range, burst size, and stability under various conditions.
  • Cloning, expression, and activity evaluation of the CfP1 lysin gene.

Main Results:

  • CfP1 exhibits broad host specificity for Citrobacter freundii, with a high burst size and stability across a wide temperature and pH range.
  • The bacteriophage demonstrated high virulence against multidrug-resistant clinical isolates resistant to multiple antibiotic classes.
  • The expressed CfP1 lysin effectively reduced Citrobacter freundii and Citrobacter koseri strains without requiring outer membrane pre-treatment.

Conclusions:

  • The bacteriophage CfP1 is a viable candidate for targeting difficult-to-treat Citrobacter infections.
  • CfP1 lysin shows significant antimicrobial activity and stability, presenting a promising alternative therapeutic agent.
  • This study highlights the potential of phage-derived lysins in combating multidrug-resistant bacterial pathogens.

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