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Published on: September 28, 2022
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.
Abstract:
Citrobacter spp., although frequently ignored, is emerging as an important nosocomial bacterium able to cause various superficial and systemic life-threatening infections. Considered to be hard-to-treat bacterium due to its pattern of high antibiotic resistance, it is important to develop effective measures for early and efficient therapy. In this study, the first myovirus (vB_CfrM_CfP1) lytic for Citrobacter freundii was microbiologically and genomically characterized. Its morphology, activity spectrum, burst size, and biophysical stability spectrum were determined. CfP1 specifically infects C. freundii, has broad host range (>85 %; 21 strains tested), a burst size of 45 PFU/cell, and is very stable under different temperatures (-20 to 50 °C) and pH (3 to 11) values. CfP1 demonstrated to be highly virulent against multidrug-resistant clinical isolates up to 12 antibiotics, including penicillins, cephalosporins, carbapenems, and fluroquinoles. Genomically, CfP1 has a dsDNA molecule with 180,219 bp with average GC content of 43.1 % and codes for 273 CDSs. The genome architecture is organized into function-specific gene clusters typical for tailed phages, sharing 46 to 94 % nucleotide identity to other Citrobacter phages. The lysin gene encoding a predicted D-Ala-D-Ala carboxypeptidase was also cloned and expressed in Escherichia coli and its activity evaluated in terms of pH, ionic strength, and temperature. The lysine optimum activity was reached at 20 mM HEPES, pH 7 at 37 °C, and was able to significantly reduce all C. freundii (>2 logs) as well as Citrobacter koseri (>4 logs) strains tested. Interestingly, the antimicrobial activity of this enzyme was performed without the need of pretreatment with outer membrane-destabilizing agents. These results indicate that CfP1 lysin is a good candidate to control problematic Citrobacter infections, for which current antibiotics are no longer effective.
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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