Phage lytic enzymes as therapy for antibiotic-resistant Streptococcus pneumoniae infection in a murine sepsis model
Isabel Jado1, Rubens López, Ernesto García
1Centro Nacional de Microbiología, Instituto de Salud Carlos III, 28220 Majadahonda, Madrid, Spain.
Objectives:
Phage-coded lysins, i.e. murein hydrolases, are enzymes that destroy the cell wall of bacteria. A rapid killing of Streptococcus pneumoniae in the nasopharynx of mice has been described recently using a phage-coded murein hydrolase (enzybiotic). The in vivo effects of a dose-ranging treatment, using either of the phage-coded lytic enzymes Cpl-1 lysozyme or the Pal amidase, have been investigated here in a murine sepsis model.
Methods:
Purified Pal amidase and/or Cpl-1 lysozyme were used alone or in combination. These enzymes were injected intraperitoneally at different times after challenge with 5 x 10(7) cfu of a type 6B, antibiotic-resistant S. pneumoniae clinical isolate.
Results:
Animals challenged with 5 x 10(7) cfu of this strain alone died within 72 h, whereas a single intraperitoneal injection of Cpl-1 or Pal (200 microg; 1100 U) administered 1 h after the bacterial challenge was sufficient to effectively protect the mice, according to unpaired t-test (P<0.0001). Bacteraemia in unprotected mice reached colony counts >10(7) cfu/mL, whereas the mean colony count in lysin-protected animals was <10(6) cfu/mL over time and ultimately became undetectable. Interestingly, a synergic effect in vivo was observed with the combined use of 2.5 microg each of Cpl-1 and Pal.
Conclusions:
Our findings suggest strongly that phage lysins protect animals from bacteraemia and death. Moreover, the simultaneous attack of the pneumococcal peptidoglycan by a lysozyme and an amidase leads to a remarkable effect through enhanced destruction of the bacterial cell wall. The benefits of therapy with enzybiotics against pneumococcus reported here might warrant the examination of alternative strategies for the treatment of diseases caused by clinically relevant pathogens.
Insights
Phage lysins, Cpl-1 lysozyme and Pal amidase, effectively protected mice against Streptococcus pneumoniae sepsis. Combining these enzybiotics showed a synergistic effect, enhancing bacterial cell wall destruction and survival.
Area of Science:
- Microbiology
- Biochemistry
- Pharmacology
Background:
- Phage-coded lysins are bacterial cell wall-degrading enzymes.
- Enzybiotics offer a potential alternative to antibiotics for treating bacterial infections.
Purpose of the Study:
- To investigate the in vivo efficacy of phage-derived lysins, Cpl-1 lysozyme and Pal amidase, in a murine sepsis model.
- To evaluate the protective effects of Cpl-1 lysozyme and Pal amidase, alone and in combination, against Streptococcus pneumoniae.
Main Methods:
- A murine sepsis model was established using an antibiotic-resistant Streptococcus pneumoniae clinical isolate.
- Mice were treated intraperitoneally with purified Pal amidase and/or Cpl-1 lysozyme at varying doses and times post-challenge.
- Bacteraemia levels and animal survival were monitored.
Main Results:
- A single dose of Cpl-1 lysozyme or Pal amidase (200 microg) 1 hour after bacterial challenge significantly protected mice (P<0.0001).
- Lysin treatment reduced bacteraemia from >10(7) cfu/mL to undetectable levels.
- A synergistic protective effect was observed when Cpl-1 and Pal were used in combination (2.5 microg each).
Conclusions:
- Phage lysins demonstrate significant protective effects against Streptococcus pneumoniae bacteraemia and mortality in vivo.
- Combined treatment with a lysozyme and an amidase enhances bacterial cell wall destruction, leading to improved therapeutic outcomes.
- These findings support the potential of enzybiotic therapy as an alternative strategy for treating infections caused by clinically relevant pathogens.
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