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.

Abstract

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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