Decreased susceptibility to viscosin in Streptococcus pneumoniae

Anja Ruud Winther1, Zhian Salehian1, Cathrine Arnason Bøe2

  • 1Faculty of Chemistry, Biotechnology and Food Science, Norwegian University of Life Sciences, Ås, Norway.

PubMed

Insights

The lipopeptide viscosin inhibits the growth of antibiotic-resistant Streptococcus pneumoniae by disrupting cell wall synthesis, not just membrane integrity. This offers a promising avenue for developing new antimicrobial therapies against resistant bacterial infections.

Area of Science:

  • Microbiology and Infectious Diseases
  • Antimicrobial Drug Discovery
  • Bacterial Pathogenesis

Background:

  • Increasing prevalence of antibiotic-resistant *Streptococcus pneumoniae* infections poses a significant global health threat.
  • Novel antimicrobial agents are urgently needed to combat resistant bacterial strains.
  • Lipopeptides are a class of antimicrobial molecules with potential therapeutic applications.

Purpose of the Study:

  • To investigate the antimicrobial activity of the cyclic lipopeptide viscosin against *Streptococcus pneumoniae*.
  • To elucidate the mechanism of action of viscosin in inhibiting pneumococcal growth and morphology.
  • To assess the potential for resistance development to viscosin in *S. pneumoniae*.

Main Methods:

  • Growth inhibition assays and morphological studies using electron microscopy.
  • Luciferase reporter assays to assess activation of cell wall stress-responsive two-component systems (LiaFSR and CiaRH).
  • Generation and characterization of a viscosin-resistant *S. pneumoniae* mutant.

Main Results:

  • Viscosin inhibits *S. pneumoniae* growth by interfering with cell wall synthesis, leading to abnormal cell shapes and division defects, without causing immediate membrane disintegration.
  • Viscosin strongly induces cell wall stress-related two-component systems (LiaFSR and CiaRH).
  • A viscosin-resistant mutant exhibited reduced fitness and mutations in genes related to cell wall and fatty acid synthesis, indicating a complex resistance mechanism.

Conclusions:

  • Viscosin exhibits a specific mode of action against *S. pneumoniae*, targeting cell wall synthesis in addition to potential membrane effects.
  • *S. pneumoniae* shows limited propensity for developing resistance to viscosin, suggesting its potential as a scaffold for new antibiotic development.
  • Further research into viscosin derivatives could lead to novel therapeutic agents for treating resistant pneumococcal infections.

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