A teichoic acid-like wall modification associated with immune suppression is socially regulated in Streptococcus

Caleb M Anderson1, Reid V Wilkening2, Samy Boulos3

  • 1Department of Pharmaceutical Sciences, University of Illinois at Chicago, Chicago, Illinois, USA.

Mbio
|February 24, 2026
PubMed

Insights

Streptococcus pyogenes uses a quorum-sensing system to modify its cell surface with a novel carbohydrate moiety, enhancing immune evasion and pathogenesis. This discovery offers potential new therapeutic targets for treating GAS infections.

Area of Science:

  • Microbiology
  • Bacterial Pathogenesis
  • Immunology

Background:

  • Streptococcus pyogenes (group A Streptococcus, GAS) is a significant human pathogen causing diverse infections globally.
  • GAS virulence and pathogenicity mechanisms, particularly those related to host immune evasion, are not fully understood.
  • The GAS Rgg2/Rgg3 quorum-sensing (QS) system regulates cell surface modifications impacting host-pathogen interactions.

Purpose of the Study:

  • To investigate the role of the GAS Rgg2/Rgg3 QS system in modulating the bacterial cell surface.
  • To identify the specific modifications induced by QS and their impact on GAS virulence.
  • To explore potential therapeutic strategies targeting QS-regulated virulence factors.

Main Methods:

  • Comparative analysis of cell wall polysaccharides between wild-type and mutant GAS strains.
  • Utilized a fluorescently labeled phage receptor-binding protein (RBP-13-GFP) to detect cell surface modifications.
  • Assessed the impact of QS-induced modifications on bacterial colonization and pathogenesis in a murine skin infection model.

Main Results:

  • QS activation in GAS leads to the addition of an N-acetylglucosamine-linked ribitol (GlcNAc-Rbo) moiety to the cell surface.
  • This modification enhances resistance to lysozyme, promotes biofilm formation, and modulates innate immune responses.
  • Deletion of the QS-regulated qim operon reduced bacterial colonization and attenuated pathogenesis in vivo.
  • RBP-13-GFP binding confirmed the presence of the GlcNAc-Rbo moiety only upon QS induction.

Conclusions:

  • GAS employs a QS-controlled mechanism to alter its cell surface by presenting a novel carbohydrate structure.
  • This modification is crucial for evading the host innate immune response and establishing infection.
  • Targeting this QS-regulated cell surface modification presents a promising avenue for developing novel anti-GAS therapeutics.

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