CovS simultaneously activates and inhibits the CovR-mediated repression of distinct subsets of group A Streptococcus

Jeanette Treviño1, Nataly Perez, Esmeralda Ramirez-Peña

  • 1Center for Molecular and Translational Human Infectious Diseases Research, The Methodist Hospital Research Institute, Houston, TX 77030, USA.

Insights

Group A Streptococcus (GAS) uses the CovR-CovS system to adapt gene expression for different infection sites. CovS fine-tunes CovR activity, crucial for GAS to switch between throat and invasive infections.

Area of Science:

  • Microbiology
  • Bacterial Pathogenesis
  • Molecular Biology

Background:

  • Group A Streptococcus (GAS) must adapt gene expression to colonize diverse anatomical sites.
  • The CovR-CovS two-component system is a key regulator of GAS virulence.
  • Mutations in covR and covS are common during invasive infections and lead to dominant strains.

Purpose of the Study:

  • To investigate the heterogeneity of covR and covS mutations in GAS.
  • To determine the phenotypic consequences of covR or covS mutations.
  • To elucidate the role of CovS-mediated regulation in GAS infection site transitions.

Main Methods:

  • Comparison of wild-type GAS with isogenic covR, covS, and covRS mutant strains.
  • Analysis of natural mutation types and their phenotypic effects.
  • Transcriptome analysis of in vivo-induced covR mutations.
  • Ex vivo infection models, including human saliva.

Main Results:

  • CovR retains partial regulatory function without CovS.
  • CovS differentially modulates CovR activity, repressing some genes (speA, hasA, ska) and de-repressing others (speB, grab, spd3).
  • In vivo-induced covR mutations yield distinct transcriptomes.
  • CovS mutants exhibit increased virulence in invasive models but are outcompeted in saliva.

Conclusions:

  • CovS-mediated regulation of CovR is critical for GAS virulence and adaptation.
  • The CovR-CovS system enables GAS to transition between pharyngeal and invasive infection sites.
  • Understanding these regulatory mechanisms is key to controlling GAS infections.

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