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A Fluorescence-based Method to Study Bacterial Gene Regulation in Infected Tissues
Published on: February 19, 2019
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.
Abstract:
To colonize and cause disease at distinct anatomical sites, bacterial pathogens must tailor gene expression in a microenvironment-specific manner. The molecular mechanisms that control the ability of the human bacterial pathogen group A Streptococcus (GAS) to transition between infection sites have yet to be fully elucidated. A key regulator of GAS virulence gene expression is the CovR-CovS two-component regulatory system (also known as CsrR-CsrS). covR and covS mutant strains arise spontaneously during invasive infections and, in in vivo models of infection, rapidly become dominant. Here, we compared wild-type GAS with covR, covS, and covRS isogenic mutant strains to investigate the heterogeneity in the types of natural mutations that occur in covR and covS and the phenotypic consequences of covR or covS mutation. We found that the response regulator CovR retains some regulatory function in the absence of CovS and that CovS modulates CovR to significantly enhance repression of one group of genes (e.g., the speA, hasA, and ska genes) while it reduces repression of a second group of genes (e.g., the speB, grab, and spd3 genes). We also found that different in vivo-induced covR mutations can lead to strikingly different transcriptomes. While covS mutant strains show increased virulence in several invasive models of infection, we determined that these mutants are significantly outcompeted by wild-type GAS during growth in human saliva, an ex vivo model of upper respiratory tract infection. We propose that CovS-mediated regulation of CovR activity plays an important role in the ability of GAS to cycle between pharyngeal and invasive infections.
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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