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A Fluorescence-based Method to Study Bacterial Gene Regulation in Infected Tissues
Published on: February 19, 2019
CovS inactivation reduces CovR promoter binding at diverse virulence factor encoding genes in group A Streptococcus
Nicola Horstmann1, Kevin S Myers2, Chau Nguyen Tran1
1Department of Infectious Diseases, Infection Control and Employee Health, The University of Texas MD Anderson Cancer Center, Houston, Texas, United States of America.
Abstract:
The control of virulence gene regulator (CovR), also called caspsule synthesis regulator (CsrR), is critical to how the major human pathogen group A Streptococcus fine-tunes virulence factor production. CovR phosphorylation (CovR~P) levels are determined by its cognate sensor kinase CovS, and functional abrogating mutations in CovS can occur in invasive GAS isolates leading to hypervirulence. Presently, the mechanism of CovR-DNA binding specificity is unclear, and the impact of CovS inactivation on global CovR binding has not been assessed. Thus, we performed CovR chromatin immunoprecipitation sequencing (ChIP-seq) analysis in the emm1 strain MGAS2221 and its CovS kinase deficient derivative strain 2221-CovS-E281A. We identified that CovR bound in the promoter regions of nearly all virulence factor encoding genes in the CovR regulon. Additionally, direct CovR binding was observed for numerous genes encoding proteins involved in amino acid metabolism, but we found limited direct CovR binding to genes encoding other transcriptional regulators. The consensus sequence AATRANAAAARVABTAAA was present in the promoters of genes directly regulated by CovR, and mutations of highly conserved positions within this motif relieved CovR repression of the hasA and MGAS2221_0187 promoters. Analysis of strain 2221-CovS-E281A revealed that binding of CovR at repressed, but not activated, promoters is highly dependent on CovR~P state. CovR repressed virulence factor encoding genes could be grouped dependent on how CovR~P dependent variation in DNA binding correlated with gene transcript levels. Taken together, the data show that CovR repression of virulence factor encoding genes is primarily direct in nature, involves binding to a newly-identified DNA binding motif, and is relieved by CovS inactivation. These data provide new mechanistic insights into one of the most important bacterial virulence regulators and allow for subsequent focused investigations into how CovR-DNA interaction at directly controlled promoters impacts GAS pathogenesis.
Insights
Group A Streptococcus virulence is controlled by CovR, a regulator whose DNA binding is directly influenced by CovS kinase activity. CovS inactivation alters CovR binding, impacting virulence gene expression and bacterial pathogenesis.
Area of Science:
- Microbiology
- Molecular Biology
- Genetics
Background:
- The virulence gene regulator (CovR) controls virulence factor production in Group A Streptococcus (GAS).
- CovR phosphorylation (CovR~P) is regulated by the sensor kinase CovS; mutations in CovS are linked to hypervirulent GAS.
- The precise mechanism of CovR-DNA binding and the effect of CovS inactivation on global CovR binding remain unclear.
Purpose of the Study:
- To elucidate the mechanism of CovR-DNA binding specificity.
- To assess the impact of CovS inactivation on global CovR binding patterns.
- To identify the DNA motif recognized by CovR.
Main Methods:
- CovR chromatin immunoprecipitation sequencing (ChIP-seq) was performed on GAS strain MGAS2221 and its CovS-deficient derivative.
- Sequence analysis identified a consensus DNA binding motif for CovR.
- Mutational analysis of the identified motif was conducted to assess its role in CovR binding and repression.
Main Results:
- CovR directly binds to the promoter regions of most virulence factor genes within the CovR regulon.
- A novel consensus DNA binding motif (AATRANAAAARVABTAAA) was identified for CovR.
- CovR binding at repressed promoters is highly dependent on the CovR~P state, and this dependency is altered upon CovS inactivation.
Conclusions:
- CovR directly represses virulence factor genes through binding to a newly identified DNA motif.
- CovS inactivation relieves CovR repression, primarily by affecting CovR binding at repressed promoters in a CovR~P-dependent manner.
- These findings provide mechanistic insights into CovR regulation and its role in GAS pathogenesis.
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