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Updated: Jan 23, 2026

DNA Methylation: Bisulphite Modification and Analysis
Published on: October 21, 2011
DNA methylation from a Type I restriction modification system influences gene expression and virulence in
Taylor M Nye1, Kristin M Jacob2, Elena K Holley2
1Department of Molecular, Cellular, and Developmental Biology, University of Michigan, Ann Arbor, MI, United States of America.
Abstract:
DNA methylation is pervasive across all domains of life. In bacteria, the presence of N6-methyladenosine (m6A) has been detected among diverse species, yet the contribution of m6A to the regulation of gene expression is unclear in many organisms. Here we investigated the impact of DNA methylation on gene expression and virulence within the human pathogen Streptococcus pyogenes, or Group A Streptococcus. Single Molecule Real-Time sequencing and subsequent methylation analysis identified 412 putative m6A sites throughout the 1.8 Mb genome. Deletion of the Restriction, Specificity, and Methylation gene subunits (ΔRSM strain) of a putative Type I restriction modification system lost all detectable m6A at the recognition sites and failed to prevent transformation with foreign-methylated DNA. RNA-sequencing identified 20 genes out of 1,895 predicted coding regions with significantly different gene expression. All of the differentially expressed genes were down regulated in the ΔRSM strain relative to the parent strain. Importantly, we found that the presence of m6A DNA modifications affected expression of Mga, a master transcriptional regulator for multiple virulence genes, surface adhesins, and immune-evasion factors in S. pyogenes. Using a murine subcutaneous infection model, mice infected with the ΔRSM strain exhibited an enhanced host immune response with larger skin lesions and increased levels of pro-inflammatory cytokines compared to mice infected with the parent or complemented mutant strains, suggesting alterations in m6A methylation influence virulence. Further, we found that the ΔRSM strain showed poor survival within human neutrophils and reduced adherence to human epithelial cells. These results demonstrate that, in addition to restriction of foreign DNA, gram-positive bacteria also use restriction modification systems to regulate the expression of gene networks important for virulence.
Insights
DNA methylation, specifically N6-methyladenosine (m6A), regulates gene expression and virulence in Streptococcus pyogenes. Deleting methylation genes altered virulence, impacting host immune response and bacterial survival.
Area of Science:
- Microbiology
- Genetics
- Molecular Biology
Background:
- DNA methylation, including N6-methyladenosine (m6A), is found in bacteria but its role in gene regulation is often unclear.
- Streptococcus pyogenes (Group A Streptococcus) is a significant human pathogen where DNA methylation's impact requires further investigation.
Purpose of the Study:
- To investigate the role of DNA methylation (m6A) in regulating gene expression and virulence in Streptococcus pyogenes.
- To determine the effect of a Type I restriction-modification system deletion on m6A presence and bacterial virulence.
Main Methods:
- Single Molecule Real-Time (SMRT) sequencing for m6A site identification.
- RNA-sequencing to analyze gene expression changes in a deletion mutant (ΔRSM strain).
- Murine subcutaneous infection model and in vitro assays (neutrophil survival, epithelial cell adherence) to assess virulence.
Main Results:
- Identified 412 m6A sites in the S. pyogenes genome.
- Deletion of the Restriction, Specificity, and Methylation (RSM) genes resulted in loss of m6A and altered expression of 20 genes, including the master virulence regulator Mga.
- The ΔRSM strain showed reduced virulence, with enhanced host immune response, larger lesions, increased pro-inflammatory cytokines, poorer survival in neutrophils, and reduced adherence to epithelial cells.
Conclusions:
- Type I restriction-modification systems in gram-positive bacteria regulate gene networks crucial for virulence, beyond just foreign DNA restriction.
- m6A DNA modifications in S. pyogenes influence Mga expression and impact the pathogen's ability to cause infection and evade host defenses.
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