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Characterization of Inflammatory Responses During Intranasal Colonization with Streptococcus pneumoniae
Published on: January 17, 2014
Streptococcus pyogenes Transcriptome Changes in the Inflammatory Environment of Necrotizing Fasciitis
Yujiro Hirose1, Masaya Yamaguchi2, Daisuke Okuzaki3
1Department of Oral and Molecular Microbiology, Osaka University Graduate School of Dentistry, Suita, Osaka, Japan yujirohirose@dent.osaka-u.ac.jp kawabata@dent.osaka-u.ac.jp.
Abstract:
Streptococcus pyogenes is a major cause of necrotizing fasciitis, a life-threatening subcutaneous soft-tissue infection. At the host infection site, the local environment and interactions between the host and bacteria have effects on bacterial gene expression profiles, while the gene expression pattern of S. pyogenes related to this disease remains unknown. In this study, we used a mouse model of necrotizing fasciitis and performed RNA-sequencing (RNA-seq) analysis of S. pyogenes M1T1 strain 5448 by isolating total RNA from infected hind limbs obtained at 24, 48, and 96 h postinfection. RNA-seq analysis results identified 483 bacterial genes whose expression was consistently altered in the infected hindlimbs compared to their expression under in vitro conditions. Genes showing consistent enrichment during infection included 306 encoding molecules involved in virulence, carbohydrate utilization, amino acid metabolism, trace-metal transport, and the vacuolar ATPase transport system. Surprisingly, drastic upregulation of 3 genes, encoding streptolysin S precursor (sagA), cysteine protease (speB), and secreted DNase (spd), was noted in the present mouse model (log2 fold change, >6.0, >9.4, and >7.1, respectively). Conversely, the number of consistently downregulated genes was 177, including those associated with the oxidative stress response and cell division. These results suggest that in necrotizing fasciitis, S. pyogenes shows an altered metabolism, decreased cell proliferation, and upregulation of expression of major toxins. Our findings are considered to provide critical information for developing novel treatment strategies and vaccines for necrotizing fasciitis.IMPORTANCE Necrotizing fasciitis, a life-threatening subcutaneous soft-tissue infection, is principally caused by S. pyogenes The inflammatory environment at the site of infection causes global gene expression changes for survival of the bacterium and pathogenesis. However, no known study regarding transcriptomic profiling of S. pyogenes in cases of necrotizing fasciitis has been presented. We identified 483 bacterial genes whose expression was consistently altered during infection. Our results showed that S. pyogenes infection induces drastic upregulation of the expression of virulence-associated genes and shifts metabolic pathway usage. In particular, high-level expression of toxins, such as cytolysins, proteases, and nucleases, was observed at infection sites. In addition, genes identified as consistently enriched included those related to metabolism of arginine and histidine as well as carbohydrate uptake and utilization. Conversely, genes associated with the oxidative stress response and cell division were consistently downregulated during infection. The present findings provide useful information for establishing novel treatment strategies.
Insights
Streptococcus pyogenes alters gene expression during necrotizing fasciitis, upregulating toxins and virulence factors while downregulating stress response and cell division genes. This provides insights for new treatments.
Area of Science:
- Microbiology
- Infectious Diseases
- Genomics
Background:
- Streptococcus pyogenes is a primary cause of necrotizing fasciitis.
- Bacterial gene expression changes at infection sites are crucial for pathogenesis but poorly understood in necrotizing fasciitis.
- Previous studies have not provided transcriptomic profiles of S. pyogenes during this infection.
Purpose of the Study:
- To investigate the gene expression profile of Streptococcus pyogenes during necrotizing fasciitis using a mouse model.
- To identify bacterial genes with altered expression in vivo compared to in vitro conditions.
Main Methods:
- A mouse model of necrotizing fasciitis was established.
- Total RNA was isolated from infected hind limbs at 24, 48, and 96 hours postinfection.
- RNA-sequencing (RNA-seq) was performed on Streptococcus pyogenes M1T1 strain 5448.
Main Results:
- 483 bacterial genes showed consistent expression changes during infection compared to in vitro growth.
- 306 genes were enriched, including those involved in virulence, metabolism, and transport.
- Significant upregulation of sagA, speB, and spd genes (encoding toxins) was observed.
- 177 genes were downregulated, including those related to oxidative stress response and cell division.
Conclusions:
- Streptococcus pyogenes exhibits altered metabolism, reduced proliferation, and increased toxin production during necrotizing fasciitis.
- These findings offer critical information for developing novel treatments and vaccines for necrotizing fasciitis.
- The study highlights the importance of virulence factors and metabolic shifts in S. pyogenes pathogenesis.
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