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Whole-cell MALDI-TOF Mass Spectrometry is an Accurate and Rapid Method to Analyze Different Modes of Macrophage Activation
Published on: December 26, 2013
Microarray analysis of macrophage response to infection with Streptococcus oralis reveals the immunosuppressive
Hitomi Matsushima1, Yutaro Kumagai2, Alexis Vandenbon3
1Department of Oral Microbiology and Immunology, School of Dentistry, Showa University, 1-5-8 Hatanodai, Shinagawa-ku, Tokyo 142-8555, Japan; Department of Pediatric Dentistry, School of Dentistry, Showa University, 2-1-1 Kitasenzoku, Ohta-ku, Tokyo 145-8515, Japan.
Abstract:
Oral streptococci including mitis group streptococci are commensal residents and are also the first to colonize the oral cavity. However, various species of these oral streptococci have the potential to invade the host and occasionally lead to severe infectious disease such as cardiovascular diseases. Oral streptococci have close interactions with the host immune system including macrophages at the oral mucosal surface. One notable common trait of oral streptococcus including Streptococcus oralis (S. oralis) is the production of hydrogen peroxide (H2O2). Using a comprehensive microarray approach, we sought to understand the innate immune response profiling affected by H2O2 production from oral streptococci. We compared the gene expression patterns of macrophages infected with S. oralis wild type (WT) and streptococcal pyruvate oxidase knockout (SpxB-KO), a strain that does not produce H2O2. We found that H2O2 from S. oralis suppressed proinflammatory gene expression such as TNF-α, that is induced in response to infection, and activated the cellular stress genes such as Egr-1 in response to oxidative stress. A comparative gene ontology analysis of S. oralis WT and SpxB-KO strains revealed that during infection, down regulated genes were closely related to the processes involved in the host defense reaction and up regulated genes were related with the cellular stress responses. Using qPCR analysis, we also confirmed the same pattern of expression changes such as TNF-α, IL-6 and Egr-1. Furthermore, supernatant from SpxB-KO could not suppress the expression of TNF-α in macrophages stimulated with LPS. These findings suggested that H2O2 production from S. oralis leads to the suppression of inflammatory responses and NF-κB signaling pathways in macrophages as well as the induction of the oxidative stress response. We concluded that streptococcal H2O2 production has the beneficial effects of modulating the innate immune response, thereby stabilizing streptococcal colonization at the mucosal surface and even in the bloodstream leading to cardiovascular disease after invasion, in addition to the commensal role to compete other bacterial species as initial colonizer at oral cavity.
Insights
Hydrogen peroxide (H2O2) produced by Streptococcus oralis suppresses inflammatory responses in macrophages, promoting bacterial colonization. This H2O2 production modulates the innate immune system, impacting host defense and cellular stress pathways.
Area of Science:
- Microbiology
- Immunology
- Oral Biology
Background:
- Oral streptococci, including Streptococcus oralis (S. oralis), are common oral cavity residents.
- These bacteria can invade the host, potentially causing severe diseases like cardiovascular issues.
- Oral streptococci interact closely with the host immune system, particularly macrophages.
Purpose of the Study:
- To investigate the impact of hydrogen peroxide (H2O2) produced by S. oralis on the innate immune response.
- To compare gene expression in macrophages infected with S. oralis wild type (WT) and a non-H2O2 producing mutant (SpxB-KO).
Main Methods:
- Microarray analysis to profile gene expression in macrophages.
- Infection of macrophages with S. oralis WT and SpxB-KO strains.
- Quantitative PCR (qPCR) to confirm gene expression changes.
- Macrophage stimulation with LPS to assess TNF-α suppression.
Main Results:
- H2O2 from S. oralis suppressed pro-inflammatory genes (e.g., TNF-α) and activated cellular stress genes (e.g., Egr-1).
- Gene ontology analysis showed downregulated host defense genes and upregulated stress response genes with WT S. oralis.
- qPCR confirmed suppressed TNF-α, IL-6, and induced Egr-1 expression.
- SpxB-KO supernatant did not suppress LPS-induced TNF-α in macrophages.
Conclusions:
- Streptococcal H2O2 production suppresses inflammatory responses and NF-κB signaling in macrophages.
- H2O2 also induces oxidative stress responses in host cells.
- This modulation of the innate immune response by H2O2 aids in bacterial colonization and potential disease progression.

