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Porphyromonas gingivalis as a Model Organism for Assessing Interaction of Anaerobic Bacteria with Host Cells
Published on: December 17, 2015
Porphyromonas gingivalis Suppresses Interferon-Gamma Signaling in Macrophages Through a Contact-Dependent,
Shotaro Abe1, Jun Ohshima1, Masayoshi Morita1
1Department of Restorative Dentistry and Endodontology, Graduate School of Dentistry, The University of Osaka, Suita, Osaka, Japan.
Abstract:
Interferon signaling serves as a crucial defense mechanism for host cells against intracellular pathogens. Interferon-gamma (IFN-γ) binding to macrophages impacts the expression of approximately 2000 genes, activating them to enhance intracellular bactericidal activity. While various immune evasion strategies of Porphyromonas gingivalis have been extensively studied, the specific mechanisms by which it suppresses IFN-γ-mediated macrophage activation remain insufficiently characterized. In this study, we elucidated the molecular mechanism by which P. gingivalis suppresses interferon signaling in macrophages, with a particular focus on STAT1 transcript abundance, because STAT1 encodes a central transcription factor in the IFN-γ pathway. RNA-seq analysis revealed that P. gingivalis infection reduced the mRNA abundance of approximately 41% of genes upregulated following IFN-γ stimulation, including STAT1 transcripts and other interferon-related genes. Further experiments showed that direct contact between the bacterium and host cells is necessary for this inhibition. This process involves the Type IX Secretion System (T9SS) and gingipains. Notably, strains lacking all gingipains (Kgp, RgpA, and RgpB) failed to suppress STAT1 transcript abundance and instead allowed nuclear translocation of phosphorylated STAT1. These gingipain-deficient strains also exhibited reduced invasive ability, correlating with their diminished capacity to suppress interferon signaling and macrophage activation. In conclusion, our findings demonstrate that P. gingivalis inhibits interferon signaling in macrophages through intracellular infiltration, with T9SS and gingipains playing essential roles in this immunosuppressive mechanism. These results provide valuable insights into the immune evasion strategies of P. gingivalis and suggest potential therapeutic targets for combating periodontopathic diseases.
Insights
Porphyromonas gingivalis suppresses host interferon signaling by invading cells, involving its Type IX Secretion System and gingipains. This mechanism hinders macrophage activation, crucial for fighting infections.
Area of Science:
- Microbiology
- Immunology
- Molecular Biology
Background:
- Interferon signaling is vital for host defense against intracellular pathogens.
- Porphyromonas gingivalis is known for immune evasion, but its suppression of interferon-gamma (IFN-γ) mediated macrophage activation is not fully understood.
- STAT1 is a key transcription factor in the IFN-γ pathway, regulating macrophage activation.
Purpose of the Study:
- To elucidate the molecular mechanisms by which P. gingivalis suppresses interferon signaling in macrophages.
- To investigate the role of STAT1 transcript abundance in P. gingivalis-mediated immune suppression.
- To identify bacterial factors involved in inhibiting IFN-γ-induced macrophage activation.
Main Methods:
- RNA-sequencing (RNA-seq) to analyze gene expression changes in macrophages after P. gingivalis infection and IFN-γ stimulation.
- Experimental validation of bacterial contact requirement for inhibition.
- Analysis of mutant strains lacking gingipains (Kgp, RgpA, RgpB) and the Type IX Secretion System (T9SS).
- Assessment of STAT1 nuclear translocation and macrophage bactericidal activity.
Main Results:
- P. gingivalis infection reduced mRNA abundance of ~41% of IFN-γ-upregulated genes, including STAT1.
- Bacterial-host cell contact is necessary for suppressing interferon signaling.
- The Type IX Secretion System (T9SS) and gingipains are essential for P. gingivalis to suppress STAT1 transcript levels and inhibit STAT1 phosphorylation.
- Gingipain-deficient strains failed to suppress STAT1 and showed reduced invasive ability.
Conclusions:
- P. gingivalis inhibits macrophage interferon signaling via intracellular invasion, utilizing T9SS and gingipains.
- This immunosuppressive mechanism is linked to the bacterium's ability to evade host defenses and cause disease.
- Targeting T9SS and gingipains could be a therapeutic strategy against periodontopathic diseases.
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