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Published on: January 24, 2016
Regulation of type I interferon responses by mitochondria-derived reactive oxygen species in plasmacytoid dendritic
Zsofia Agod1, Tünde Fekete1, Marietta M Budai1
1Department of Immunology, Faculty of Medicine, University of Debrecen, 1 Egyetem Square, Debrecen H-4032, Hungary.
Abstract:
Mitochondrial reactive oxygen species (mtROS) generated continuously under physiological conditions have recently emerged as critical players in the regulation of immune signaling pathways. In this study we have investigated the regulation of antiviral signaling by increased mtROS production in plasmacytoid dendritic cells (pDCs), which, as major producers of type I interferons (IFN), are the key coordinators of antiviral immunity. The early phase of type I IFN production in pDCs is mediated by endosomal Toll-like receptors (TLRs), whereas the late phase of IFN response can also be triggered by cytosolic retinoic acid-inducible gene-I (RIG-I), expression of which is induced upon TLR stimulation. Therefore, pDCs provide an ideal model to study the impact of elevated mtROS on the antiviral signaling pathways initiated by receptors with distinct subcellular localization. We found that elevated level of mtROS alone did not change the phenotype and the baseline cytokine profile of resting pDCs. Nevertheless increased mtROS levels in pDCs lowered the TLR9-induced secretion of pro-inflammatory mediators slightly, whereas reduced type I IFN production markedly via blocking phosphorylation of interferon regulatory factor 7 (IRF7), the key transcription factor of the TLR9 signaling pathway. The TLR9-induced expression of RIG-I in pDCs was also negatively regulated by enhanced mtROS production. On the contrary, elevated mtROS significantly augmented the RIG-I-stimulated expression of type I IFNs, as well as the expression of mitochondrial antiviral-signaling (MAVS) protein and the phosphorylation of Akt and IRF3 that are essential components of RIG-I signaling. Collectively, our data suggest that increased mtROS exert diverse immunoregulatory functions in pDCs both in the early and late phase of type I IFN responses depending on which type of viral sensing pathway is stimulated.
Insights
Increased mitochondrial reactive oxygen species (mtROS) in plasmacytoid dendritic cells (pDCs) differentially regulate antiviral immunity. Elevated mtROS impair Toll-like receptor 9 (TLR9) responses but enhance RIG-I signaling, impacting type I interferon production.
Area of Science:
- Immunology
- Cell Biology
- Biochemistry
Background:
- Mitochondrial reactive oxygen species (mtROS) are increasingly recognized as key regulators of immune signaling.
- Plasmacytoid dendritic cells (pDCs) are central to antiviral immunity, primarily through type I interferon (IFN) production.
- Antiviral signaling can be initiated by endosomal Toll-like receptors (TLRs) or cytosolic RIG-I-like receptors (RLRs).
Purpose of the Study:
- To investigate the impact of elevated mtROS on antiviral signaling pathways in pDCs.
- To determine how mtROS affect TLR- and RIG-I-mediated type I IFN production.
- To elucidate the role of mtROS in regulating key signaling molecules and transcription factors involved in antiviral responses.
Main Methods:
- Primary cell culture of pDCs.
- Induction of mtROS production.
- Stimulation of TLR9 and RIG-I signaling pathways.
- Analysis of cytokine production (e.g., type I IFN).
- Assessment of protein phosphorylation and expression (e.g., IRF7, RIG-I, MAVS, Akt, IRF3).
Main Results:
- Elevated mtROS did not alter the baseline phenotype or cytokine profile of resting pDCs.
- Increased mtROS slightly reduced TLR9-induced pro-inflammatory mediators but markedly decreased type I IFN production by inhibiting IRF7 phosphorylation.
- Enhanced mtROS negatively regulated TLR9-induced RIG-I expression.
- Conversely, elevated mtROS significantly augmented RIG-I-stimulated type I IFN expression, MAVS protein levels, and phosphorylation of Akt and IRF3.
Conclusions:
- Increased mtROS exert dual regulatory effects on antiviral immunity in pDCs.
- mtROS dampen TLR9-mediated early antiviral responses.
- mtROS enhance RIG-I-mediated late antiviral responses, highlighting a complex role in immune cell signaling.
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