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Updated: Apr 22, 2026

Generation of Immature, Mature and Tolerogenic Dendritic Cells with Differing Metabolic Phenotypes
Published on: June 22, 2016
Oxidative modification enhances the immunostimulatory effects of extracellular mitochondrial DNA on plasmacytoid
Kitti Pazmandi1, Zsofia Agod1, Brahma V Kumar1
1Department of Immunology, Faculty of Medicine, University of Debrecen, 98 Nagyerdei Blvd., Debrecen H-4012, Hungary.
Abstract:
Inflammation is associated with oxidative stress and characterized by elevated levels of damage-associated molecular pattern (DAMP) molecules released from injured or even living cells into the surrounding microenvironment. One of these endogenous danger signals is the extracellular mitochondrial DNA (mtDNA) containing evolutionary conserved unmethylated CpG repeats. Increased levels of reactive oxygen species (ROS) generated by recruited inflammatory cells modify mtDNA oxidatively, resulting primarily in accumulation of 8-oxo-7,8-dihydroguanine (8-oxoG) lesions. In this study, we examined the impact of native and oxidatively modified mtDNAs on the phenotypic and functional properties of plasmacytoid dendritic cells (pDCs), which possess a fundamental role in the regulation of inflammation and T cell immunity. Treatment of human primary pDCs with native mtDNA up-regulated the expression of a costimulatory molecule (CD86), a specific maturation marker (CD83), and a main antigen-presenting molecule (HLA-DQ) on the cell surface, as well as increased TNF-α and IL-8 production from the cells. These effects were more apparent when pDCs were exposed to oxidatively modified mtDNA. Neither native nor oxidized mtDNA molecules were able to induce interferon (IFN)-α secretion from pDCs unless they formed a complex with human cathelicidin LL-37, an antimicrobial peptide. Interestingly, simultaneous administration of a Toll-like receptor (TLR)9 antagonist abrogated the effects of both native and oxidized mtDNAs on human pDCs. In a murine model, oxidized mtDNA also proved a more potent activator of pDCs compared to the native form, except for induction of IFN-α production. Collectively, we demonstrate here for the first time that elevated levels of 8-oxoG bases in the extracellular mtDNA induced by oxidative stress increase the immunostimulatory capacity of mtDNA on pDCs.
Insights
Oxidative stress enhances extracellular mitochondrial DNA (mtDNA) by increasing 8-oxoG lesions, making it a more potent activator of plasmacytoid dendritic cells (pDCs) and boosting immune responses.
Area of Science:
- Immunology
- Cell Biology
- Molecular Biology
Background:
- Inflammation involves oxidative stress and damage-associated molecular patterns (DAMPs).
- Extracellular mitochondrial DNA (mtDNA) with CpG repeats is an endogenous danger signal.
- Reactive oxygen species (ROS) modify mtDNA, forming 8-oxo-7,8-dihydroguanine (8-oxoG) lesions.
Purpose of the Study:
- To investigate the impact of native and oxidatively modified mtDNA on plasmacytoid dendritic cells (pDCs).
- To understand the role of mtDNA modifications in immune cell activation and inflammatory responses.
Main Methods:
- Treatment of human primary pDCs with native and oxidatively modified mtDNA.
- Analysis of pDC surface marker expression (CD86, CD83, HLA-DQ) and cytokine production (TNF-α, IL-8, IFN-α).
- Assessment of mtDNA effects using a Toll-like receptor (TLR)9 antagonist and a murine model.
Main Results:
- Native and oxidized mtDNA up-regulated costimulatory, maturation, and antigen-presenting molecules on pDCs.
- Oxidized mtDNA showed enhanced immunostimulatory effects compared to native mtDNA.
- mtDNA induced IFN-α secretion only when complexed with LL-37, and TLR9 antagonism blocked mtDNA effects.
Conclusions:
- Elevated 8-oxoG bases in extracellular mtDNA due to oxidative stress increase its immunostimulatory capacity on pDCs.
- Oxidized mtDNA is a more potent activator of pDCs, influencing inflammatory and T cell immunity.
- These findings highlight a novel mechanism linking oxidative stress, mtDNA damage, and immune cell activation in inflammation.
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