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Adenosine Receptor Signaling Targets Both PKA and Epac Pathways to Polarize Dendritic Cells to a Suppressive
Merve Kayhan1, Altay Koyas1, Imran Akdemir1
1Department of Molecular Biology and Genetics, Bilkent University, 06800 Ankara, Turkey.
Abstract:
Extracellular adenosine accumulates in tumors and causes suppression of immune cells. Suppressive adenosine signaling is achieved through adenosine A2A and A2B receptors, which are Gs coupled, and their activation elevates cAMP levels. Gs-coupled GPCR signaling causes cAMP accumulation, which plays an anti-inflammatory role in immune cells. Protein kinase A (PKA) and exchange protein directly activated by cAMP (Epac) are two intracellular receptors of cAMP. In this study we showed that adenosine receptor signaling polarizes activated murine dendritic cells (DCs) into a tumor-promoting suppressive phenotype. Adenosine receptor signaling activates cAMP pathway and upregulates the negative regulators of NF-κB but does not influence phosphorylation of immediate inflammatory signaling molecules downstream of TLR signaling. Pharmacologic activation of both PKA and Epac pathways by specific cAMP analogues phenocopied the effects of adenosine signaling on murine DCs, such as suppression of proinflammatory cytokines, elevation of anti-inflammatory IL-10, increased expression of regulators of NF-κB pathway, and finally suppression of T cell activation. Inhibition of effector cytokine, IL-12p40 production, and increased immunosuppressive IL-10 production by adenosine signaling is significantly reversed only when both PKA and Epac pathways were inhibited together. Adenosine signaling increased IL-10 secretion while decreasing IL-12p40 secretion in human monocyte-derived DCs. Stimulation of both PKA and Epac pathways also caused combinatorial effects in regulation of IL-12p40 secretion in human monocyte-derived DCs. Interestingly, PKA signaling alone caused similar increase in IL-10 secretion to that of adenosine signaling in human monocyte-derived DCs. Our data suggest adenosine/cAMP signaling targets both PKA/Epac pathways to fully differentiate DCs into a suppressive phenotype.
Insights
Tumor extracellular adenosine suppresses immune cells by activating adenosine receptors. This signaling pathway utilizes Protein Kinase A (PKA) and Epac to promote a tumor-supportive, suppressive phenotype in dendritic cells (DCs).
Area of Science:
- Immunology
- Cancer Biology
- Molecular Signaling
Background:
- Extracellular adenosine accumulation in tumors suppresses immune cells.
- Adenosine signaling, via A2A and A2B receptors, elevates cyclic AMP (cAMP) levels.
- cAMP activates intracellular pathways including Protein Kinase A (PKA) and Epac.
Purpose of the Study:
- To investigate how adenosine receptor signaling influences dendritic cell (DC) phenotype.
- To elucidate the roles of PKA and Epac pathways in adenosine-mediated DC suppression.
- To understand the impact on immune cell activation and cytokine production.
Main Methods:
- Treatment of murine and human dendritic cells with adenosine receptor agonists and cAMP analogues.
- Analysis of cytokine production (IL-10, IL-12p40) and NF-κB pathway regulators.
- Pharmacological inhibition of PKA and Epac pathways, individually and in combination.
Main Results:
- Adenosine signaling polarized murine DCs to a suppressive, tumor-promoting phenotype.
- Pharmacological activation of PKA and Epac mimicked adenosine effects, suppressing pro-inflammatory cytokines and increasing IL-10.
- Combined inhibition of PKA and Epac reversed adenosine-induced suppression of IL-12p40 and increased IL-10 production.
Conclusions:
- Adenosine/cAMP signaling drives DC differentiation into a suppressive phenotype via PKA and Epac.
- This pathway contributes to immune suppression in the tumor microenvironment.
- Targeting both PKA and Epac pathways may restore anti-tumor immunity.
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