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The Orphan G Protein-coupled Receptor GPR17 Negatively Regulates Oligodendrocyte Differentiation via Gαi/o and Its
Katharina Simon1, Stephanie Hennen1, Nicole Merten1
1From the Institute of Pharmaceutical Biology, Section Molecular, Cellular, and Pharmacobiology, University of Bonn, 53115 Bonn, Germany and.
Abstract:
Recent studies have recognized G protein-coupled receptors as important regulators of oligodendrocyte development. GPR17, in particular, is an orphan G protein-coupled receptor that has been identified as oligodendroglial maturation inhibitor because its stimulation arrests primary mouse oligodendrocytes at a less differentiated stage. However, the intracellular signaling effectors transducing its activation remain poorly understood. Here, we use Oli-neu cells, an immortalized cell line derived from primary murine oligodendrocytes, and primary rat oligodendrocyte cultures as model systems to identify molecular targets that link cell surface GPR17 to oligodendrocyte maturation blockade. We demonstrate that stimulation of GPR17 by the small molecule agonist MDL29,951 (2-carboxy-4,6-dichloro-1H-indole-3-propionic acid) decreases myelin basic protein expression levels mainly by triggering the Gαi/o signaling pathway, which in turn leads to reduced activity of the downstream cascade adenylyl cyclase-cAMP-PKA-cAMP response element-binding protein (CREB). In addition, we show that GPR17 activation also diminishes myelin basic protein abundance by lessening stimulation of the exchange protein directly activated by cAMP (EPAC), thus uncovering a previously unrecognized role for EPAC to regulate oligodendrocyte differentiation. Together, our data establish PKA and EPAC as key downstream effectors of GPR17 that inhibit oligodendrocyte maturation. We envisage that treatments augmenting PKA and/or EPAC activity represent a beneficial approach for therapeutic enhancement of remyelination in those demyelinating diseases where GPR17 is highly expressed, such as multiple sclerosis.
Insights
G protein-coupled receptor 17 (GPR17) inhibits oligodendrocyte maturation by activating PKA and EPAC pathways. Targeting these pathways may enhance remyelination in diseases like multiple sclerosis.
Area of Science:
- Neuroscience
- Cell Biology
- Molecular Biology
Background:
- G protein-coupled receptors (GPCRs) regulate oligodendrocyte development.
- GPR17 acts as an oligodendroglial maturation inhibitor, arresting cell differentiation.
- Intracellular signaling pathways downstream of GPR17 activation are not well understood.
Purpose of the Study:
- To identify molecular targets linking GPR17 activation to oligodendrocyte maturation blockade.
- To elucidate the intracellular signaling cascades affected by GPR17 stimulation.
Main Methods:
- Utilized Oli-neu cells and primary rat oligodendrocyte cultures.
- Stimulated GPR17 using the small molecule agonist MDL29,951.
- Assessed myelin basic protein expression and downstream signaling pathways.
Main Results:
- GPR17 stimulation decreased myelin basic protein (MBP) levels via the Gαi/o pathway.
- Reduced activity of the adenylyl cyclase-cAMP-PKA-CREB cascade was observed.
- GPR17 activation diminished MBP by reducing EPAC stimulation, revealing EPAC's role in differentiation.
Conclusions:
- PKA and EPAC are key downstream effectors of GPR17 that inhibit oligodendrocyte maturation.
- Augmenting PKA and/or EPAC activity could be a therapeutic strategy for remyelination.
- This approach may benefit demyelinating diseases like multiple sclerosis with high GPR17 expression.
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