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Published on: November 11, 2017
Alterations of CXCR4 function in μ-opioid receptor-deficient glia
Silvia Burbassi1, Rajarshi Sengupta, Olimpia Meucci
1Department of Pharmacology and Physiology, Drexel University College of Medicine, Philadelphia, PA 19102, USA.
Abstract:
The chemokine receptor CXCR4 and the μ-opioid receptor (MOR) are G-protein-coupled receptors that are essential for normal function of the nervous and immune systems. Several studies have suggested that MOR is a key regulator of CXCR4 in the brain; however, the molecular basis of the opioid-chemokine interaction is not fully understood, and it may involve different mechanisms in neuronal and glial cells. Our previous studies demonstrated that MOR stimulation specifically upregulates the protein ferritin heavy chain - an inhibitor of CXCR4 - in neurons, and suggested that additional mechanisms could be operative in glia. In this study, we investigated CXCR4 function in brains and astroglial cultures deprived of MOR. Reduced coupling of CXCR4 to G-proteins was found in brain slices and tissue homogenates of MOR(-/-) mice as compared with wild-type controls. CXCR4-induced signaling was also reduced in glial cultures from MOR(-/-) mice, as shown by analysis of CXCR4 downstream targets (Akt and ERK1/2). Pharmacological studies with δ-opioid receptor (DOR)-specific ligands suggested that DOR-CXCR4 interactions are implicated in the inhibition of CXCR4 in MOR-deficient cells both in vitro and in vivo. Moreover, increased CXCR4/DOR co-immunoprecipitation was found in brain tissue and cultured glia from MOR(-/-) mice. Importantly, CXCR4 function was restored by pretreatment with a DOR antagonist. Overall, these findings indicate that DOR plays a crucial role in the regulation of CXCR4 in glia, probably via silent receptor heterodimers. The data also suggest that the opiate system interferes with normal CXCR4 function in different ways, depending on receptor subtypes.
Insights
The delta-opioid receptor (DOR) regulates the chemokine receptor CXCR4 in glial cells, especially when the mu-opioid receptor (MOR) is absent. DOR antagonism restores CXCR4 function, revealing distinct opioid-chemokine interactions.
Area of Science:
- Neuroscience
- Immunology
- Pharmacology
Background:
- Chemokine receptor CXCR4 and μ-opioid receptor (MOR) are crucial G-protein-coupled receptors in the nervous and immune systems.
- MOR is suggested to regulate CXCR4 in the brain, but mechanisms in neurons versus glia differ.
- Previous work showed MOR stimulation upregulates ferritin heavy chain, inhibiting CXCR4 in neurons.
Purpose of the Study:
- Investigate CXCR4 function in brains and astroglial cultures lacking MOR.
- Elucidate the molecular basis of opioid-chemokine interactions in glial cells.
- Determine the role of other opioid receptors in CXCR4 regulation in MOR-deficient contexts.
Main Methods:
- Comparative analysis of CXCR4 G-protein coupling in MOR(-/-) and wild-type mouse brain slices and homogenates.
- Assessment of CXCR4 downstream signaling (Akt, ERK1/2) in MOR(-/-) astroglial cultures.
- Pharmacological studies using δ-opioid receptor (DOR) ligands and antagonists; co-immunoprecipitation assays.
Main Results:
- Reduced CXCR4 G-protein coupling and signaling in MOR-deficient brains and glia.
- Evidence implicating DOR in the inhibition of CXCR4 in MOR-deficient cells (in vitro and in vivo).
- Increased CXCR4/DOR co-immunoprecipitation in MOR(-/-) tissues; DOR antagonism restored CXCR4 function.
Conclusions:
- DOR plays a critical role in regulating CXCR4 in glial cells, potentially via silent receptor heterodimers.
- The opiate system differentially impacts CXCR4 function based on specific receptor subtypes.
- Distinct mechanisms govern opioid-chemokine receptor interactions in neuronal and glial cells.

