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Nerve growth factor-regulated emergence of functional delta-opioid receptors
Bihua Bie1, Zhi Zhang, You-Qing Cai
1Department of Anesthesiology, The University of Texas-MD Anderson Cancer Center, Houston, Texas 77030, USA.
Abstract:
Sorting of intracellular G-protein-coupled receptors (GPCRs) either to lysosomes for degradation or to plasma membrane for surface insertion and functional expression is a key process regulating signaling strength of GPCRs across the plasma membrane in adult mammalian cells. However, little is known about the molecular mechanisms governing the dynamic process of receptor sorting to the plasma membrane for functional expression under normal and pathological conditions. In this study, we demonstrate that delta-opioid receptor (DOPr), a GPCR constitutively targeted to intracellular compartments, is driven to the surface membrane of central synaptic terminals and becomes functional by the neurotrophin nerve growth factor (NGF) in native brainstem neurons. The NGF-triggered DOPr translocation is predominantly mediated by the signaling pathway involving the tyrosine receptor kinase A, Ca(2+)-mobilizing phospholipase C, and Ca(2+)/calmodulin-dependent protein kinase II. Importantly, it requires interactions with the cytoplasmic sorting protein NHERF-1 (Na(+)/H(+) exchange regulatory factor-1) and N-ethyl-maleimide-sensitive factor-regulated exocytosis. In addition, this NGF-mediated mechanism is likely responsible for the emergence of functional DOPr induced by chronic opioids. Thus, NGF may function as a key molecular switch that redirects the sorting of intracellularly targeted DOPr to plasma membrane, resulting in new functional DOPr on central synapses under chronic opioid conditions.
Insights
Nerve growth factor (NGF) drives intracellular delta-opioid receptors (DOPr) to the cell surface in brainstem neurons. This process, crucial for receptor function, may explain how chronic opioids induce new functional receptors.
Area of Science:
- Neuroscience
- Cell Biology
- Molecular Biology
Background:
- G-protein-coupled receptors (GPCRs) are sorted intracellularly or to the plasma membrane, regulating signaling.
- Mechanisms for plasma membrane targeting of GPCRs, especially under pathological conditions, are poorly understood.
Purpose of the Study:
- To investigate the molecular mechanisms underlying the plasma membrane trafficking of intracellular delta-opioid receptors (DOPr).
- To identify the role of nerve growth factor (NGF) in regulating DOPr surface expression and function.
Main Methods:
- Utilized native brainstem neurons to study DOPr trafficking.
- Investigated signaling pathways including tyrosine receptor kinase A, phospholipase C, and Ca(2+)/calmodulin-dependent protein kinase II.
- Examined the involvement of NHERF-1 and N-ethyl-maleimide-sensitive factor in receptor sorting.
Main Results:
- NGF induces the translocation of intracellular DOPr to the surface membrane of central synaptic terminals.
- NGF-mediated DOPr trafficking involves specific signaling pathways and interaction with NHERF-1.
- This mechanism is implicated in the emergence of functional DOPr under chronic opioid conditions.
Conclusions:
- NGF acts as a molecular switch, redirecting intracellular DOPr to the plasma membrane.
- This NGF-driven process results in functional DOPr at central synapses, particularly under chronic opioid exposure.
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