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Distinct domains of the CB1 cannabinoid receptor mediate desensitization and internalization
1Department of Pharmacology, University of Washington, Seattle, Washington 98195-6540, USA.
Abstract:
Desensitization of cannabinoid receptor signaling by a G-protein coupled receptor kinase (GRK) was examined using the Xenopus oocyte expression system. Application of a CB1 agonist, WIN 55,212-2, evoked a concentration-dependent increase in K+ conductance (Kir3) in oocytes coexpressing rat CB1 with the G-protein-gated, inwardly rectifying K+ channels Kir3.1 and Kir3.4. Desensitization was slight during continuous agonist application in the absence of GRK and arrestin. However, coexpression of GRK3 and beta-arrestin 2 (beta-arr2) caused profound homologous CB1 receptor desensitization, supporting the hypothesis that GRK3 and beta-arr2 effectively produce CB1 receptor desensitization. To identify the regions of the CB1 receptor responsible for GRK3- and beta-arr2-mediated desensitization, we constructed several CB1 receptor mutants. Truncation of the C-terminal tail of CB1 receptor at residue 418 (Delta418) almost completely abolished desensitization but did not affect agonist activation of Kir3. In contrast, truncation at residues 439 and 460 did not significantly affect GRK3- and beta-arr2-dependent desensitization. A deletion mutant (Delta418-439) did not desensitize, indicating that residues within this region are important for GRK3- and beta-arr2-mediated desensitization. Phosphorylation in this region was likely involved in desensitization, because mutation of either of two putative phosphorylation sites (S426A or S430A) significantly attenuated desensitization. CB1 receptors rapidly internalize after activation by agonist. Phosphorylation of S426 or S430 was not necessary for internalization, because the S426A/S430A CB1 mutant internalized when stably expressed in AtT20 cells. These studies establish that CB1 desensitization can be regulated by a GRK and that different receptor domains are involved in GRK- and beta-arrestin-dependent desensitization and CB1 internalization.
Insights
G-protein coupled receptor kinase 3 (GRK3) and beta-arrestin 2 (beta-arr2) mediate cannabinoid receptor 1 (CB1) desensitization. Specific C-terminal residues are crucial for this process, while distinct mechanisms regulate receptor internalization.
Area of Science:
- Neuroscience
- Molecular Biology
- Pharmacology
Background:
- Cannabinoid receptor 1 (CB1) signaling is crucial for various physiological processes.
- Receptor desensitization is a key mechanism regulating G-protein coupled receptor (GPCR) signaling.
- The role of G-protein coupled receptor kinases (GRKs) and arrestins in CB1 desensitization requires further elucidation.
Purpose of the Study:
- To investigate the involvement of GRKs and arrestins in CB1 receptor desensitization.
- To identify the specific regions and residues of the CB1 receptor responsible for GRK- and arrestin-mediated desensitization.
- To differentiate the mechanisms of CB1 desensitization from its internalization.
Main Methods:
- Xenopus oocyte expression system to study CB1 receptor signaling.
- Coexpression of CB1 receptor with GRK3 and beta-arrestin 2 (beta-arr2).
- Site-directed mutagenesis of the CB1 receptor to identify key domains and phosphorylation sites.
Main Results:
- GRK3 and beta-arr2 significantly enhanced CB1 receptor desensitization in a homologous manner.
- Truncation of the CB1 receptor C-terminal tail at residue 418 abolished desensitization, while truncations at 439 and 460 had no significant effect.
- Mutating phosphorylation sites S426A or S430A attenuated desensitization, indicating their involvement.
- CB1 receptor internalization occurred independently of S426 and S430 phosphorylation.
Conclusions:
- CB1 receptor desensitization is effectively mediated by GRK3 and beta-arr2.
- Specific residues within the C-terminal tail of the CB1 receptor are critical for GRK/beta-arrestin-dependent desensitization.
- CB1 receptor desensitization and internalization are regulated by distinct molecular mechanisms.