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Published on: May 26, 2017
Rapid CB1 cannabinoid receptor desensitization defines the time course of ERK1/2 MAP kinase signaling
Tanya L Daigle1, Christopher S Kearn, Ken Mackie
1Department of Physiology and Biophysics, University of Washington, School of Medicine, Seattle, WA 98195, USA.
Abstract:
Molecular mechanisms regulating the development of physiological and behavioral tolerance to cannabinoids are not well understood. Two cellular correlates implicated in the development and maintenance of tolerance are CB(1) cannabinoid receptor internalization and uncoupling of receptor signal transduction. Both processes have been proposed as mediators of tolerance because of observations that chronic Delta(9)-tetrahydrocannabinol (THC) treatment causes both region-specific decreases in CB(1) receptors and G-protein coupling in the brain. To determine the balance of these two processes in regulating CB(1) receptor signaling during sustained receptor stimulation, we evaluated the parameters affecting ERK1/2 MAP kinase activity in HEK293 cells stably expressing CB(1) receptors. CB(1) receptor stimulation by the potent CB(1) receptor agonist, CP 55,940 transiently activated ERK1/2. To determine if CB(1) receptor desensitization or internalization was responsible for the transient nature of ERK1/2 activation, we evaluated ERK1/2 phosphorylation in HEK293 cells expressing a desensitization-deficient CB(1) receptor (S426A/S430A CB(1)). Here, the duration of S426A/S430A CB(1) receptor-mediated activation of ERK1/2 was markedly prolonged relative to wild-type receptors, and was dynamically reversed by SR141716A. Interestingly, the S426A/S430A CB(1) receptor was still able to recruit betaarrestin-2, a key mediator of receptor desensitization, to the cell surface following agonist activation. In contrast to a central role for desensitization, pharmacological and genetic approaches suggested CB(1) receptor internalization is dispensable in the transient activation of ERK1/2. This study indicates that the duration of ERK1/2 activation by CB(1) receptors is regulated by receptor desensitization and underscores the importance of G-protein uncoupling in the regulation of CB(1) receptor signaling.
Insights
Cannabinoid tolerance involves CB1 receptor desensitization, not internalization, affecting ERK1/2 signaling. This research clarifies how sustained receptor stimulation impacts molecular pathways, crucial for understanding cannabinoid tolerance.
Area of Science:
- Neuroscience
- Molecular Pharmacology
- Cell Biology
Background:
- Cannabinoid tolerance mechanisms, particularly involving CB1 receptors, remain unclear.
- CB1 receptor internalization and G-protein uncoupling are proposed mediators of tolerance.
- Chronic THC exposure reduces brain CB1 receptors and G-protein coupling.
Purpose of the Study:
- To investigate the roles of CB1 receptor desensitization and internalization in regulating ERK1/2 MAP kinase activity.
- To determine the balance between these processes in sustained CB1 receptor signaling.
Main Methods:
- Utilized HEK293 cells stably expressing wild-type and desensitization-deficient (S426A/S430A) CB1 receptors.
- Assessed ERK1/2 MAP kinase activity following stimulation with a CB1 receptor agonist (CP 55,940).
- Employed pharmacological and genetic approaches to investigate receptor internalization and desensitization.
Main Results:
- CB1 receptor stimulation transiently activated ERK1/2.
- A desensitization-deficient CB1 receptor mutant (S426A/S430A) showed prolonged ERK1/2 activation.
- CB1 receptor internalization was found to be dispensable for transient ERK1/2 activation.
- Receptor desensitization, not internalization, regulates the duration of ERK1/2 activation.
Conclusions:
- Receptor desensitization is a key regulator of CB1 receptor-mediated ERK1/2 activation duration.
- G-protein uncoupling plays a significant role in regulating CB1 receptor signaling.
- Findings highlight the importance of desensitization in cannabinoid tolerance mechanisms.
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