Cell experiments identify (+)-CBD as a CB2 agonist, not a human benefit

(+)-Trans-Cannabidiol Is an Agonist at Human CB2 Receptors.

Pharmacology research & perspectives • • Highly Relevant
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AI Summary

This study asked whether the less commonly discussed (+)-CBD activates human cannabinoid receptors. Researchers tested it in cultured cells engineered to express human CB1 or CB2 receptors, using a membrane-potential assay; this was a laboratory cell study, not a trial in people. The main finding was that (+)-CBD produced a concentration-dependent response in CB2-expressing cells, reaching 90% of the response to the reference agonist CP55940. The response was blocked by pertussis toxin and by the CB2 antagonist AM630, supporting the interpretation that (+)-CBD acted as a CB2 agonist in this assay.

At CB1, (+)-CBD showed low potency and low efficacy, and at high concentrations it also inhibited effects mediated by somatostatin receptors. It had no membrane-potential effect in cells that did not express the cannabinoid receptors. The authors’ computer modeling suggested a possible explanation for the CB2 activity: (+)-CBD, unlike (-)-CBD, formed a predicted hydrogen bond with a receptor residue important for activation. Because the work used engineered cells and modeling, it cannot establish effects or safety in people, or whether CB2 activation would be useful for any condition. This is an abstract-based summary; the abstract does not report human outcomes.

💡 Key Findings

1
In engineered cells expressing human CB2, (+)-CBD produced a concentration-dependent response reaching 90% of the reference agonist response.
High
95%
2
The CB2 response was blocked by pertussis toxin and competitively inhibited by the CB2 antagonist AM630, supporting CB2-mediated agonist activity in this cell assay.
High
95%
3
At CB1, (+)-CBD was a low-potency, low-efficacy agonist; it also inhibited somatostatin-receptor effects at high concentrations.
High
90%
4
The study used engineered cells and computational modeling, so it cannot establish effects, safety, or therapeutic usefulness in people.
High
99%

📄 Original Abstract

(-)-trans-Cannabidiol ((-)-CBD) is a principal phytocannabinoid from Cannabis sativa. (-)-CBD has complex pharmacology but is a relatively weak inhibitor of CB1 and CB2 receptor signaling. Cannabidiol has two chiral centres and thus four stereoisomers. (+)-trans-CBD ((+)-CBD) has a higher affinity than (-)-CBD at CB1 and CB2, but its pharmacodynamic effects at these receptors are incompletely described. We examined the activity of (+)-CBD at human CB1 and CB2 receptors using a fluorescence-based assay of membrane potential in AtT20 cells stably expressing CB1 or CB2 receptors. (+)-CBD produced a rapid, concentration-dependent hyperpolarization in CB2-expressing cells (pEC50 6.63 ± 0.08) with a maximal effect 90% of the response to CP55940. The CB2 response was blocked by pertussis toxin pretreatment and competitively inhibited by the CB2 antagonist AM630 (Schild slope 1.1 ± 0.1). (+)-CBD was a low-efficacy, low-potency CB1 agonist and inhibited somatostatin-receptor effects at high concentrations (10-30 μM). (+)-CBD had no effect on the membrane potential of AtT20 wild-type cells. In silico modeling of ligand interactions with CB2 indicated that (+)-CBD but not (-)-CBD formed an H-bond with Ser285, a residue crucial for agonist activation of CB2. Our data suggests (+)-CBD acted as a CB2 agonist via the orthosteric binding site on the receptor. Synthetic CBD, including (+)-CBD, has previously been administered in clinical trials, presumably without consideration of its potential CB2 agonist activity. Given the relative safety of (-)-CBD in people, (+)-CBD may be a useful drug to explore CB2-sensitive disease states.

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