Kappa opioid mediation of cannabinoid effects of the potent hallucinogen, salvinorin A, in rodents.
D Matthew Walentiny, Robert E Vann, Jonathan A Warner, Lindsey S King, Herbert H Seltzman, Hernán A Navarro, Charles E Twine, Brian F Thomas, Anne F Gilliam, Brian P Gilmour, F Ivy Carroll, Jenny L Wiley
Psychopharmacology June 1, 2010 DOI: 10.1007/s00213-010-1827-6 via PubMed
Summary
AI-generated from the abstractSalvinorin A, the active compound in the hallucinogenic herb Salvia divinorum, does not directly interact with the endocannabinoid system. Although some earlier studies suggested a link, this work shows that salvinorin A does not bind to or activate CB1 cannabinoid receptors. In laboratory tests, it caused reduced movement and pain relief, effects blocked by a kappa-opioid receptor antagonist but not by a CB1 antagonist. Salvinorin A also did not substitute for THC in drug discrimination tests. The results indicate that similarities between salvinorin A and cannabinoid effects stem from its activation of kappa-opioid receptors, and previous findings of CB1 antagonist reversal may be due to that antagonist also dampening kappa-opioid receptor activation.
Study at a glance
| Characteristics | Systematic examination with in vitro and in vivo procedures Peer reviewed |
|---|---|
| Interventions | Salvinorin A JDTic rimonabant U69 593 |
| Topics | Salvia divinorum |
| Keywords | Potent hallucinogen Kappa-opioid receptors Kappa-opioid pathway Pharmacology |
| Citations | 49 |
| Key finding | Salvinorin A does not directly act on the endocannabinoid system; its effects are mediated by kappa-opioid receptor activation. |
Abstract
Salvinorin A, the primary psychoactive derivative of the hallucinogenic herb Salvia divinorum, is a potent and highly selective kappa-opioid receptor (KOR) agonist. Several recent studies, however, have suggested endocannabinoid system mediation of some of its effects. This study represents a systematic examination of this hypothesis. Salvinorin A was isolated from S. divinorum and was evaluated in a battery of in vitro and in vivo procedures designed to detect cannabinoid activity, including CB(1) receptor radioligand and [(35)S]GTPgammaS binding, calcium flux assay, in vivo cannabinoid screening tests, and drug discrimination. Salvinorin A did not bind to nor activate CB(1) receptors. In vivo salvinorin A produced pronounced hypolocomotion and antinociception (and to a lesser extent, hypothermia). These effects were blocked by the selective KOR antagonist, JDTic, but not by the CB(1) receptor antagonist rimonabant. Interestingly, however, rimonabant attenuated KOR activation stimulated by U69,593 in a [(35)S]GTPgammaS assay. Salvinorin A did not substitute for Delta(9)-tetrahydrocannabinol (THC) in mice trained to discriminate THC. These findings suggest that similarities in the pharmacological effects of salvinorin A and those of cannabinoids are mediated by its activation of KOR rather than by any direct action of salvinorin A on the endocannabinoid system. Further, the results suggest that rimonabant reversal of salvinorin A effects in previous studies may be explained in part by rimonabant attenuation of KOR activation.