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Antinociceptive and hypothermic effects of Salvinorin A are abolished in a novel strain of kappa-opioid receptor-1 knockout mice.

Michael A Ansonoff, Jiwen Zhang, Traci Czyzyk, Richard B Rothman, Jeremy Stewart, Heng Xu, Jordan Zjwiony, Daniel J Siebert, Feng Yang, Bryan L Roth, John E Pintar

The Journal of pharmacology and experimental therapeutics August 1, 2006 DOI: 10.1124/jpet.106.101998 via PubMed

Summary

AI-generated from the abstract

Salvinorin A, the active component of the hallucinogenic plant Salvia divinorum, produces pain relief (antinociception) and lowers body temperature in mice by activating the kappa-opioid receptor. These effects were observed after injection of salvinorin A or a similar compound, salvinorinyl-2-propionate, into the brain of normal mice, but not in mice genetically lacking the kappa-opioid receptor. Salvinorin A showed high affinity specifically for the kappa-1 subclass of opioid receptors. In contrast, salvinorin B, an inactive derivative, had no effect on pain or body temperature. The findings confirm that salvinorin A acts through the kappa-opioid receptor to produce its behavioral effects.

Study at a glance

Characteristics Experimental study Peer reviewed
Population Wild-type mice and kappa-opioid receptor knockout mice
Interventions Salvinorin A salvinorinyl-2-propionate salvinorin B
Dose 1 to 30 microg
Topics Salvia divinorum
Keywords Analgesia Kappa opioid receptor Hypothermia
Citations 101
Key finding Salvinorin A and salvinorinyl-2-propionate produce antinociception and hypothermia in wild-type mice but not in kappa-opioid receptor knockout mice, demonstrating that these effects require the kappa-opioid receptor.

Abstract

Salvia divinorum is a natural occurring hallucinogen that is traditionally used by the Mazatec Indians of central Mexico. The diterpene salvinorin A was identified as an active component of S. divinorum over 20 years ago, but only recently has biochemical screening indicated that a molecular target of salvinorin A in vitro is the kappa-opioid receptor. We have examined whether salvinorin A, the C2-substituted derivative salvinorinyl-2-propionate, and salvinorin B can act as kappa-opioid receptor agonists in vivo. We found that following intracerebroventricular injection over a dose range of 1 to 30 microg of both salvinorin A and salvinorinyl-2-propionate produces antinociception in wild-type mice but not in a novel strain of kappa-opioid receptor knockout mice. Moreover, both salvinorin A and salvinorinyl-2-propionate reduce rectal body temperature, similar to conventional kappa-opioid receptor agonists, in a genotype-dependent manner. In addition, we determined that salvinorin A has high affinity for kappa 1- but not kappa 2-opioid receptors, demonstrating selectivity for this receptor subclass. Finally, treatment over the same dose range with salvinorin B, which is inactive in vitro, produced neither antinociceptive nor hypothermic effects in wild-type mice. These data demonstrate that salvinorin A is the active component of S. divinorum, selective for kappa(1)-opioid receptors, and that salvinorin A and specific structurally related analogs produce behavioral effects that require the kappa-opioid receptor.

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