Limbic System Response to Psilocybin and Ketamine Administration in Rats: A Neurochemical and Behavioral Study
Adam Wojtas, Agnieszka Bysiek, Marzena Maćkowiak, Krystyna Gołembiowska, Agnieszka Wawrzczak‐bargieła
International Journal of Molecular Sciences December 20, 2023 DOI: 10.3390/ijms25010100 via OpenAlex
Summary
AI-generated from the abstractDepression involves reduced volume of the hippocampus and amygdala and enlargement of the nucleus accumbens. Ketamine, a fast-acting antidepressant, reverses these volume reductions. This study tested whether the psychedelic psilocybin similarly affects limbic system neurotransmission in rats. Using microdialysis, both psilocybin and ketamine increased dopamine and serotonin release in the nucleus accumbens, influenced glutamate and GABA release in the nucleus accumbens, hippocampus, and amygdala, and raised acetylcholine levels in the hippocampus. Long-lasting changes in D2, 5-HT1A, and 5-HT2A receptor density occurred in the nucleus accumbens and hippocampus. Psilocybin showed a marked anxiolytic effect acutely and 24 hours later in the open field test, providing a neurobiological basis for its antidepressant and anti-stress effects.
Study at a glance
| Characteristics | Animal study Peer reviewed |
|---|---|
| Population | Naive rats |
| Interventions | Psilocybin Ketamine |
| Topics | Psilocybin |
| Keywords | Limbic system Nucleus accumbens Amygdala Hippocampus |
| Citations | 16 |
| Key finding | Psilocybin and ketamine both increased dopamine and serotonin release in the nucleus accumbens and altered glutamate, GABA, and acetylcholine levels in limbic regions of rats, with psilocybin also producing anxiolytic effects. |
Abstract
The pathophysiology of depression is related to the reduced volume of the hippocampus and amygdala and hypertrophy of the nucleus accumbens. The mechanism of these changes is not well understood; however, clinical studies have shown that the administration of the fast-acting antidepressant ketamine reversed the decrease in hippocampus and amygdala volume in depressed patients, and the magnitude of this effect correlated with the reduction in depressive symptoms. In the present study, we attempted to find out whether the psychedelic substance psilocybin affects neurotransmission in the limbic system in comparison to ketamine. Psilocybin and ketamine increased the release of dopamine (DA) and serotonin (5-HT) in the nucleus accumbens of naive rats as demonstrated using microdialysis. Both drugs influenced glutamate and GABA release in the nucleus accumbens, hippocampus and amygdala and increased ACh levels in the hippocampus. The changes in D2, 5-HT1A and 5-HT2A receptor density in the nucleus accumbens and hippocampus were observed as a long-lasting effect. A marked anxiolytic effect of psilocybin in the acute phase and 24 h post-treatment was shown in the open field test. These data provide the neurobiological background for psilocybin’s effect on stress, anxiety and structural changes in the limbic system and translate into the antidepressant effect of psilocybin in depressed patients.