Effect of a single psilocybin treatment on Fos protein expression in male rat brain.
Douglas Funk, Joseph Araujo, Malik Slassi, James Lanthier, Jason Atkinson, Daniel Feng, Winnie Lau, Anh D Lê, Guy A. Higgins
Neuroscience February 16, 2024 DOI: 10.1016/j.neuroscience.2024.01.001 (opens in new tab)
Study at a glance
AI-extracted from the abstract| Characteristics | Experimental study Peer reviewed |
|---|---|
| Population | Adult male Sprague-Dawley rats |
| Intervention | Psilocybin |
| Dose | 0.1-3 mg/kg SC |
| Topics | Psilocybin |
| Keywords | 5-ht2a C-fos Central amygdala Neurons Oligodendrocytes Psychedelics hallucinogens Entheogens Neuroscience brain research Neural activity Neurobiology Psychoactive compounds |
| Citations | 11 |
| Key findings | Psilocybin dose-dependently increased Fos expression most markedly in the central amygdala, and Fos was expressed in both neurons and oligodendrocytes. |
Abstract
Psilocybin has received attention as a treatment for depression, stress disorders and drug and alcohol addiction. To help determine the mechanisms underlying its therapeutic effects, here we examined acute effects of a range of behaviourally relevant psilocybin doses (0.1-3 mg/kg SC) on regional expression of Fos, the protein product of the immediate early gene, c-fos in brain areas involved in stress, reward and motivation in male rats. We also determined the cellular phenotypes activated by psilocybin, in a co-labeling analysis with NeuN, a marker of mature neurons, or Olig1, a marker of oligodendrocytes. In adult male Sprague-Dawley rats, psilocybin increased Fos expression dose dependently in several brain regions, including the frontal cortex, nucleus accumbens, central and basolateral amygdala and locus coeruleus. These effects were most marked in the central amygdala. Double labeling experiments showed that Fos was expressed in both neurons and oligodendrocytes. These results extend previous research by determining Fos expression in multiple brain areas at a wider psilocybin dose range, and the cellular phenotypes expressing Fos. The data also highlight the amygdala, especially the central nucleus, a key brain region involved in emotional processing and learning and interconnected with other brain areas involved in stress, reward and addiction, as a potentially important locus for the therapeutic effects of psilocybin. Overall, the present findings suggest that the central amygdala may be an important site through which the initial brain activation induced by psilocybin is translated into neuroplastic changes, locally and in other regions that underlie its extended therapeutic effects.