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The serotonin 1B receptor is required for some of the behavioral effects of psilocybin in mice.

Sixtine Fleury, Katherine M Nautiyal

Molecular psychiatry May 1, 2026 DOI: 10.1038/s41380-025-03387-1 via PubMed

Summary

AI-generated from the abstract

Psilocybin's persisting antidepressant-like effects in mice involve not only the serotonin 2A receptor but also the serotonin 1B receptor (5-HT1BR). Mice lacking 5-HT1BR showed altered brain-wide neural activity after psilocybin, measured by c-Fos expression in emotion- and cognition-related regions such as the amygdala. While the acute head twitch response was unaffected, 5-HT1BR absence reduced psilocybin-induced hypolocomotion. Longer-term effects on anhedonia and anxiety-like behavior depended on 5-HT1BR, with influences from sex and stress. Network analysis identified circuits through which 5-HT1BR may modulate psilocybin's effects. The findings suggest 5-HT1BR contributes to psilocybin's enduring antidepressant-like actions in mice.

Study at a glance

Characteristics Experimental study Peer reviewed
Population Mice
Intervention Psilocybin
Citations 2
Key finding The serotonin 1B receptor influences brain-wide neural changes following psilocybin administration and may contribute to its enduring antidepressant-like effects in mice.

Abstract

Recent studies highlight the promising use of psychedelic therapies for psychiatric disorders, including depression. The persisting clinical effects of psychedelics such as psilocybin are commonly attributed to activation of the serotonin 2A receptor (5-HT2AR) based on its role in the acute hallucinatory effects. However, the active metabolite of psilocybin binds to many serotonin receptor subtypes, including the serotonin 1B receptor (5-HT1BR). Given the known role of 5-HT1BR in mediating depressive phenotypes and promoting neural plasticity, we hypothesized that it mediates the effects of psilocybin on neural activity and behavior. We first examined the acute neural response to psilocybin in mice lacking 5-HT1BR. We found that 5-HT1BR expression influenced brain-wide activity following psilocybin administration, measured by differences in the patterns of the immediate early gene c-Fos, across regions involved in emotional processing and cognitive function, including the amygdala and other subcortical limbic structures. Functionally, we demonstrated that 5-HT1BR mediates some of the acute and persisting behavioral effects of psilocybin. Although there was no effect of 5-HT1BR expression on the acute head twitch response, mice lacking 5-HT1BRs had attenuated hypolocomotion to psilocybin. We also measured the persisting effects of psilocybin on anhedonia and anxiety-like behavior using transgenic and pharmacological 5-HT1BR loss-of-function models. Although there were effects of sex and stress paradigms, we found that 5-HT1B is involved in mediating some of the longer-lasting behavioral responses to psilocybin. Finally, using a network analysis, we identified neural circuits through which 5-H1BR may modulate the response to psilocybin. Our findings suggest that the 5-HT1BR influences brain-wide neural changes following psilocybin administration and may contribute to its enduring antidepressant-like effects in mice.

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