DOI: 10.1021/acschemneuro.6c00138 ISSN: 1948-7193

Role of β-Arrestin2 Signaling in Neuropharmacological Effects of Psychedelic Drugs

Aurelija Ippolito, Agnese Tiranti, Shaun Hurley, Gary Gilmour, Grant Churchill, Trevor Sharp

Abstract

Current research into the actions of psychedelic drugs is focused on 5-HT2A receptor-coupled signaling pathways, particularly β-arrestin2 signaling. Here, we investigated the involvement of β-arrestin2 in psychedelic drug-induced mouse markers of hallucinogenic effects, molecular plasticity, and structural plasticity; specifically, the head-twitch response, cortical expression of plasticity-related genes (cFos, Egr1, Egr2, and Arc), and dendritogenesis (primary cortical neuron cultures), respectively. Psilocin-induced head-twitches, plasticity gene expression, and dendritogenesis were all blocked by the 5-HT2A receptor antagonist MDL-100,907. The head-twitch response to psilocin was not different between wildtype and β-arrestin2 knockout (KO) mice, and the head-twitch responses to 2,5-dimethoxy-4-iodoamphetamine (DOI) and lysergic acid diethylamide (LSD) were similarly unaffected by β-arrestin2 KO. Psilocin-evoked gene expression showed a trend to be less in β-arrestin2 KO compared to wildtype mice, but the gene expression response to DOI was clearly not altered by β-arrestin2 KO. Finally, psilocin-induced dendritogenesis was attenuated in β-arrestin2 KO versus wild-type cultured neurons, and similar findings were obtained with DOI. In summary, the current study found no convincing evidence to support a role for β-arrestin2 signaling in either the head-twitch or plasticity-related gene responses to the psychedelic drugs tested. However, our data suggest a role for the β-arrestin2 pathway in psychedelic drug-evoked dendritogenesis of cultured neurons. Thus, the β-arrestin2 pathway unlikely mediates the hallucinogenic effects of psychedelic drugs but may contribute to neural plasticity changes in certain models.

More from our Archive