Psychedelic neuroplasticity of cortical neurons lacking 5-HT2A receptors
Tyler G. Ekins, Chloe Rybicki-Kler, Tao Deng, Isla A. W. Brooks, Izabela Jedrasiak‐cape, Ethan Donoho, Omar J. Ahmed
Molecular Psychiatry March 1, 2026 DOI: 10.1038/s41380-025-03257-w (opens in new tab)
Study at a glance
AI-extracted from the abstract| Characteristics | Experimental study Peer reviewed |
|---|---|
| Population | Mice |
| Intervention | classical psychedelic drugs |
| Topics | Neuroplasticity Serotonin |
| Citations | 9 |
| Key findings | Psychedelics induce long-lasting synaptic enhancement in the retrosplenial cortex via presynaptic serotonin 2A receptors on anterior thalamic inputs, despite the absence of postsynaptic 5-HT_2A receptors. |
Abstract
Classical psychedelic drugs show promise as a treatment for major depressive disorder and related psychiatric disorders. This therapeutic efficacy stems from long-lasting psychedelic-induced neuroplasticity onto prefrontal cortical neurons and is thought to require the postsynaptic expression of serotonin 2A receptors (5-HT_2AR). However, other cortical regions such as the granular retrosplenial cortex (RSG) – important for memory, spatial orientation, fear extinction, and imagining oneself in the future, but impaired in Alzheimer’s disease – lack 5-HT_2AR and are thus considered unlikely to benefit from psychedelic therapy. Here, we show that RSG pyramidal cells lacking postsynaptic 5-HT_2A receptors still undergo long-lasting psychedelic-induced synaptic enhancement. A newly engineered CRISPR-Cas-based conditional knockout mouse line reveals that this form of psychedelic-induced retrosplenial plasticity requires presynaptic 5-HT_2A receptors expressed on anterior thalamic axonal inputs to RSG. These results highlight a broader psychedelic therapeutic utility than currently appreciated, suggesting potential for augmenting RSG circuit function in Alzheimer’s disease, post-traumatic stress disorder, and other neuropsychiatric conditions, despite the lack of postsynaptic 5-HT_2A receptors.