Decreased dendritic spine density in the cortex is a hallmark of several neuropsychiatric diseases, and the ability to promote cortical neuron growth has been hypothesized to underlie the rapid and sustained therapeutic effects of psychedelics. Activation of 5-HT2ARs is essential for psychedelic-induced cortical plasticity, but it is unclear why some 5-HT2AR agonists promote neuroplasticity while others do not. Using molecular and genetic tools, the authors demonstrate that intracellular 5-HT2ARs mediate the plasticity-promoting properties of psychedelics, explaining why serotonin does not engage similar plasticity mechanisms. This work emphasizes location bias in 5-HT2AR signaling, identifies intracellular 5-HT2ARs as a therapeutic target, and raises the possibility that serotonin might not be the endogenous ligand for intracellular 5-HT2ARs in the cortex.
Activation of serotonin 2A receptors (5-HT2ARs) is essential for tryptamine-based psychedelics to produce antidepressant-like effects in rodents. While hallucinogenic properties are generally attributed to 5-HT2AR activation, it was unclear whether these receptors also mediate antidepressant effects, especially because some nonhallucinogenic analogues show antidepressant-like properties. Using pharmacological and genetic tools, the authors demonstrate that 5-HT2AR activation is required for the antidepressant-like effects of tryptamine psychedelics, suggesting that hallucinogenic and therapeutic effects can arise through the same receptor.
Nonhallucinogenic psychoplastogens like tabernanthalog (TBG) promote cortical neuroplasticity through the same biochemical pathway as classic psychedelics—involving 5-HT2A, TrkB, mTOR, and AMPA receptor activation—but without inducing an immediate glutamate burst or immediate early gene activation. TBG-induced cortical spinogenesis is required for its sustained antidepressant-like behavioral effect in rodents. These findings clarify how certain psychoplastogens can produce neuroplasticity without hallucinogenic effects, challenging assumptions that glutamate burst and IEG activation are necessary for psychedelic-induced neuroplasticity.