4-OH-DiPT, a fast-acting and shorter-lasting derivative of psilocybin, reduces learned fear responses in mice by enhancing inhibitory signaling in the brain. It activates 5-HT2A receptors on interneurons in the basolateral amygdala, increasing GABAergic inhibition of principal neurons. In female mice, 4-OH-DiPT before extinction training reduced freezing to conditioned cues and later decreased avoidance behaviors in several tests, while male mice showed no significant differences. The compound acts as a near full agonist at 5-HT2A receptors and has comparable activity at mouse and human 5-HT2A/2B/2C receptors. These findings suggest a potential mechanism for suppressing learned fear.
High doses of cannabinoids like THC produce anxiety, but the underlying brain mechanisms were unclear. This study in mice identifies a specific neural circuit—projections from the anterior cingulate cortex to the dorsomedial striatum—where cannabinoid signaling promotes anxiety and aversion. Activating this circuit reduces anxiety, whereas cannabinoids suppress its activity via CB1 receptors. Deleting CB1 receptors specifically in this circuit reduced both innate anxiety and conditioned place aversion to THC. These findings reveal a circuit-level mechanism for cannabinoid-induced anxiety.