Docking large libraries of molecules against unrefined AlphaFold2 (AF2) models of the σ2 and serotonin 2A (5-HT2A) receptors produced hit rates and affinities as high as those obtained by docking against experimental structures. These results were achieved despite differences in orthosteric residue conformations between the AF2 models and the experimental structures. A cryo–electron microscopy structure of one potent 5-HT2A ligand identified from AF2 docking showed residue accommodations similar to the AF2 prediction. AF2 models may sample low-energy conformations that differ from experimental structures but remain useful for ligand discovery, extending the reach of structure-based drug design.
Activation of mGluR2, the primary presynaptic autoreceptor for glutamate in the brain, attenuates the behavioral and electrophysiological effects of psychedelics. The mechanisms behind this are debated, with two competing hypotheses: direct actions via mGluR2/5-HT2A heterodimers, or presynaptic inhibition of glutamate release. In mice expressing tagged receptors, mGluR2 agonist pretreatment reduced the head twitch response induced by the psychedelic DOI. Multiple orthogonal in vivo and in vitro approaches found no evidence for receptor colocalization or oligomerization under basal or agonist-exposed conditions, nor for mGluR2-mediated modulation of 5-HT2A ligand binding. The findings support models where mGluR2 signaling modulates 5-HT2A receptor activity in layer V pyramidal neurons rather than requiring mGluR2/5-HT2A multimers.