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Thalamic 5-HT2A receptor activation reduces GABA uptake, increases tonic GABAA inhibition and induces absence seizures in Wistar rats.

Vincenzo Crunelli, Tatiana P Morais, William M Connelly, Giulia Salamanca, Sandra H Vaz, Ana M. Sebastião, Cristiano Bombardi, Giuseppe Di Giovanni

Neuropharmacology November 1, 2026 DOI: 10.1016/j.neuropharm.2026.111073 (opens in new tab) via PubMed

Summary

AI-generated from the abstract

Serotonin 5-HT2A receptors (5-HT2ARs) in the thalamus increase in expression during development, shifting from interneurons to thalamocortical neurons in the ventrobasal region. Activating these receptors with the agonist TCB-2 reduces GABA uptake and enhances tonic GABAA currents in ventrobasal thalamocortical neurons, an effect absent in δ-subunit GABAA receptor knockout mice and independent of postsynaptic signaling. Bilateral injection of TCB-2 into the ventrobasal thalamus of freely moving rats induces spike-and-wave discharges and behavioral arrest, which are blocked by ethosuximide, indicating absence seizures. The findings suggest that 5-HT2AR signaling can shape thalamocortical dynamics and increase susceptibility to aberrant rhythmic activity.

Study at a glance

Characteristics Experimental study Peer reviewed
Population Wistar rats
Intervention ethosuximide
Keywords Absence epilepsy Nucleus reticularis thalami Selective serotonin ligands Tonic gabaa current Ventrobasal thalamus
Key finding Activation of thalamic 5-HT2ARs enhances tonic GABAA currents and induces absence seizure-like activity in rats.

Abstract

Renewed interest in psychedelic therapeutics has brought serotonin 5-HT2A receptors (5-HT2ARs) back into focus. Given the role of the thalamus in sensory integration and network synchronization, we examined the expression, developmental regulation, and functional impact of thalamic 5-HT2ARs, with particular emphasis on their interaction with extrasynaptic GABAA receptors and the generation of aberrant thalamocortical rhythms in Wistar rats. Immunofluorescence revealed a developmental increase of 5-HT2AR expression in both the reticular thalamic nucleus (NRT) and ventrobasal (VB) thalamus, that is accompanied by a shift in VB expression from GABAergic interneurons in juveniles to thalamocortical (TC) neurons in adults. Astrocyte density increased in both regions, more prominently in the NRT than in the VB, with approximately half of astrocytes expressing 5-HT2ARs regardless of age or region. Activation of 5-HT2ARs with the potent agonist TCB-2 reduced thalamic GABA uptake, an effect that was occluded in the presence of GAT1 inhibitor NO711. Patch-clamp recordings showed that TCB-2 enhanced tonic GABAA currents in VB TC neurons. This effect was absent in δ-subunit KO mice and was unaffected by blockade of postsynaptic G-protein signaling or phospholipase C pathways in TC neurons, suggesting that it is not dependent on postsynaptic signaling mechanisms. EEG recordings in freely moving rats showed that bilateral microinjection of TCB-2 into the VB induced spike-and-wave discharges accompanied by behavioral arrest that were blocked by ethosuximide, indicating that they were absence seizures. In summary, these findings support a mechanism, through which serotonergic signaling via 5-HT2ARs can shape thalamocortical network dynamics and increase susceptibility to aberrant rhythmic activity, which could potentially occur under conditions of altered serotonergic tone.

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