Axell Lins, Luciana Eiró-Quirino, Luana Vasconcelos de Souza, Daniella Rocha Bittencourt, Letícia Cerqueira Duarte, Luiz Fernando Duarte de Andrade Junior, Emile de Almeida Cardoso, Rômulo Augusto Feio Farias, Naoto da Cunha Hayasaki, Fabiano Welter da Silva, Heitor Quaresma Silva, Daniel Bernardo Lopes, Abraão Estevam Lopes, Moisés Hamoy
Ketamine enantiomers differ neurophysiologically, yet their specific influence on sensory cortical oscillations remains unclear. Characterizing the electrophysiological signatures of S-ketamine (KS) versus racemic ketamine (KSR) in the visual cortexa region highly sensitive to NMDA blockadecan improve understanding of enantiomer-specific neural modulation and anesthetic depth. This study compared the temporal dynamics of cortical oscillations induced by KS and KSR in rat visual cortices during dissociative anesthesia. Adult Wistar rats received KS (50 mg/kg), KSR (50 mg/kg), or saline. Visual cortex electrocorticographic (ECoG) recordings were obtained for 15 min, segmented into three phases. Power spectral density was calculated across delta to gamma bands (1-40 Hz), and linear power means were compared. KSR produced a deep, stable suppression of oscillatory activity across all frequency bands throughout the recording. Conversely, KS exhibited time-dependent modulation, with a pronounced late-phase increase in delta and theta power, indicating anesthetic superficialization. Furthermore, KS preserved relatively higher overall beta and gamma power, whereas KSR displayed a persistent high-beta elevation (24-28 Hz) typical of NMDA blockade. Ultimately, KSR maintains a stable suppressive pattern, while KS produces late-phase enhancement of slow rhythms. These distinct electrophysiological profiles highlight enantiomer-specific neural dynamics relevant for anesthetic choice and mechanistic modeling.