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Neural Dynamics in Primate Cortex during Exposure to Subanesthetic Concentrations of Nitrous Oxide.

Matthew S Willsey, Chrono S Nu, Samuel R Nason, Karen E Schroeder, Brianna C Hutchison, Elissa J Welle, Parag G Patil, George A Mashour, Cynthia A Chestek

eNeuro January 1, 2021 DOI: 10.1523/eneuro.0479-20.2021 via PubMed

Summary

AI-generated from the abstract

Inhaling 70% nitrous oxide (N2O) increases spiking rates and beta- and gamma-band power in the primary motor cortex of macaques while degrading the representation of somatosensory information. The proportion of correctly classified finger touches dropped from 0.50 to 0.34 during N2O inhalation, indicating impaired information transfer. The increased firing rate was not correlated with changes in neuronal tuning, suggesting a dissociation between overall activity and sensory processing.

Study at a glance

Characteristics Observational cohort Peer reviewed
Sample size 2
Population Two male rhesus macaques
Intervention Nitrous oxide
Dose 70%
Keywords Nmda antagonist Anesthesia Consciousness Nitrous oxide Sensorimotor
Key finding Subanesthetic nitrous oxide degrades somatosensory information representation in primary motor cortex despite increasing overall spiking rates.

Abstract

Nitrous oxide (N2O) is a hypnotic gas with antidepressant and psychedelic properties at subanesthetic concentrations. Despite long-standing clinical use, there is insufficient understanding of its effect on neural dynamics and cortical processing, which is important for mechanistic understanding of its therapeutic effects. We administered subanesthetic (70%), inhaled N2O and studied the dynamic changes of spiking rate, spectral content, and somatosensory information representation in primary motor cortex (M1) in two male rhesus macaques implanted with Utah microelectrode arrays in the hand area of M1. The average sorted multiunit spiking rate in M1 increased from 8.1 ± 0.99 to 10.6 ± 1.3 Hz in Monkey W (p < 0.001) and from 5.6 ± 0.87 to 7.0 ± 1.1 Hz in Monkey N (p = 0.003). Power spectral densities increased in beta- and gamma-band power. To evaluate somatosensory content in M1 as a surrogate of information transfer, fingers were lightly brushed and classified using a naive Bayes classifier. In both monkeys, the proportion of correctly classified fingers dropped from 0.50 ± 0.06 before N2O inhalation to 0.34 ± 0.03 during N2O inhalation (p = 0.018), although some fingers continued to be correctly classified (p = 0.005). The decrease in correct classifications corresponded to decreased modulation depth for the population (p = 0.005) and fewer modulated units (p = 0.046). However, the increased single-unit firing rate was not correlated with its modulation depth (R2 < 0.001, p = 0.93). These data suggest that N2O degrades information transfer, although no clear relationship was found between neuronal tuning and N2O-induced changes in firing rate.

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