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Substance specific EEG patterns in mice undergoing slow anesthesia induction.

David P Obert, David Killing, Tom Happe, Philipp Tamas, Alp Altunkaya, Srdjan Z Dragovic, Matthias Kreuzer, Gerhard Schneider, Thomas Fenzl

BMC anesthesiology May 3, 2024 DOI: 10.1186/s12871-024-02552-3 via PubMed

Summary

AI-generated from the abstract

Mice anesthetized with sevoflurane, propofol, ketamine, or dexmedetomidine show substance-specific changes in brain wave patterns recorded from electrodes on the cortex. Sevoflurane and propofol decreased theta/alpha band power and increased beta/gamma power around loss of righting reflex. Dexmedetomidine shifted activity toward lower frequencies, increasing delta waves. Ketamine produced stronger high-frequency activity. These patterns partly matched those seen in humans but differed notably in low frequencies. The findings highlight both the usefulness and limitations of mouse models for studying anesthesia-induced unconsciousness.

Study at a glance

Characteristics Observational study Peer reviewed
Sample size 44
Population Mice
Interventions Sevoflurane Propofol Ketamine Dexmedetomidine
Topics Ketamine
Keywords Dexmedetomidine EEG Murine model Propofol
Citations 5
Key finding Each anesthetic produced distinct EEG spectral changes in mice, partially resembling human patterns but with notable differences in low-frequency bands.

Abstract

The exact mechanisms and the neural circuits involved in anesthesia induced unconsciousness are still not fully understood. To elucidate them valid animal models are necessary. Since the most commonly used species in neuroscience are mice, we established a murine model for commonly used anesthetics/sedatives and evaluated the epidural electroencephalographic (EEG) patterns during slow anesthesia induction and emergence. Forty-four mice underwent surgery in which we inserted a central venous catheter and implanted nine intracranial electrodes above the prefrontal, motor, sensory, and visual cortex. After at least one week of recovery, mice were anesthetized either by inhalational sevoflurane or intravenous propofol, ketamine, or dexmedetomidine. We evaluated the loss and return of righting reflex (LORR/RORR) and recorded the electrocorticogram. For spectral analysis we focused on the prefrontal and visual cortex. In addition to analyzing the power spectral density at specific time points we evaluated the changes in the spectral power distribution longitudinally. The median time to LORR after start anesthesia ranged from 1080 [1st quartile: 960; 3rd quartile: 1080]s under sevoflurane anesthesia to 1541 [1455; 1890]s with ketamine. Around LORR sevoflurane as well as propofol induced a decrease in the theta/alpha band and an increase in the beta/gamma band. Dexmedetomidine infusion resulted in a shift towards lower frequencies with an increase in the delta range. Ketamine induced stronger activity in the higher frequencies. Our results showed substance-specific changes in EEG patterns during slow anesthesia induction. These patterns were partially identical to previous observations in humans, but also included significant differences, especially in the low frequencies. Our study emphasizes strengths and limitations of murine models in neuroscience and provides an important basis for future studies investigating complex neurophysiological mechanisms.

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