4.6 Article

Toward asleep DBS: cortico-basal ganglia spectral and coherence activity during interleaved propofol/ketamine sedation mimics NREM/REM sleep activity

Journal

NPJ PARKINSONS DISEASE
Volume 7, Issue 1, Pages -

Publisher

NATURE PORTFOLIO
DOI: 10.1038/s41531-021-00211-9

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Funding

  1. Israel Science Foundation
  2. German Collaborative Research Center TRR295 (Returning dynamic motor network disorders using neuromodulation) Adelis
  3. Rosetrees Trust
  4. department of anesthesiology, Hadassah Medical Center

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This study investigates the cortico-basal ganglia neuronal network in nonhuman primates under different sedation states, revealing that ketamine and propofol increase high and low-frequency power respectively, unlike regular healthy sleep. The results show that brain spectral states under ketamine and propofol mimic different sleep stages, providing a promising step towards asleep DBS with nondistorted physiological navigation.
Deep brain stimulation (DBS) is currently a standard procedure for advanced Parkinson's disease. Many centers employ awake physiological navigation and stimulation assessment to optimize DBS localization and outcome. To enable DBS under sedation, asleep DBS, we characterized the cortico-basal ganglia neuronal network of two nonhuman primates under propofol, ketamine, and interleaved propofol-ketamine (IPK) sedation. Further, we compared these sedation states in the healthy and Parkinsonian condition to those of healthy sleep. Ketamine increases high-frequency power and synchronization while propofol increases low-frequency power and synchronization in polysomnography and neuronal activity recordings. Thus, ketamine does not mask the low-frequency oscillations used for physiological navigation toward the basal ganglia DBS targets. The brain spectral state under ketamine and propofol mimicked rapid eye movement (REM) and Non-REM (NREM) sleep activity, respectively, and the IPK protocol resembles the NREM-REM sleep cycle. These promising results are a meaningful step toward asleep DBS with nondistorted physiological navigation.

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