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Motor System Interactions in the Beta Band Decrease during Loss of Consciousness.

Abstract
Communication between brain areas and how they are influenced by changes in consciousness are not fully understood. One hypothesis is that brain areas communicate via oscillatory processes, utilizing network-specific frequency bands, that can be measured with metrics that reflect between-region interactions, such as coherence and phase amplitude coupling (PAC). To evaluate this hypothesis and understand how these interactions are modulated by state changes, we analyzed electrophysiological recordings in humans at different nodes of one well-studied brain network: the basal ganglia-thalamocortical loops of the motor system during loss of consciousness induced by anesthesia. We recorded simultaneous electrocorticography over primary motor cortex (M1) with local field potentials from subcortical motor regions (either basal ganglia or thalamus) in 15 movement disorder patients during anesthesia (propofol) induction as a part of their surgery for deep brain stimulation. We observed reduced coherence and PAC between M1 and the subcortical nuclei, which was specific to the beta band (∼18-24 Hz). The fact that this pattern occurs selectively in beta underscores the importance of this frequency band in the motor system and supports the idea that oscillatory interactions at specific frequencies are related to the capacity for normal brain function and behavior.
AuthorsNicole C Swann, Coralie de Hemptinne, Ryan B Maher, Catherine A Stapleton, Lingzhong Meng, Adrian W Gelb, Philip A Starr
JournalJournal of cognitive neuroscience (J Cogn Neurosci) Vol. 28 Issue 1 Pg. 84-95 (Jan 2016) ISSN: 1530-8898 [Electronic] United States
PMID26401814 (Publication Type: Journal Article, Research Support, N.I.H., Extramural)
Topics
  • Anesthesia (adverse effects, methods)
  • Beta Rhythm (physiology)
  • Biophysics
  • Brain Mapping
  • Deep Brain Stimulation
  • Electroencephalography
  • Female
  • Humans
  • Magnetic Resonance Imaging
  • Male
  • Middle Aged
  • Motor Cortex (drug effects, physiopathology)
  • Neural Pathways (physiology)
  • Unconsciousness (etiology, pathology)

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