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SLEEP AND AROUSAL: Thalamocortical Mechanisms

Annual Review of Neuroscience · 1997 · Vol. 20(1) · pp. 185–215
David A. McCormickThierry Bal

Abstract

Thalamocortical activity exhibits two distinct states: (a) synchronized rhythmic activity in the form of delta, spindle, and other slow waves during EEG-synchronized sleep and (b) tonic activity during waking and rapid-eye-movement sleep. Spindle waves are generated largely through a cyclical interaction between thalamocortical and thalamic reticular neurons involving both the intrinsic membrane properties of these cells and their anatomical interconnections. Specific alterations in the interactions between these cells can result in the generation of paroxysmal events resembling absence seizures in children. The release of several different neurotransmitters from the brain stem, hypothalamus, basal forebrain, and cerebral cortex results in a depolarization of thalamocortical and thalamic reticular neurons and an enhanced excitability in many cortical pyramidal cells, thereby suppressing the generation of sleep rhythms and promoting a state that is conducive to sensory processing and cognition.

Sleep and Wakefulness ResearchNeural dynamics and brain functionNeuroscience and Neuropharmacology ResearchNeuroscienceTonic (physiology)ThalamusReticular activating systemNeuroscience of sleepReticular formationSleep spindleDepolarizationReticular connective tissueBasal forebrain

MeSH terms

AnimalsArousalSleepThalamus
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References
Brain stem reticular formation and activation of the EEG
Electroencephalography and Clinical Neurophysiology · 1949 · 4,271 citations
Preface: Cerebral Cortex Has Come of Age
Cerebral Cortex · 1991 · 3,569 citations
Physiological basis of the alpha rhythm
Electroencephalography and Clinical Neurophysiology · 1969 · 598 citations
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