Literature DB >> 24309750

Gamma band activity in the RAS-intracellular mechanisms.

E Garcia-Rill1, N Kezunovic, S D'Onofrio, B Luster, J Hyde, V Bisagno, F J Urbano.   

Abstract

Gamma band activity participates in sensory perception, problem solving, and memory. This review considers recent evidence showing that cells in the reticular activating system (RAS) exhibit gamma band activity, and describes the intrinsic membrane properties behind such manifestation. Specifically, we discuss how cells in the mesopontine pedunculopontine nucleus, intralaminar parafascicular nucleus, and pontine SubCoeruleus nucleus dorsalis all fire in the gamma band range when maximally activated, but no higher. The mechanisms involve high-threshold, voltage-dependent P/Q-type calcium channels, or sodium-dependent subthreshold oscillations. Rather than participating in the temporal binding of sensory events as in the cortex, gamma band activity in the RAS may participate in the processes of preconscious awareness and provide the essential stream of information for the formulation of many of our actions. We address three necessary next steps resulting from these discoveries: an intracellular mechanism responsible for maintaining gamma band activity based on persistent G-protein activation, separate intracellular pathways that differentiate between gamma band activity during waking versus during REM sleep, and an intracellular mechanism responsible for the dysregulation in gamma band activity in schizophrenia. These findings open several promising research avenues that have not been thoroughly explored. What are the effects of sleep or REM sleep deprivation on these RAS mechanisms? Are these mechanisms involved in memory processing during waking and/or during REM sleep? Does gamma band processing differ during waking versus REM sleep after sleep or REM sleep deprivation?

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Year:  2013        PMID: 24309750      PMCID: PMC4013218          DOI: 10.1007/s00221-013-3794-8

Source DB:  PubMed          Journal:  Exp Brain Res        ISSN: 0014-4819            Impact factor:   1.972


  108 in total

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Review 5.  The intrinsic electrophysiological properties of mammalian neurons: insights into central nervous system function.

Authors:  R R Llinás
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7.  Excitation of the pedunculopontine tegmental NMDA receptors induces wakefulness and cortical activation in the rat.

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8.  AROUSAL FROM SLICES TO HUMANS: Translational studies on sleep-wake control.

Authors:  N Kezunovic; C Simon; J Hyde; K Smith; P Beck; A Odle; E Garcia-Rill
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9.  Magnetic field tomography of coherent thalamocortical 40-Hz oscillations in humans.

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  23 in total

Review 1.  Mechanisms underlying sleep-wake disturbances in alcoholism: focus on the cholinergic pedunculopontine tegmentum.

Authors:  Clifford M Knapp; Domenic A Ciraulo; Subimal Datta
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2.  Arousal and the control of perception and movement.

Authors:  E Garcia-Rill; T Virmani; J R Hyde; S D'Onofrio; S Mahaffey
Journal:  Curr Trends Neurol       Date:  2016

3.  The 10 Hz Frequency: A Fulcrum For Transitional Brain States.

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4.  Bottom-up Gamma: the Pedunculopontine Nucleus and Reticular Activating System.

Authors:  E Garcia-Rill; S D'Onofrio; S Mahaffey
Journal:  Transl Brain Rhythm       Date:  2016-10-07

5.  The homeostatic regulation of REM sleep: A role for localized expression of brain-derived neurotrophic factor in the brainstem.

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6.  Role of calcium channels in bipolar disorder.

Authors:  Stasia D'Onofrio; Susan Mahaffey; Edgar Garcia-Rill
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7.  Modulation of gamma oscillations in the pedunculopontine nucleus by neuronal calcium sensor protein-1: relevance to schizophrenia and bipolar disorder.

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Journal:  J Neurophysiol       Date:  2014-11-05       Impact factor: 2.714

Review 8.  Arousal and drug abuse.

Authors:  Francisco J Urbano; Verónica Bisagno; Edgar Garcia-Rill
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Review 9.  Implications of gamma band activity in the pedunculopontine nucleus.

Authors:  E Garcia-Rill; B Luster; S D'Onofrio; S Mahaffey; V Bisagno; F J Urbano
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Review 10.  The physiology of the pedunculopontine nucleus: implications for deep brain stimulation.

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Journal:  J Neural Transm (Vienna)       Date:  2014-06-01       Impact factor: 3.575

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