Literature DB >> 22083642

Brainstem mechanisms of paradoxical (REM) sleep generation.

Pierre-Hervé Luppi1, Olivier Clement, Emilie Sapin, Christelle Peyron, Damien Gervasoni, Lucienne Léger, Patrice Fort.   

Abstract

Paradoxical sleep (PS) is characterized by EEG activation with a disappearance of muscle tone and the occurrence of rapid eye movements (REM) in contrast to slow-wave sleep (SWS, also known as non-REM sleep) identified by the presence of delta waves. Soon after the discovery of PS, it was demonstrated that the structures necessary and sufficient for its genesis are restricted to the brainstem. We review here recent results indicating that brainstem glutamatergic and GABAergic, rather than cholinergic and monoaminergic, neurons play a key role in the genesis of PS. We hypothesize that the entrance to PS from SWS is due to the activation of PS-on glutamatergic neurons localized in the pontine sublaterodorsal tegmental nucleus. The activation of these neurons would be due to a permanent glutamatergic input arising from the lateral and ventrolateral periaqueductal gray (vlPAG) and the removal at the onset of PS of a GABAergic inhibition present during W and SWS. Such inhibition would be coming from PS-off GABAergic neurons localized in the vlPAG and the adjacent deep mesencephalic reticular nucleus. The cessation of activity of these PS-off GABAergic neurons at the onset and during PS would be due to direct projections from intermingled GABAergic PS-on neurons. Activation of PS would depend on the reciprocal interactions between the GABAergic PS-on and PS-off neurons, intrinsic cellular and molecular events, and integration of multiple physiological parameters.

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Year:  2011        PMID: 22083642     DOI: 10.1007/s00424-011-1054-y

Source DB:  PubMed          Journal:  Pflugers Arch        ISSN: 0031-6768            Impact factor:   3.657


  97 in total

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Authors:  M C Xi; F R Morales; M H Chase
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Review 2.  Paradoxical sleep and its chemical/structural substrates in the brain.

Authors:  B E Jones
Journal:  Neuroscience       Date:  1991       Impact factor: 3.590

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4.  [Effect of destruction of neurons containing catecholamines of the mesencephalon on the wake-sleep cycle in cats].

Authors:  B E Jones; P Bobillier; M Jouvet
Journal:  C R Seances Soc Biol Fil       Date:  1969

5.  Activity of norepinephrine-containing locus coeruleus neurons in behaving rats anticipates fluctuations in the sleep-waking cycle.

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Authors:  J P Sastre; C Buda; K Kitahama; M Jouvet
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