Literature DB >> 23607417

Prolonged wakefulness alters neuronal responsiveness to local electrical stimulation of the neocortex in awake rats..

Vladyslav V Vyazovskiy1, Umberto Olcese, Chiara Cirelli, Giulio Tononi.   

Abstract

Prolonged wakefulness or a lack of sleep lead to cognitive deficits, but little is known about the underlying cellular mechanisms. We recently found that sleep deprivation affects spontaneous neuronal activity in the neocortex of sleeping and awake rats. While it is well known that synaptic responses are modulated by ongoing cortical activity, it remains unclear whether prolonged waking affects responsiveness of cortical neurons to incoming stimuli. By applying local electrical microstimulation to the frontal area of the neocortex, we found that after a 4 h period of waking the initial neuronal response in the contralateral frontal cortex was stronger and more synchronous, and was followed by a more profound inhibition of neuronal spiking as compared with the control condition. These changes in evoked activity suggest increased neuronal excitability and indicate that, after staying awake, cortical neurons become transiently bistable. We propose that some of the detrimental effects of sleep deprivation may be a result of altered neuronal responsiveness to incoming intrinsic and extrinsic inputs.
© 2012 European Sleep Research Society.

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Year:  2013        PMID: 23607417      PMCID: PMC3723708          DOI: 10.1111/jsr.12009

Source DB:  PubMed          Journal:  J Sleep Res        ISSN: 0962-1105            Impact factor:   3.981


  54 in total

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Authors:  Vladyslav V Vyazovskiy; Brady A Riedner; Chiara Cirelli; Giulio Tononi
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Authors:  Brady A Riedner; Vladyslav V Vyazovskiy; Reto Huber; Marcello Massimini; Steve Esser; Michael Murphy; Giulio Tononi
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Authors:  Vladyslav V Vyazovskiy; Ugo Faraguna; Chiara Cirelli; Giulio Tononi
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  14 in total

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6.  The dynamics of cortical neuronal activity in the first minutes after spontaneous awakening in rats and mice.

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Review 9.  Eyes Open on Sleep and Wake: In Vivo to In Silico Neural Networks.

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