High-frequency oscillations in human and monkey neocortex during the wake–sleep cycle
Author(s) -
Michel Le Van Quyen,
Lyle Muller,
Bartosz Teleńczuk,
Eric Halgren,
Sydney S. Cash,
Nicholas G. Hatsopoulos,
Nima Dehghani,
Alain Destexhe
Publication year - 2016
Publication title -
proceedings of the national academy of sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.1523583113
Subject(s) - neocortex , inhibitory postsynaptic potential , oscillation (cell signaling) , neuroscience , excitatory postsynaptic potential , coherence (philosophical gambling strategy) , electroencephalography , physics , slow wave sleep , memory consolidation , sleep (system call) , biology , hippocampus , computer science , operating system , genetics , quantum mechanics
Beta (β)- and gamma (γ)-oscillations are present in different cortical areas and are thought to be inhibition-driven, but it is not known if these properties also apply to γ-oscillations in humans. Here, we analyze such oscillations in high-density microelectrode array recordings in human and monkey during the wake-sleep cycle. In these recordings, units were classified as excitatory and inhibitory cells. We find that γ-oscillations in human and β-oscillations in monkey are characterized by a strong implication of inhibitory neurons, both in terms of their firing rate and their phasic firing with the oscillation cycle. The β- and γ-waves systematically propagate across the array, with similar velocities, during both wake and sleep. However, only in slow-wave sleep (SWS) β- and γ-oscillations are associated with highly coherent and functional interactions across several millimeters of the neocortex. This interaction is specifically pronounced between inhibitory cells. These results suggest that inhibitory cells are dominantly involved in the genesis of β- and γ-oscillations, as well as in the organization of their large-scale coherence in the awake and sleeping brain. The highest oscillation coherence found during SWS suggests that fast oscillations implement a highly coherent reactivation of wake patterns that may support memory consolidation during SWS.
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