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Network asynchrony underlying increased broadband gamma power

Guyon, Nicolas (författare)
Karolinska Institutet
Zacharias, Leonardo Rakauskas (författare)
de Oliveira, Eliezyer Fermino (författare)
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Kim, Hoseok (författare)
Karolinska Institutet
Leite, João Pereira (författare)
Lopes-Aguiar, Cleiton (författare)
Carlén, Marie (författare)
Karolinska Institutet
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ISSN 0270-6474
Stockholm : Karolinska Institutet, Dept of Neuroscience, 2021
2021
Engelska.
Ingår i: The Journal of Neuroscience. - Stockholm : Karolinska Institutet, Dept of Neuroscience. - 0270-6474. ; 41:13, s. 2944-2963
  • Tidskriftsartikel (refereegranskat)
Abstract Ämnesord
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  • Synchronous activity of cortical inhibitory interneurons expressing parvalbumin (PV) underlies expression of cortical γ rhythms. Paradoxically, deficient PV inhibition is associated with increased broadband γ power in the local field potential. Increased baseline broadband γ is also a prominent characteristic in schizophrenia and a hallmark of network alterations induced by NMDAR antagonists, such as ketamine. Whether enhanced broadband γ is a true rhythm, and if so, whether rhythmic PV inhibition is involved or not, is debated. Asynchronous and increased firing activities are thought to contribute to broadband power increases spanning the γ band. Using male and female mice lacking NMDAR activity specifically in PV neurons to model deficient PV inhibition, we here show that neuronal activity with decreased synchronicity is associated with increased prefrontal broadband γ power. Specifically, reduced spike time precision and spectral leakage of spiking activity because of higher firing rates (spike “contamination”) affect the broadband γ band. Desynchronization was evident at multiple time scales, with reduced spike entrainment to the local field potential, reduced cross-frequency coupling, and fragmentation of brain states. Local application of S(1)-ketamine in (control) mice with intact NMDAR activity in PV neurons triggered network desynchronization and enhanced broadband γ power. However, our investigations suggest that disparate mechanisms underlie increased broadband γ power caused by genetic alteration of PV interneurons and ketamine-induced power increases in broadband c. Our study confirms that enhanced broadband γ power can arise from asynchronous activities and demonstrates that long-term deficiency of PV inhibition can be a contributor.

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