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  3. Phase-Synchronized Transcranial Alternating Current Stimulation-Induced Neural Oscillations Modulate Cortico-Cortical Signaling Efficacy

Phase-Synchronized Transcranial Alternating Current Stimulation-Induced Neural Oscillations Modulate Cortico-Cortical Signaling Efficacy

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DOI
10.48350/161236
Publisher DOI
10.1089/brain.2021.0006
PubMed ID
34210152
Abstract
Introduction: Synchronized oscillatory brain activity is considered a basis for flexible neuronal network communication. However, the causal role of inter-regional oscillatory phase relations in modulating signaling efficacy in cortical networks has not been directly demonstrated in humans so far. Aim: The current study addresses the causal role of transcranial alternating current stimulation (tACS)-induced oscillatory cross-network phase relations in modulating signaling efficacy across human cortical networks. Methods: To this end, concurrent tACS, transcranial magnetic stimulation (TMS), and electroencephalography (EEG) were employed to measure the modulation of excitability and signaling efficacy across cortical networks during externally induced neural oscillations. Theta oscillatory activity was introduced through tACS in two nodes of the human frontoparietal network: the dorsolateral prefrontal cortex (DLPFC) and the posterior parietal cortex (PPC). Six Hertz tACS was applied to the DLPFC and PPC simultaneously in an in-phase or antiphase manner. In addition, single-pulse TMS was administered over the DLPFC at four different phases of tACS and the propagation of TMS-evoked neuronal activity was measured with EEG. Results: We show that tACS-induced theta oscillations modulate TMS-evoked potentials (TEPs) in a phase-dependent manner, and that the induced oscillatory phase relation across the frontoparietal network affects the propagation of phase-dependent TEPs within as well as beyond the frontoparietal network. Conclusion: We show that the effect of tACS-induced phase relation across the frontoparietal network on signal transmission extends beyond the frontoparietal network. The results support a causal role of inter-nodal oscillatory phase synchrony in routing cortico-cortical information flow.
Date Issued
2022-06
Publication Type
Article
Subject(s)
600 Technology > 610 Medicine & health
Language(s)
en
Author(s)
Fehér Orrenskog, Daniel Kristoffer  
Universitätsklinik für Psychiatrie und Psychotherapie (PP)  
Zentrum für Translationale Forschung der Universitätsklinik für Psychiatrie und Psychotherapie  
Nakataki, Masahito
Morishima, Yosuke  
Zentrum für Translationale Forschung der Universitätsklinik für Psychiatrie und Psychotherapie  
Additional Credits
Universitätsklinik für Psychiatrie und Psychotherapie (PP)  
Zentrum für Translationale Forschung der Universitätsklinik für Psychiatrie und Psychotherapie  
Journal
Brain connectivity
Publisher
Mary Ann Liebert
ISSN
2158-0014
Access(Rights)
restricted
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