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Default mode network spatio-temporal electrophysiological signature and causal role in creativity

The default mode network (DMN) is a widely distributed, intrinsic brain network thought to play a crucial role in internally-directed cognition. It subserves self-referential thinking, recollection of the past, mind wandering, and creativity. Knowledge about the electrophysiology underlying DMN acti...

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Autores principales: Bartoli, E., Devara, E., Dang, H.Q., Rabinovich, R., Mathura, R.K., Anand, A., Pascuzzi, B.R., Adkinson, J., Bijanki, K.R., Sheth, S.A., Shofty, B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10541614/
https://www.ncbi.nlm.nih.gov/pubmed/37786678
http://dx.doi.org/10.1101/2023.09.13.557639
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author Bartoli, E.
Devara, E.
Dang, H.Q.
Rabinovich, R.
Mathura, R.K.
Anand, A.
Pascuzzi, B.R.
Adkinson, J.
Bijanki, K.R.
Sheth, S.A.
Shofty, B.
author_facet Bartoli, E.
Devara, E.
Dang, H.Q.
Rabinovich, R.
Mathura, R.K.
Anand, A.
Pascuzzi, B.R.
Adkinson, J.
Bijanki, K.R.
Sheth, S.A.
Shofty, B.
author_sort Bartoli, E.
collection PubMed
description The default mode network (DMN) is a widely distributed, intrinsic brain network thought to play a crucial role in internally-directed cognition. It subserves self-referential thinking, recollection of the past, mind wandering, and creativity. Knowledge about the electrophysiology underlying DMN activity is scarce, due to the difficulty to simultaneously record from multiple distant cortical areas with commonly-used techniques. The present study employs stereo-electroencephalography depth electrodes in 13 human patients undergoing monitoring for epilepsy, obtaining high spatiotemporal resolution neural recordings across multiple canonical DMN regions. Our results offer a rare insight into the temporal evolution and spatial origin of theta (4–8Hz) and gamma signals (30–70Hz) during two DMN-associated higher cognitive functions: mind-wandering and alternate uses. During the performance of these tasks, DMN activity is defined by a specific pattern of decreased theta coupled with increased gamma power. Critically, creativity and mind wandering engage the DMN with different dynamics: creativity recruits the DMN strongly during the covert search of ideas, while mind wandering displays the strongest modulation of DMN during the later recall of the train of thoughts. Theta band power modulations, predominantly occurring during mind wandering, do not show a predominant spatial origin within the DMN. In contrast, gamma power effects were similar for mind wandering and creativity and more strongly associated to lateral temporal nodes. Interfering with DMN activity through direct cortical stimulation within several DMN nodes caused a decrease in creativity, specifically reducing the originality of the alternate uses, without affecting creative fluency or mind wandering. These results suggest that DMN activity is flexibly modulated as a function of specific cognitive processes and supports its causal role in creative thinking. Our findings shed light on the neural constructs supporting creative cognition and provide causal evidence for the role of DMN in the generation of original connections among concepts.
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spelling pubmed-105416142023-10-02 Default mode network spatio-temporal electrophysiological signature and causal role in creativity Bartoli, E. Devara, E. Dang, H.Q. Rabinovich, R. Mathura, R.K. Anand, A. Pascuzzi, B.R. Adkinson, J. Bijanki, K.R. Sheth, S.A. Shofty, B. bioRxiv Article The default mode network (DMN) is a widely distributed, intrinsic brain network thought to play a crucial role in internally-directed cognition. It subserves self-referential thinking, recollection of the past, mind wandering, and creativity. Knowledge about the electrophysiology underlying DMN activity is scarce, due to the difficulty to simultaneously record from multiple distant cortical areas with commonly-used techniques. The present study employs stereo-electroencephalography depth electrodes in 13 human patients undergoing monitoring for epilepsy, obtaining high spatiotemporal resolution neural recordings across multiple canonical DMN regions. Our results offer a rare insight into the temporal evolution and spatial origin of theta (4–8Hz) and gamma signals (30–70Hz) during two DMN-associated higher cognitive functions: mind-wandering and alternate uses. During the performance of these tasks, DMN activity is defined by a specific pattern of decreased theta coupled with increased gamma power. Critically, creativity and mind wandering engage the DMN with different dynamics: creativity recruits the DMN strongly during the covert search of ideas, while mind wandering displays the strongest modulation of DMN during the later recall of the train of thoughts. Theta band power modulations, predominantly occurring during mind wandering, do not show a predominant spatial origin within the DMN. In contrast, gamma power effects were similar for mind wandering and creativity and more strongly associated to lateral temporal nodes. Interfering with DMN activity through direct cortical stimulation within several DMN nodes caused a decrease in creativity, specifically reducing the originality of the alternate uses, without affecting creative fluency or mind wandering. These results suggest that DMN activity is flexibly modulated as a function of specific cognitive processes and supports its causal role in creative thinking. Our findings shed light on the neural constructs supporting creative cognition and provide causal evidence for the role of DMN in the generation of original connections among concepts. Cold Spring Harbor Laboratory 2023-09-18 /pmc/articles/PMC10541614/ /pubmed/37786678 http://dx.doi.org/10.1101/2023.09.13.557639 Text en https://creativecommons.org/licenses/by-nc-nd/4.0/This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License (https://creativecommons.org/licenses/by-nc-nd/4.0/) , which allows reusers to copy and distribute the material in any medium or format in unadapted form only, for noncommercial purposes only, and only so long as attribution is given to the creator.
spellingShingle Article
Bartoli, E.
Devara, E.
Dang, H.Q.
Rabinovich, R.
Mathura, R.K.
Anand, A.
Pascuzzi, B.R.
Adkinson, J.
Bijanki, K.R.
Sheth, S.A.
Shofty, B.
Default mode network spatio-temporal electrophysiological signature and causal role in creativity
title Default mode network spatio-temporal electrophysiological signature and causal role in creativity
title_full Default mode network spatio-temporal electrophysiological signature and causal role in creativity
title_fullStr Default mode network spatio-temporal electrophysiological signature and causal role in creativity
title_full_unstemmed Default mode network spatio-temporal electrophysiological signature and causal role in creativity
title_short Default mode network spatio-temporal electrophysiological signature and causal role in creativity
title_sort default mode network spatio-temporal electrophysiological signature and causal role in creativity
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10541614/
https://www.ncbi.nlm.nih.gov/pubmed/37786678
http://dx.doi.org/10.1101/2023.09.13.557639
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