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  Balancing excitation and inhibition: The role of neural network dynamics in working memory gating

Herzog, N., Cesnaite, E., Steinfath, T. P., Kapralov, N., Fallon, S. J., Nikulin, V. V., et al. (2024). Balancing excitation and inhibition: The role of neural network dynamics in working memory gating. Imaging Neuroscience, 2: imag-2-00380. doi:10.1162/imag_a_00380/125236.

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 Creators:
Herzog, Nadine1, 2, Author                 
Cesnaite, Elena1, 3, Author                 
Steinfath, Tim Paul1, 2, Author                 
Kapralov, Nikolai1, 2, Author                 
Fallon, Sean J.4, Author
Nikulin, Vadim V.1, Author                 
Villringer, Arno1, Author                 
Janssen, Lieneke1, 5, Author                 
Horstmann, Annette1, 6, 7, Author                 
Affiliations:
1Department Neurology, MPI for Human Cognitive and Brain Sciences, Max Planck Society, ou_634549              
2International Max Planck Research School on Neuroscience of Communication: Function, Structure, and Plasticity, MPI for Human Cognitive and Brain Sciences, Max Planck Society, Leipzig, DE, ou_2616696              
3Institute for Psychology, Münster University, Germany, ou_persistent22              
4School of Psychology, University of Plymouth, United Kingdom, ou_persistent22              
5Institute of Psychology, Otto von Guericke University Magdeburg, Germany, ou_persistent22              
6Department of Psychology, Faculty of Medicine, University of Helsinki, Finland, ou_persistent22              
7Integrated Research and Treatment Center Adiposity Diseases, University of Leipzig, Germany, ou_persistent22              

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Free keywords: Working memory gating; Network excitation–inhibition; Long-range temporal correlations; 1/f slope; Blood amino acid ratio; P300
 Abstract: In the complex landscape of daily life, we continuously balance between maintaining focus despite distractions and flexibly updating focus when needed—a cognitive process governed by a mechanism known as working memory gating. While much research has focused on the neural locus of this mechanism, less is known about the underlying neural dynamics. Here we probe the role of network excitation/inhibition (E/I) dynamics in working memory gating. Utilizing resting-state electroencephalography, we extract two markers of network E/I dynamics: resting-state long-range temporal correlations (LRTCs)—indicative of “critically” balanced E/I dynamics, and the slope of the power spectral density (PSD)—indicative of E/I ratio, and relate them to performance on a working memory gating task, specifically probing distractor-resistant maintenance and flexible updating. Based on previous studies linking stronger LRTCs to enhanced adaptive cognition, we initially expected to observe a similar relation. We find the opposite pattern, however: stronger LRTCs (indicating a more “critical” E/I balance) predicted poorer performance in maintenance-related working memory processes. This challenges the assumption that “near-critical” system dynamics are generally beneficial for cognitive function. Additionally, a flatter PSD slope (indicating a higher E/I ratio) was associated with better maintenance-related performance, particularly in individuals with higher levels of blood phenylalanine and tyrosine (indicating greater central dopamine availability). Notably, both network measures affected performance in all but the updating condition, suggesting a nuanced role of cortical E/I dynamics in overarching maintenance-related working memory processes, distinct from the gating mechanism as such. Our results highlight the complex interplay of network dynamics and neurochemical environments in cognitive function, suggesting implications for targeted interventions in cognitive disorders.

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Language(s): eng - English
 Dates: 2024-09-262024-07-082024-10-212024-11-142024-12-02
 Publication Status: Issued
 Pages: -
 Publishing info: -
 Table of Contents: -
 Rev. Type: -
 Identifiers: DOI: 10.1162/imag_a_00380/125236
Other: eCollection 2024
PMID: 40800527
PMC: PMC12315747
 Degree: -

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Title: Imaging Neuroscience
Source Genre: Journal
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Publ. Info: Cambridge, MA, USA : MIT Press
Pages: - Volume / Issue: 2 Sequence Number: imag-2-00380 Start / End Page: - Identifier: ISSN: 2837-6056
CoNE: https://pure.mpg.de/cone/journals/resource/2837-6056