Literature DB >> 32043145

Local Perturbations of Cortical Excitability Propagate Differentially Through Large-Scale Functional Networks.

Zachary P Rosenthal1,2,3, Ryan V Raut2,4, Ping Yan3, Deima Koko3, Andrew W Kraft5, Leah Czerniewski3,6, Benjamin Acland2,7, Anish Mitra1,2,4, Lawrence H Snyder7,6, Adam Q Bauer4,6, Abraham Z Snyder3,4, Joseph P Culver4,6,8, Marcus E Raichle3,4,7,6, Jin-Moo Lee3,4,6.   

Abstract

Electrophysiological recordings have established that GABAergic interneurons regulate excitability, plasticity, and computational function within local neural circuits. Importantly, GABAergic inhibition is focally disrupted around sites of brain injury. However, it remains unclear whether focal imbalances in inhibition/excitation lead to widespread changes in brain activity. Here, we test the hypothesis that focal perturbations in excitability disrupt large-scale brain network dynamics. We used viral chemogenetics in mice to reversibly manipulate parvalbumin interneuron (PV-IN) activity levels in whisker barrel somatosensory cortex. We then assessed how this imbalance affects cortical network activity in awake mice using wide-field optical neuroimaging of pyramidal neuron GCaMP dynamics as well as local field potential recordings. We report 1) that local changes in excitability can cause remote, network-wide effects, 2) that these effects propagate differentially through intra- and interhemispheric connections, and 3) that chemogenetic constructs can induce plasticity in cortical excitability and functional connectivity. These findings may help to explain how focal activity changes following injury lead to widespread network dysfunction.
© The Author(s) 2020. Published by Oxford University Press. All rights reserved. For permissions, please e-mail: journals.permission@oup.com.

Entities:  

Keywords:  calcium imaging; excitability; functional connectivity; inhibition; parvalbumin interneuron

Year:  2020        PMID: 32043145      PMCID: PMC7305790          DOI: 10.1093/cercor/bhz314

Source DB:  PubMed          Journal:  Cereb Cortex        ISSN: 1047-3211            Impact factor:   5.357


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