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Cortical Entropy, Mutual Information and Scale-Free Dynamics in Waking Mice.


ABSTRACT: Some neural circuits operate with simple dynamics characterized by one or a few well-defined spatiotemporal scales (e.g. central pattern generators). In contrast, cortical neuronal networks often exhibit richer activity patterns in which all spatiotemporal scales are represented. Such "scale-free" cortical dynamics manifest as cascades of activity with cascade sizes that are distributed according to a power-law. Theory and in vitro experiments suggest that information transmission among cortical circuits is optimized by scale-free dynamics. In vivo tests of this hypothesis have been limited by experimental techniques with insufficient spatial coverage and resolution, i.e., restricted access to a wide range of scales. We overcame these limitations by using genetically encoded voltage imaging to track neural activity in layer 2/3 pyramidal cells across the cortex in mice. As mice recovered from anesthesia, we observed three changes: (a) cortical information capacity increased, (b) information transmission among cortical regions increased and (c) neural activity became scale-free. Our results demonstrate that both information capacity and information transmission are maximized in the awake state in cortical regions with scale-free network dynamics.

SUBMITTER: Fagerholm ED 

PROVIDER: S-EPMC5028006 | biostudies-other | 2016 Oct

REPOSITORIES: biostudies-other

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Cortical Entropy, Mutual Information and Scale-Free Dynamics in Waking Mice.

Fagerholm Erik D ED   Scott Gregory G   Shew Woodrow L WL   Song Chenchen C   Leech Robert R   Knöpfel Thomas T   Sharp David J DJ  

Cerebral cortex (New York, N.Y. : 1991) 20160706 10


Some neural circuits operate with simple dynamics characterized by one or a few well-defined spatiotemporal scales (e.g. central pattern generators). In contrast, cortical neuronal networks often exhibit richer activity patterns in which all spatiotemporal scales are represented. Such "scale-free" cortical dynamics manifest as cascades of activity with cascade sizes that are distributed according to a power-law. Theory and in vitro experiments suggest that information transmission among cortical  ...[more]

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