Bistability and up/down state alternations in inhibition-dominated randomly connected networks of LIF neurons.

dc.contributor.author

Tartaglia, Elisa M

dc.contributor.author

Brunel, Nicolas

dc.date.accessioned

2021-06-06T15:56:48Z

dc.date.available

2021-06-06T15:56:48Z

dc.date.issued

2017-09-20

dc.date.updated

2021-06-06T15:56:46Z

dc.description.abstract

Electrophysiological recordings in cortex in vivo have revealed a rich variety of dynamical regimes ranging from irregular asynchronous states to a diversity of synchronized states, depending on species, anesthesia, and external stimulation. The average population firing rate in these states is typically low. We study analytically and numerically a network of sparsely connected excitatory and inhibitory integrate-and-fire neurons in the inhibition-dominated, low firing rate regime. For sufficiently high values of the external input, the network exhibits an asynchronous low firing frequency state (L). Depending on synaptic time constants, we show that two scenarios may occur when external inputs are decreased: (1) the L state can destabilize through a Hopf bifucation as the external input is decreased, leading to synchronized oscillations spanning d δ to β frequencies; (2) the network can reach a bistable region, between the low firing frequency network state (L) and a quiescent one (Q). Adding an adaptation current to excitatory neurons leads to spontaneous alternations between L and Q states, similar to experimental observations on UP and DOWN states alternations.

dc.identifier

10.1038/s41598-017-12033-y

dc.identifier.issn

2045-2322

dc.identifier.issn

2045-2322

dc.identifier.uri

https://hdl.handle.net/10161/23349

dc.language

eng

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Springer Science and Business Media LLC

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Scientific reports

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10.1038/s41598-017-12033-y

dc.subject

Cerebral Cortex

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Nerve Net

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Animals

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Electroencephalography

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Action Potentials

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Models, Neurological

dc.title

Bistability and up/down state alternations in inhibition-dominated randomly connected networks of LIF neurons.

dc.type

Journal article

pubs.begin-page

11916

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1

pubs.organisational-group

School of Medicine

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Physics

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Neurobiology

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Duke Institute for Brain Sciences

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Center for Cognitive Neuroscience

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Duke

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Trinity College of Arts & Sciences

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Basic Science Departments

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University Institutes and Centers

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Institutes and Provost's Academic Units

pubs.publication-status

Published

pubs.volume

7

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