Literature DB >> 24966414

Regulating Cortical Oscillations in an Inhibition-Stabilized Network.

Monika P Jadi1, Terrence J Sejnowski1.   

Abstract

Understanding the anatomical and functional architecture of the brain is essential for designing neurally inspired intelligent systems. Theoretical and empirical studies suggest a role for narrowband oscillations in shaping the functional architecture of the brain through their role in coding and communication of information. Such oscillations are ubiquitous signals in the electrical activity recorded from the brain. In the cortex, oscillations detected in the gamma range (30-80 Hz) are modulated by behavioral states and sensory features in complex ways. How is this regulation achieved? Although several underlying principles for the genesis of these oscillations have been proposed, a unifying account for their regulation has remained elusive. In a network of excitatory and inhibitory neurons operating in an inhibition-stabilized regime, we show that strongly superlinear responses of inhibitory neurons facilitate bidirectional regulation of oscillation frequency and power. In such a network, the balance of drives to the excitatory and inhibitory populations determines how the power and frequency of oscillations are modulated. The model accounts for the puzzling increase in their frequency with the salience of visual stimuli, and a decrease with their size. Oscillations in our model grow stronger as the mean firing level is reduced, accounting for the size dependence of visually evoked gamma rhythms, and suggesting a role for oscillations in improving the signal-to-noise ratio (SNR) of signals in the brain. Empirically testing such predictions is still challenging, and implementing the proposed coding and communication strategies in neuromorphic systems could assist in our understanding of the biological system.

Entities:  

Keywords:  Brain rhythms; Hopf bifurcation; coherence; communication; electroencephalogram (EEG); gamma; inhibition-stabilized network (ISN); inhibitory neuron–network–gamma (ING); limit cycle; nonlinear system; oscillations; phase code; pyramidal neuron–inhibitory neuron–network-gamma (PING); synchrony; vision

Year:  2014        PMID: 24966414      PMCID: PMC4067313          DOI: 10.1109/JPROC.2014.2313113

Source DB:  PubMed          Journal:  Proc IEEE Inst Electr Electron Eng        ISSN: 0018-9219            Impact factor:   10.961


  63 in total

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Review 3.  Synaptic mechanisms of synchronized gamma oscillations in inhibitory interneuron networks.

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Journal:  Nat Rev Neurosci       Date:  2007-01       Impact factor: 34.870

4.  Gamma oscillation by synaptic inhibition in a hippocampal interneuronal network model.

Authors:  X J Wang; G Buzsáki
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5.  Paradoxical effects of external modulation of inhibitory interneurons.

Authors:  M V Tsodyks; W E Skaggs; T J Sejnowski; B L McNaughton
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6.  Synchronized oscillations in interneuron networks driven by metabotropic glutamate receptor activation.

Authors:  M A Whittington; R D Traub; J G Jefferys
Journal:  Nature       Date:  1995-02-16       Impact factor: 49.962

Review 7.  Cortical inhibitory neurons and schizophrenia.

Authors:  David A Lewis; Takanori Hashimoto; David W Volk
Journal:  Nat Rev Neurosci       Date:  2005-04       Impact factor: 34.870

8.  Stimulus selectivity and spatial coherence of gamma components of the local field potential.

Authors:  Xiaoxuan Jia; Matthew A Smith; Adam Kohn
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9.  LFP spectral peaks in V1 cortex: network resonance and cortico-cortical feedback.

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10.  Non-parametric detection of temporal order across pairwise measurements of time delays.

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Journal:  J Comput Neurosci       Date:  2006-09-19       Impact factor: 1.453

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  16 in total

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2.  Periodic Forcing of Inhibition-Stabilized Networks: Nonlinear Resonances and Phase-Amplitude Coupling.

Authors:  Romain Veltz; Terrence J Sejnowski
Journal:  Neural Comput       Date:  2015-10-23       Impact factor: 2.026

3.  Dependency analysis of frequency and strength of gamma oscillations on input difference between excitatory and inhibitory neurons.

Authors:  Xiaochun Gu; Fang Han; Zhijie Wang
Journal:  Cogn Neurodyn       Date:  2020-07-28       Impact factor: 3.473

4.  Complete Firing-Rate Response of Neurons with Complex Intrinsic Dynamics.

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5.  Intersubject variability and induced gamma in the visual cortex: DCM with empirical Bayes and neural fields.

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6.  Cortical gamma band synchronization through somatostatin interneurons.

Authors:  Julia Veit; Richard Hakim; Monika P Jadi; Terrence J Sejnowski; Hillel Adesnik
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7.  Long-wavelength (reddish) hues induce unusually large gamma oscillations in the primate primary visual cortex.

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8.  High-Frequency Synchronization Improves Firing Rate Contrast and Information Transmission Efficiency in E/I Neuronal Networks.

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9.  Neurostimulation stabilizes spiking neural networks by disrupting seizure-like oscillatory transitions.

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Review 10.  Abnormal Gamma Oscillations in N-Methyl-D-Aspartate Receptor Hypofunction Models of Schizophrenia.

Authors:  Monika P Jadi; M Margarita Behrens; Terrence J Sejnowski
Journal:  Biol Psychiatry       Date:  2015-07-17       Impact factor: 13.382

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