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Generative modelling of the thalamo-cortical circuit mechanisms underlying the neurophysiological effects of ketamine

Cortical recordings of task-induced oscillations following subanaesthetic ketamine administration demonstrate alterations in amplitude, including increases at high-frequencies (gamma) and reductions at low frequencies (theta, alpha). To investigate the population-level interactions underlying these...

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Autores principales: Shaw, Alexander D, Muthukumaraswamy, Suresh D, Saxena, Neeraj, Sumner, Rachael L, Adams, Natalie E, Moran, Rosalyn J, Singh, Krish D
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Academic Press 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7762824/
https://www.ncbi.nlm.nih.gov/pubmed/32711064
http://dx.doi.org/10.1016/j.neuroimage.2020.117189
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author Shaw, Alexander D
Muthukumaraswamy, Suresh D
Saxena, Neeraj
Sumner, Rachael L
Adams, Natalie E
Moran, Rosalyn J
Singh, Krish D
author_facet Shaw, Alexander D
Muthukumaraswamy, Suresh D
Saxena, Neeraj
Sumner, Rachael L
Adams, Natalie E
Moran, Rosalyn J
Singh, Krish D
author_sort Shaw, Alexander D
collection PubMed
description Cortical recordings of task-induced oscillations following subanaesthetic ketamine administration demonstrate alterations in amplitude, including increases at high-frequencies (gamma) and reductions at low frequencies (theta, alpha). To investigate the population-level interactions underlying these changes, we implemented a thalamo-cortical model (TCM) capable of recapitulating broadband spectral responses. Compared with an existing cortex-only 4-population model, Bayesian Model Selection preferred the TCM. The model was able to accurately and significantly recapitulate ketamine-induced reductions in alpha amplitude and increases in gamma amplitude. Parameter analysis revealed no change in receptor time-constants but significant increases in select synaptic connectivity with ketamine. Significantly increased connections included both AMPA and NMDA mediated connections from layer 2/3 superficial pyramidal cells to inhibitory interneurons and both GABA(A) and NMDA mediated within-population gain control of layer 5 pyramidal cells. These results support the use of extended generative models for explaining oscillatory data and provide in silico support for ketamine's ability to alter local coupling mediated by NMDA, AMPA and GABA-A.
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spelling pubmed-77628242020-12-28 Generative modelling of the thalamo-cortical circuit mechanisms underlying the neurophysiological effects of ketamine Shaw, Alexander D Muthukumaraswamy, Suresh D Saxena, Neeraj Sumner, Rachael L Adams, Natalie E Moran, Rosalyn J Singh, Krish D Neuroimage Article Cortical recordings of task-induced oscillations following subanaesthetic ketamine administration demonstrate alterations in amplitude, including increases at high-frequencies (gamma) and reductions at low frequencies (theta, alpha). To investigate the population-level interactions underlying these changes, we implemented a thalamo-cortical model (TCM) capable of recapitulating broadband spectral responses. Compared with an existing cortex-only 4-population model, Bayesian Model Selection preferred the TCM. The model was able to accurately and significantly recapitulate ketamine-induced reductions in alpha amplitude and increases in gamma amplitude. Parameter analysis revealed no change in receptor time-constants but significant increases in select synaptic connectivity with ketamine. Significantly increased connections included both AMPA and NMDA mediated connections from layer 2/3 superficial pyramidal cells to inhibitory interneurons and both GABA(A) and NMDA mediated within-population gain control of layer 5 pyramidal cells. These results support the use of extended generative models for explaining oscillatory data and provide in silico support for ketamine's ability to alter local coupling mediated by NMDA, AMPA and GABA-A. Academic Press 2020-11-01 /pmc/articles/PMC7762824/ /pubmed/32711064 http://dx.doi.org/10.1016/j.neuroimage.2020.117189 Text en © 2020 The Author(s). Published by Elsevier Inc. http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Shaw, Alexander D
Muthukumaraswamy, Suresh D
Saxena, Neeraj
Sumner, Rachael L
Adams, Natalie E
Moran, Rosalyn J
Singh, Krish D
Generative modelling of the thalamo-cortical circuit mechanisms underlying the neurophysiological effects of ketamine
title Generative modelling of the thalamo-cortical circuit mechanisms underlying the neurophysiological effects of ketamine
title_full Generative modelling of the thalamo-cortical circuit mechanisms underlying the neurophysiological effects of ketamine
title_fullStr Generative modelling of the thalamo-cortical circuit mechanisms underlying the neurophysiological effects of ketamine
title_full_unstemmed Generative modelling of the thalamo-cortical circuit mechanisms underlying the neurophysiological effects of ketamine
title_short Generative modelling of the thalamo-cortical circuit mechanisms underlying the neurophysiological effects of ketamine
title_sort generative modelling of the thalamo-cortical circuit mechanisms underlying the neurophysiological effects of ketamine
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7762824/
https://www.ncbi.nlm.nih.gov/pubmed/32711064
http://dx.doi.org/10.1016/j.neuroimage.2020.117189
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