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Isolation of the murine Glut1 deficient thalamocortical circuit: wavelet characterization and reverse glucose dependence of low and gamma frequency oscillations

Glucose represents the principal brain energy source. Thus, not unexpectedly, genetic glucose transporter 1 (Glut1) deficiency (G1D) manifests with encephalopathy. G1D seizures, which constitute a prominent disease manifestation, often prove refractory to medications but may respond to therapeutic d...

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Autores principales: Solis, Elysandra M., Good, Levi B., Granja Vázquez, Rafael, Patnaik, Sourav, Hernandez-Reynoso, Ana G., Ma, Qian, Angulo, Gustavo, Dobariya, Aksharkumar, Cogan, Stuart F., Pancrazio, Joseph J., Pascual, Juan M., Jakkamsetti, Vikram
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10461930/
https://www.ncbi.nlm.nih.gov/pubmed/37645928
http://dx.doi.org/10.1101/2023.06.05.543611
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author Solis, Elysandra M.
Good, Levi B.
Granja Vázquez, Rafael
Patnaik, Sourav
Hernandez-Reynoso, Ana G.
Ma, Qian
Angulo, Gustavo
Dobariya, Aksharkumar
Cogan, Stuart F.
Pancrazio, Joseph J.
Pascual, Juan M.
Jakkamsetti, Vikram
author_facet Solis, Elysandra M.
Good, Levi B.
Granja Vázquez, Rafael
Patnaik, Sourav
Hernandez-Reynoso, Ana G.
Ma, Qian
Angulo, Gustavo
Dobariya, Aksharkumar
Cogan, Stuart F.
Pancrazio, Joseph J.
Pascual, Juan M.
Jakkamsetti, Vikram
author_sort Solis, Elysandra M.
collection PubMed
description Glucose represents the principal brain energy source. Thus, not unexpectedly, genetic glucose transporter 1 (Glut1) deficiency (G1D) manifests with encephalopathy. G1D seizures, which constitute a prominent disease manifestation, often prove refractory to medications but may respond to therapeutic diets. These seizures are associated with aberrant thalamocortical oscillations as inferred from human electroencephalography and functional imaging. Mouse electrophysiological recordings indicate that inhibitory neuron failure in thalamus and cortex underlies these abnormalities. This provides the motivation to develop a neural circuit testbed to characterize the mechanisms of thalamocortical synchronization and the effects of known or novel interventions. To this end, we used mouse thalamocortical slices on multielectrode arrays and characterized spontaneous low frequency oscillations and less frequent 30–50 Hz or gamma oscillations under near-physiological bath glucose concentration. Using the cortical recordings from layer IV, we quantified oscillation epochs via an automated wavelet-based algorithm. This method proved analytically superior to power spectral density, short-time Fourier transform or amplitude-threshold detection. As expected from human observations, increased bath glucose reduced the lower frequency oscillations while augmenting the gamma oscillations, likely reflecting strengthened inhibitory neuron activity. This approach provides an ex vivo method for the evaluation of mechanisms, fuels, and pharmacological agents in a crucial G1D epileptogenic circuit.
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spelling pubmed-104619302023-08-29 Isolation of the murine Glut1 deficient thalamocortical circuit: wavelet characterization and reverse glucose dependence of low and gamma frequency oscillations Solis, Elysandra M. Good, Levi B. Granja Vázquez, Rafael Patnaik, Sourav Hernandez-Reynoso, Ana G. Ma, Qian Angulo, Gustavo Dobariya, Aksharkumar Cogan, Stuart F. Pancrazio, Joseph J. Pascual, Juan M. Jakkamsetti, Vikram bioRxiv Article Glucose represents the principal brain energy source. Thus, not unexpectedly, genetic glucose transporter 1 (Glut1) deficiency (G1D) manifests with encephalopathy. G1D seizures, which constitute a prominent disease manifestation, often prove refractory to medications but may respond to therapeutic diets. These seizures are associated with aberrant thalamocortical oscillations as inferred from human electroencephalography and functional imaging. Mouse electrophysiological recordings indicate that inhibitory neuron failure in thalamus and cortex underlies these abnormalities. This provides the motivation to develop a neural circuit testbed to characterize the mechanisms of thalamocortical synchronization and the effects of known or novel interventions. To this end, we used mouse thalamocortical slices on multielectrode arrays and characterized spontaneous low frequency oscillations and less frequent 30–50 Hz or gamma oscillations under near-physiological bath glucose concentration. Using the cortical recordings from layer IV, we quantified oscillation epochs via an automated wavelet-based algorithm. This method proved analytically superior to power spectral density, short-time Fourier transform or amplitude-threshold detection. As expected from human observations, increased bath glucose reduced the lower frequency oscillations while augmenting the gamma oscillations, likely reflecting strengthened inhibitory neuron activity. This approach provides an ex vivo method for the evaluation of mechanisms, fuels, and pharmacological agents in a crucial G1D epileptogenic circuit. Cold Spring Harbor Laboratory 2023-08-20 /pmc/articles/PMC10461930/ /pubmed/37645928 http://dx.doi.org/10.1101/2023.06.05.543611 Text en https://creativecommons.org/licenses/by/4.0/This work is licensed under a Creative Commons Attribution 4.0 International License (https://creativecommons.org/licenses/by/4.0/) , which allows reusers to distribute, remix, adapt, and build upon the material in any medium or format, so long as attribution is given to the creator. The license allows for commercial use.
spellingShingle Article
Solis, Elysandra M.
Good, Levi B.
Granja Vázquez, Rafael
Patnaik, Sourav
Hernandez-Reynoso, Ana G.
Ma, Qian
Angulo, Gustavo
Dobariya, Aksharkumar
Cogan, Stuart F.
Pancrazio, Joseph J.
Pascual, Juan M.
Jakkamsetti, Vikram
Isolation of the murine Glut1 deficient thalamocortical circuit: wavelet characterization and reverse glucose dependence of low and gamma frequency oscillations
title Isolation of the murine Glut1 deficient thalamocortical circuit: wavelet characterization and reverse glucose dependence of low and gamma frequency oscillations
title_full Isolation of the murine Glut1 deficient thalamocortical circuit: wavelet characterization and reverse glucose dependence of low and gamma frequency oscillations
title_fullStr Isolation of the murine Glut1 deficient thalamocortical circuit: wavelet characterization and reverse glucose dependence of low and gamma frequency oscillations
title_full_unstemmed Isolation of the murine Glut1 deficient thalamocortical circuit: wavelet characterization and reverse glucose dependence of low and gamma frequency oscillations
title_short Isolation of the murine Glut1 deficient thalamocortical circuit: wavelet characterization and reverse glucose dependence of low and gamma frequency oscillations
title_sort isolation of the murine glut1 deficient thalamocortical circuit: wavelet characterization and reverse glucose dependence of low and gamma frequency oscillations
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10461930/
https://www.ncbi.nlm.nih.gov/pubmed/37645928
http://dx.doi.org/10.1101/2023.06.05.543611
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