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Altered Glycolysis and Mitochondrial Respiration in a Zebrafish Model of Dravet Syndrome123

Altered metabolism is an important feature of many epileptic syndromes but has not been reported in Dravet syndrome (DS), a catastrophic childhood epilepsy associated with mutations in a voltage-activated sodium channel, Nav1.1 (SCN1A). To address this, we developed novel methodology to assess real-...

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Autores principales: Kumar, Maneesh G., Rowley, Shane, Fulton, Ruth, Dinday, Matthew T., Baraban, Scott C., Patel, Manisha
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Society for Neuroscience 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4820792/
https://www.ncbi.nlm.nih.gov/pubmed/27066534
http://dx.doi.org/10.1523/ENEURO.0008-16.2016
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author Kumar, Maneesh G.
Rowley, Shane
Fulton, Ruth
Dinday, Matthew T.
Baraban, Scott C.
Patel, Manisha
author_facet Kumar, Maneesh G.
Rowley, Shane
Fulton, Ruth
Dinday, Matthew T.
Baraban, Scott C.
Patel, Manisha
author_sort Kumar, Maneesh G.
collection PubMed
description Altered metabolism is an important feature of many epileptic syndromes but has not been reported in Dravet syndrome (DS), a catastrophic childhood epilepsy associated with mutations in a voltage-activated sodium channel, Nav1.1 (SCN1A). To address this, we developed novel methodology to assess real-time changes in bioenergetics in zebrafish larvae between 4 and 6 d postfertilization (dpf). Baseline and 4-aminopyridine (4-AP) stimulated glycolytic flux and mitochondrial respiration were simultaneously assessed using a Seahorse Biosciences extracellular flux analyzer. Scn1Lab mutant zebrafish showed a decrease in baseline glycolytic rate and oxygen consumption rate (OCR) compared to controls. A ketogenic diet formulation rescued mutant zebrafish metabolism to control levels. Increasing neuronal excitability with 4-AP resulted in an immediate increase in glycolytic rates in wild-type zebrafish, whereas mitochondrial OCR increased slightly and quickly recovered to baseline values. In contrast, scn1Lab mutant zebrafish showed a significantly slower and exaggerated increase of both glycolytic rates and OCR after 4-AP. The underlying mechanism of decreased baseline OCR in scn1Lab mutants was not because of altered mitochondrial DNA content or dysfunction of enzymes in the electron transport chain or tricarboxylic acid cycle. Examination of glucose metabolism using a PCR array identified five glycolytic genes that were downregulated in scn1Lab mutant zebrafish. Our findings in scn1Lab mutant zebrafish suggest that glucose and mitochondrial hypometabolism contribute to the pathophysiology of DS.
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spelling pubmed-48207922016-04-08 Altered Glycolysis and Mitochondrial Respiration in a Zebrafish Model of Dravet Syndrome123 Kumar, Maneesh G. Rowley, Shane Fulton, Ruth Dinday, Matthew T. Baraban, Scott C. Patel, Manisha eNeuro New Research Altered metabolism is an important feature of many epileptic syndromes but has not been reported in Dravet syndrome (DS), a catastrophic childhood epilepsy associated with mutations in a voltage-activated sodium channel, Nav1.1 (SCN1A). To address this, we developed novel methodology to assess real-time changes in bioenergetics in zebrafish larvae between 4 and 6 d postfertilization (dpf). Baseline and 4-aminopyridine (4-AP) stimulated glycolytic flux and mitochondrial respiration were simultaneously assessed using a Seahorse Biosciences extracellular flux analyzer. Scn1Lab mutant zebrafish showed a decrease in baseline glycolytic rate and oxygen consumption rate (OCR) compared to controls. A ketogenic diet formulation rescued mutant zebrafish metabolism to control levels. Increasing neuronal excitability with 4-AP resulted in an immediate increase in glycolytic rates in wild-type zebrafish, whereas mitochondrial OCR increased slightly and quickly recovered to baseline values. In contrast, scn1Lab mutant zebrafish showed a significantly slower and exaggerated increase of both glycolytic rates and OCR after 4-AP. The underlying mechanism of decreased baseline OCR in scn1Lab mutants was not because of altered mitochondrial DNA content or dysfunction of enzymes in the electron transport chain or tricarboxylic acid cycle. Examination of glucose metabolism using a PCR array identified five glycolytic genes that were downregulated in scn1Lab mutant zebrafish. Our findings in scn1Lab mutant zebrafish suggest that glucose and mitochondrial hypometabolism contribute to the pathophysiology of DS. Society for Neuroscience 2016-04-05 /pmc/articles/PMC4820792/ /pubmed/27066534 http://dx.doi.org/10.1523/ENEURO.0008-16.2016 Text en Copyright © 2016 Kumar et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.
spellingShingle New Research
Kumar, Maneesh G.
Rowley, Shane
Fulton, Ruth
Dinday, Matthew T.
Baraban, Scott C.
Patel, Manisha
Altered Glycolysis and Mitochondrial Respiration in a Zebrafish Model of Dravet Syndrome123
title Altered Glycolysis and Mitochondrial Respiration in a Zebrafish Model of Dravet Syndrome123
title_full Altered Glycolysis and Mitochondrial Respiration in a Zebrafish Model of Dravet Syndrome123
title_fullStr Altered Glycolysis and Mitochondrial Respiration in a Zebrafish Model of Dravet Syndrome123
title_full_unstemmed Altered Glycolysis and Mitochondrial Respiration in a Zebrafish Model of Dravet Syndrome123
title_short Altered Glycolysis and Mitochondrial Respiration in a Zebrafish Model of Dravet Syndrome123
title_sort altered glycolysis and mitochondrial respiration in a zebrafish model of dravet syndrome123
topic New Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4820792/
https://www.ncbi.nlm.nih.gov/pubmed/27066534
http://dx.doi.org/10.1523/ENEURO.0008-16.2016
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