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Ca(V)3.2 drives sustained burst‐firing, which is critical for absence seizure propagation in reticular thalamic neurons

OBJECTIVE: Genetic alterations have been identified in the CACNA1H gene, encoding the Ca(V)3.2 T‐type calcium channel in patients with absence epilepsy, yet the precise mechanisms relating to seizure propagation and spike‐wave‐discharge (SWD) pacemaking remain unknown. Neurons of the thalamic reticu...

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Autores principales: Cain, Stuart M., Tyson, John R., Choi, Hyun‐Beom, Ko, Rebecca, Lin, Paulo J. C., LeDue, Jeffrey M., Powell, Kim L., Bernier, Louis‐Philippe, Rungta, Ravi L., Yang, Yi, Cullis, Pieter R., O'Brien, Terence J., MacVicar, Brian A., Snutch, Terrance P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5900875/
https://www.ncbi.nlm.nih.gov/pubmed/29468672
http://dx.doi.org/10.1111/epi.14018
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author Cain, Stuart M.
Tyson, John R.
Choi, Hyun‐Beom
Ko, Rebecca
Lin, Paulo J. C.
LeDue, Jeffrey M.
Powell, Kim L.
Bernier, Louis‐Philippe
Rungta, Ravi L.
Yang, Yi
Cullis, Pieter R.
O'Brien, Terence J.
MacVicar, Brian A.
Snutch, Terrance P.
author_facet Cain, Stuart M.
Tyson, John R.
Choi, Hyun‐Beom
Ko, Rebecca
Lin, Paulo J. C.
LeDue, Jeffrey M.
Powell, Kim L.
Bernier, Louis‐Philippe
Rungta, Ravi L.
Yang, Yi
Cullis, Pieter R.
O'Brien, Terence J.
MacVicar, Brian A.
Snutch, Terrance P.
author_sort Cain, Stuart M.
collection PubMed
description OBJECTIVE: Genetic alterations have been identified in the CACNA1H gene, encoding the Ca(V)3.2 T‐type calcium channel in patients with absence epilepsy, yet the precise mechanisms relating to seizure propagation and spike‐wave‐discharge (SWD) pacemaking remain unknown. Neurons of the thalamic reticular nucleus (TRN) express high levels of Ca(V)3.2 calcium channels, and we investigated whether a gain‐of‐function mutation in the Cacna1h gene in Genetic Absence Epilepsy Rats from Strasbourg (GAERS) contributes to seizure propagation and pacemaking in the TRN. METHODS: Pathophysiological contributions of Ca(V)3.2 calcium channels to burst firing and absence seizures were assessed in vitro using acute brain slice electrophysiology and quantitative real‐time polymerase chain reaction (PCR) and in vivo using free‐moving electrocorticography recordings. RESULTS: TRN neurons from GAERS display sustained oscillatory burst‐firing that is both age‐ and frequency‐dependent, occurring only in the frequencies overlapping with GAERS SWDs and correlating with the expression of a Ca(V)3.2 mutation‐sensitive splice variant. In vivo knock‐down of Ca(V)3.2 using direct thalamic injection of lipid nanoparticles containing Ca(V)3.2 dicer small interfering (Dsi) RNA normalized TRN burst‐firing, and in free‐moving GAERS significantly shortened seizures. SIGNIFICANCE: This supports a role for TRN Ca(V)3.2 T‐type channels in propagating thalamocortical network seizures and setting the pacemaking frequency of SWDs.
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spelling pubmed-59008752018-04-23 Ca(V)3.2 drives sustained burst‐firing, which is critical for absence seizure propagation in reticular thalamic neurons Cain, Stuart M. Tyson, John R. Choi, Hyun‐Beom Ko, Rebecca Lin, Paulo J. C. LeDue, Jeffrey M. Powell, Kim L. Bernier, Louis‐Philippe Rungta, Ravi L. Yang, Yi Cullis, Pieter R. O'Brien, Terence J. MacVicar, Brian A. Snutch, Terrance P. Epilepsia Full‐length Original Research OBJECTIVE: Genetic alterations have been identified in the CACNA1H gene, encoding the Ca(V)3.2 T‐type calcium channel in patients with absence epilepsy, yet the precise mechanisms relating to seizure propagation and spike‐wave‐discharge (SWD) pacemaking remain unknown. Neurons of the thalamic reticular nucleus (TRN) express high levels of Ca(V)3.2 calcium channels, and we investigated whether a gain‐of‐function mutation in the Cacna1h gene in Genetic Absence Epilepsy Rats from Strasbourg (GAERS) contributes to seizure propagation and pacemaking in the TRN. METHODS: Pathophysiological contributions of Ca(V)3.2 calcium channels to burst firing and absence seizures were assessed in vitro using acute brain slice electrophysiology and quantitative real‐time polymerase chain reaction (PCR) and in vivo using free‐moving electrocorticography recordings. RESULTS: TRN neurons from GAERS display sustained oscillatory burst‐firing that is both age‐ and frequency‐dependent, occurring only in the frequencies overlapping with GAERS SWDs and correlating with the expression of a Ca(V)3.2 mutation‐sensitive splice variant. In vivo knock‐down of Ca(V)3.2 using direct thalamic injection of lipid nanoparticles containing Ca(V)3.2 dicer small interfering (Dsi) RNA normalized TRN burst‐firing, and in free‐moving GAERS significantly shortened seizures. SIGNIFICANCE: This supports a role for TRN Ca(V)3.2 T‐type channels in propagating thalamocortical network seizures and setting the pacemaking frequency of SWDs. John Wiley and Sons Inc. 2018-02-21 2018-04 /pmc/articles/PMC5900875/ /pubmed/29468672 http://dx.doi.org/10.1111/epi.14018 Text en © 2018 The Authors. Epilepsia published by Wiley Periodicals, Inc. on behalf of International League Against Epilepsy. This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Full‐length Original Research
Cain, Stuart M.
Tyson, John R.
Choi, Hyun‐Beom
Ko, Rebecca
Lin, Paulo J. C.
LeDue, Jeffrey M.
Powell, Kim L.
Bernier, Louis‐Philippe
Rungta, Ravi L.
Yang, Yi
Cullis, Pieter R.
O'Brien, Terence J.
MacVicar, Brian A.
Snutch, Terrance P.
Ca(V)3.2 drives sustained burst‐firing, which is critical for absence seizure propagation in reticular thalamic neurons
title Ca(V)3.2 drives sustained burst‐firing, which is critical for absence seizure propagation in reticular thalamic neurons
title_full Ca(V)3.2 drives sustained burst‐firing, which is critical for absence seizure propagation in reticular thalamic neurons
title_fullStr Ca(V)3.2 drives sustained burst‐firing, which is critical for absence seizure propagation in reticular thalamic neurons
title_full_unstemmed Ca(V)3.2 drives sustained burst‐firing, which is critical for absence seizure propagation in reticular thalamic neurons
title_short Ca(V)3.2 drives sustained burst‐firing, which is critical for absence seizure propagation in reticular thalamic neurons
title_sort ca(v)3.2 drives sustained burst‐firing, which is critical for absence seizure propagation in reticular thalamic neurons
topic Full‐length Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5900875/
https://www.ncbi.nlm.nih.gov/pubmed/29468672
http://dx.doi.org/10.1111/epi.14018
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