Cargando…

The absence of NIPA2 enhances neural excitability through BK (big potassium) channels

AIM: To reveal the pathogenesis and find the precision treatment for the childhood absence epilepsy (CAE) patients with NIPA2 mutations. METHODS: We performed whole‐cell patch‐clamp recordings to measure the electrophysiological properties of layer V neocortical somatosensory pyramidal neurons in wi...

Descripción completa

Detalles Bibliográficos
Autores principales: Liu, Na‐Na, Xie, Han, Xiang‐wei, Wen‐Shu, Gao, Kai, Wang, Tian‐Shuang, Jiang, Yu‐Wu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6630003/
https://www.ncbi.nlm.nih.gov/pubmed/30895737
http://dx.doi.org/10.1111/cns.13119
_version_ 1783435206719438848
author Liu, Na‐Na
Xie, Han
Xiang‐wei, Wen‐Shu
Gao, Kai
Wang, Tian‐Shuang
Jiang, Yu‐Wu
author_facet Liu, Na‐Na
Xie, Han
Xiang‐wei, Wen‐Shu
Gao, Kai
Wang, Tian‐Shuang
Jiang, Yu‐Wu
author_sort Liu, Na‐Na
collection PubMed
description AIM: To reveal the pathogenesis and find the precision treatment for the childhood absence epilepsy (CAE) patients with NIPA2 mutations. METHODS: We performed whole‐cell patch‐clamp recordings to measure the electrophysiological properties of layer V neocortical somatosensory pyramidal neurons in wild‐type (WT) and NIPA2‐knockout mice. RESULTS: We identified that layer V neocortical somatosensory pyramidal neurons isolated from the NIPA2‐knockout mice displayed higher frequency of spontaneous and evoked action potential, broader half‐width of evoked action potential, and smaller currents of BK channels than those from the WT mice. NS11021, a specific BK channel opener, reduced neuronal excitability in the NIPA2‐knockout mice. Paxilline, a selective BK channel blocker, treated WT neurons and could simulate the situation of NIPA2‐knockout group, thereby suggesting that the absence of NIPA2 enhanced the excitability of neocortical somatosensory pyramidal neurons by decreasing the currents of BK channels. Zonisamide, an anti‐epilepsy drug, reduced action potential firing in NIPA2‐knockout mice through increasing BK channel currents. CONCLUSION: The results indicate that the absence of NIPA2 enhances neural excitability through BK channels. Zonisamide is probably a potential treatment for NIPA2 mutation‐induced epilepsy, which may provide a basis for the development of new treatment strategies for epilepsy.
format Online
Article
Text
id pubmed-6630003
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-66300032019-08-07 The absence of NIPA2 enhances neural excitability through BK (big potassium) channels Liu, Na‐Na Xie, Han Xiang‐wei, Wen‐Shu Gao, Kai Wang, Tian‐Shuang Jiang, Yu‐Wu CNS Neurosci Ther Original Articles AIM: To reveal the pathogenesis and find the precision treatment for the childhood absence epilepsy (CAE) patients with NIPA2 mutations. METHODS: We performed whole‐cell patch‐clamp recordings to measure the electrophysiological properties of layer V neocortical somatosensory pyramidal neurons in wild‐type (WT) and NIPA2‐knockout mice. RESULTS: We identified that layer V neocortical somatosensory pyramidal neurons isolated from the NIPA2‐knockout mice displayed higher frequency of spontaneous and evoked action potential, broader half‐width of evoked action potential, and smaller currents of BK channels than those from the WT mice. NS11021, a specific BK channel opener, reduced neuronal excitability in the NIPA2‐knockout mice. Paxilline, a selective BK channel blocker, treated WT neurons and could simulate the situation of NIPA2‐knockout group, thereby suggesting that the absence of NIPA2 enhanced the excitability of neocortical somatosensory pyramidal neurons by decreasing the currents of BK channels. Zonisamide, an anti‐epilepsy drug, reduced action potential firing in NIPA2‐knockout mice through increasing BK channel currents. CONCLUSION: The results indicate that the absence of NIPA2 enhances neural excitability through BK channels. Zonisamide is probably a potential treatment for NIPA2 mutation‐induced epilepsy, which may provide a basis for the development of new treatment strategies for epilepsy. John Wiley and Sons Inc. 2019-03-20 /pmc/articles/PMC6630003/ /pubmed/30895737 http://dx.doi.org/10.1111/cns.13119 Text en © 2019 The Authors. CNS Neuroscience & Therapeutics Published by John Wiley & Sons Ltd. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Liu, Na‐Na
Xie, Han
Xiang‐wei, Wen‐Shu
Gao, Kai
Wang, Tian‐Shuang
Jiang, Yu‐Wu
The absence of NIPA2 enhances neural excitability through BK (big potassium) channels
title The absence of NIPA2 enhances neural excitability through BK (big potassium) channels
title_full The absence of NIPA2 enhances neural excitability through BK (big potassium) channels
title_fullStr The absence of NIPA2 enhances neural excitability through BK (big potassium) channels
title_full_unstemmed The absence of NIPA2 enhances neural excitability through BK (big potassium) channels
title_short The absence of NIPA2 enhances neural excitability through BK (big potassium) channels
title_sort absence of nipa2 enhances neural excitability through bk (big potassium) channels
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6630003/
https://www.ncbi.nlm.nih.gov/pubmed/30895737
http://dx.doi.org/10.1111/cns.13119
work_keys_str_mv AT liunana theabsenceofnipa2enhancesneuralexcitabilitythroughbkbigpotassiumchannels
AT xiehan theabsenceofnipa2enhancesneuralexcitabilitythroughbkbigpotassiumchannels
AT xiangweiwenshu theabsenceofnipa2enhancesneuralexcitabilitythroughbkbigpotassiumchannels
AT gaokai theabsenceofnipa2enhancesneuralexcitabilitythroughbkbigpotassiumchannels
AT wangtianshuang theabsenceofnipa2enhancesneuralexcitabilitythroughbkbigpotassiumchannels
AT jiangyuwu theabsenceofnipa2enhancesneuralexcitabilitythroughbkbigpotassiumchannels
AT liunana absenceofnipa2enhancesneuralexcitabilitythroughbkbigpotassiumchannels
AT xiehan absenceofnipa2enhancesneuralexcitabilitythroughbkbigpotassiumchannels
AT xiangweiwenshu absenceofnipa2enhancesneuralexcitabilitythroughbkbigpotassiumchannels
AT gaokai absenceofnipa2enhancesneuralexcitabilitythroughbkbigpotassiumchannels
AT wangtianshuang absenceofnipa2enhancesneuralexcitabilitythroughbkbigpotassiumchannels
AT jiangyuwu absenceofnipa2enhancesneuralexcitabilitythroughbkbigpotassiumchannels