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Modulation of TTX-sensitive voltage-dependent Na(+ )channels by β-bungarotoxin in rat cerebellar neurons

BACKGROUND: The modulation of voltage-dependent Na(+ )channels by lipid metabolites such as arachidonic acid or eicosanoids plays a role in physiological functions as well as in degenerative diseases. So far TTX-resistant channels were found mainly to be regulated by lipid metabolites. RESULTS: We i...

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Autores principales: Guo, Da, Xiang, Wei, Seebahn, Angela, Becker, Cord-Michael, Strauß, Olaf
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3338087/
https://www.ncbi.nlm.nih.gov/pubmed/22458914
http://dx.doi.org/10.1186/1471-2202-13-36
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author Guo, Da
Xiang, Wei
Seebahn, Angela
Becker, Cord-Michael
Strauß, Olaf
author_facet Guo, Da
Xiang, Wei
Seebahn, Angela
Becker, Cord-Michael
Strauß, Olaf
author_sort Guo, Da
collection PubMed
description BACKGROUND: The modulation of voltage-dependent Na(+ )channels by lipid metabolites such as arachidonic acid or eicosanoids plays a role in physiological functions as well as in degenerative diseases. So far TTX-resistant channels were found mainly to be regulated by lipid metabolites. RESULTS: We investigated the lipid-dependent modulation of TTX-sensitive (TTX-s) Na(+ )channels using β-bungarotoxin (β-BuTX, 10 pM), which has an intrinsic phospholipase-A2 activity, and indomethacin (10 μM), which blocks cyclooxygenase activity in primary cerebellar neurons. To investigate TTX-s Na(+ )channels, whole-currents were measured under K(+)-free conditions and blocked by 10 nM TTX. The currents resulting from calculating the difference of currents measured in the presence and the absence of TTX were used for further analysis. Application of indomethacin mainly changed the current kinetics but has only minor effects on voltage-dependence. In contrast β-BuTX increased the maximal current amplitude and shifted the voltage-dependent activation towards more negative potentials. The effects of β-BuTX were blocked by indomethacin. Analysis of lipid metabolites which accumulate by treatment with β-BuTX using MALDI-TOF MS showed an increase of cyclooxygenase reaction products in relation to arachidonic acid. CONCLUSIONS: In summary, we conclude that TTX-sensitive Na(+ )channels can be directly modulated by cyclooxygenase reaction products leading to higher activity at less depolarized potentials and subsequent higher excitability of neurons. Since activation of cyclooxygenase is also involved in pathways leading to apoptotic cells death this could play a role in degenerative diseases of the CNS and highlights a possible protective effect of cyclooxygenase inhibition.
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spelling pubmed-33380872012-04-27 Modulation of TTX-sensitive voltage-dependent Na(+ )channels by β-bungarotoxin in rat cerebellar neurons Guo, Da Xiang, Wei Seebahn, Angela Becker, Cord-Michael Strauß, Olaf BMC Neurosci Research Article BACKGROUND: The modulation of voltage-dependent Na(+ )channels by lipid metabolites such as arachidonic acid or eicosanoids plays a role in physiological functions as well as in degenerative diseases. So far TTX-resistant channels were found mainly to be regulated by lipid metabolites. RESULTS: We investigated the lipid-dependent modulation of TTX-sensitive (TTX-s) Na(+ )channels using β-bungarotoxin (β-BuTX, 10 pM), which has an intrinsic phospholipase-A2 activity, and indomethacin (10 μM), which blocks cyclooxygenase activity in primary cerebellar neurons. To investigate TTX-s Na(+ )channels, whole-currents were measured under K(+)-free conditions and blocked by 10 nM TTX. The currents resulting from calculating the difference of currents measured in the presence and the absence of TTX were used for further analysis. Application of indomethacin mainly changed the current kinetics but has only minor effects on voltage-dependence. In contrast β-BuTX increased the maximal current amplitude and shifted the voltage-dependent activation towards more negative potentials. The effects of β-BuTX were blocked by indomethacin. Analysis of lipid metabolites which accumulate by treatment with β-BuTX using MALDI-TOF MS showed an increase of cyclooxygenase reaction products in relation to arachidonic acid. CONCLUSIONS: In summary, we conclude that TTX-sensitive Na(+ )channels can be directly modulated by cyclooxygenase reaction products leading to higher activity at less depolarized potentials and subsequent higher excitability of neurons. Since activation of cyclooxygenase is also involved in pathways leading to apoptotic cells death this could play a role in degenerative diseases of the CNS and highlights a possible protective effect of cyclooxygenase inhibition. BioMed Central 2012-03-29 /pmc/articles/PMC3338087/ /pubmed/22458914 http://dx.doi.org/10.1186/1471-2202-13-36 Text en Copyright ©2012 Guo et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Guo, Da
Xiang, Wei
Seebahn, Angela
Becker, Cord-Michael
Strauß, Olaf
Modulation of TTX-sensitive voltage-dependent Na(+ )channels by β-bungarotoxin in rat cerebellar neurons
title Modulation of TTX-sensitive voltage-dependent Na(+ )channels by β-bungarotoxin in rat cerebellar neurons
title_full Modulation of TTX-sensitive voltage-dependent Na(+ )channels by β-bungarotoxin in rat cerebellar neurons
title_fullStr Modulation of TTX-sensitive voltage-dependent Na(+ )channels by β-bungarotoxin in rat cerebellar neurons
title_full_unstemmed Modulation of TTX-sensitive voltage-dependent Na(+ )channels by β-bungarotoxin in rat cerebellar neurons
title_short Modulation of TTX-sensitive voltage-dependent Na(+ )channels by β-bungarotoxin in rat cerebellar neurons
title_sort modulation of ttx-sensitive voltage-dependent na(+ )channels by β-bungarotoxin in rat cerebellar neurons
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3338087/
https://www.ncbi.nlm.nih.gov/pubmed/22458914
http://dx.doi.org/10.1186/1471-2202-13-36
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