Cargando…

Blockade of Persistent Sodium Currents Contributes to the Riluzole-Induced Inhibition of Spontaneous Activity and Oscillations in Injured DRG Neurons

In addition to a fast activating and immediately inactivating inward sodium current, many types of excitable cells possess a noninactivating or slowly inactivating component: the persistent sodium current (I(NaP)). The I(NaP) is found in normal primary sensory neurons where it is mediated by tetrodo...

Descripción completa

Detalles Bibliográficos
Autores principales: Xie, Rou-Gang, Zheng, Da-Wei, Xing, Jun-Ling, Zhang, Xu-Jie, Song, Ying, Xie, Ya-Bin, Kuang, Fang, Dong, Hui, You, Si-Wei, Xu, Hui, Hu, San-Jue
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3081829/
https://www.ncbi.nlm.nih.gov/pubmed/21541342
http://dx.doi.org/10.1371/journal.pone.0018681
_version_ 1782202241443168256
author Xie, Rou-Gang
Zheng, Da-Wei
Xing, Jun-Ling
Zhang, Xu-Jie
Song, Ying
Xie, Ya-Bin
Kuang, Fang
Dong, Hui
You, Si-Wei
Xu, Hui
Hu, San-Jue
author_facet Xie, Rou-Gang
Zheng, Da-Wei
Xing, Jun-Ling
Zhang, Xu-Jie
Song, Ying
Xie, Ya-Bin
Kuang, Fang
Dong, Hui
You, Si-Wei
Xu, Hui
Hu, San-Jue
author_sort Xie, Rou-Gang
collection PubMed
description In addition to a fast activating and immediately inactivating inward sodium current, many types of excitable cells possess a noninactivating or slowly inactivating component: the persistent sodium current (I(NaP)). The I(NaP) is found in normal primary sensory neurons where it is mediated by tetrodotoxin-sensitive sodium channels. The dorsal root ganglion (DRG) is the gateway for ectopic impulses that originate in pathological pain signals from the periphery. However, the role of I(NaP) in DRG neurons remains unclear, particularly in neuropathic pain states. Using in vivo recordings from single medium- and large-diameter fibers isolated from the compressed DRG in Sprague-Dawley rats, we show that local application of riluzole, which blocks the I(NaP), also inhibits the spontaneous activity of A-type DRG neurons in a dose-dependent manner. Significantly, riluzole also abolished subthreshold membrane potential oscillations (SMPOs), although DRG neurons still responded to intracellular current injection with a single full-sized spike. In addition, the I(NaP) was enhanced in medium- and large-sized neurons of the compressed DRG, while bath-applied riluzole significantly inhibited the I(NaP) without affecting the transient sodium current (I(NaT)). Taken together, these results demonstrate for the first time that the I(NaP) blocker riluzole selectively inhibits I(NaP) and thereby blocks SMPOs and the ectopic spontaneous activity of injured A-type DRG neurons. This suggests that the I(NaP) of DRG neurons is a potential target for treating neuropathic pain at the peripheral level.
format Text
id pubmed-3081829
institution National Center for Biotechnology Information
language English
publishDate 2011
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-30818292011-05-03 Blockade of Persistent Sodium Currents Contributes to the Riluzole-Induced Inhibition of Spontaneous Activity and Oscillations in Injured DRG Neurons Xie, Rou-Gang Zheng, Da-Wei Xing, Jun-Ling Zhang, Xu-Jie Song, Ying Xie, Ya-Bin Kuang, Fang Dong, Hui You, Si-Wei Xu, Hui Hu, San-Jue PLoS One Research Article In addition to a fast activating and immediately inactivating inward sodium current, many types of excitable cells possess a noninactivating or slowly inactivating component: the persistent sodium current (I(NaP)). The I(NaP) is found in normal primary sensory neurons where it is mediated by tetrodotoxin-sensitive sodium channels. The dorsal root ganglion (DRG) is the gateway for ectopic impulses that originate in pathological pain signals from the periphery. However, the role of I(NaP) in DRG neurons remains unclear, particularly in neuropathic pain states. Using in vivo recordings from single medium- and large-diameter fibers isolated from the compressed DRG in Sprague-Dawley rats, we show that local application of riluzole, which blocks the I(NaP), also inhibits the spontaneous activity of A-type DRG neurons in a dose-dependent manner. Significantly, riluzole also abolished subthreshold membrane potential oscillations (SMPOs), although DRG neurons still responded to intracellular current injection with a single full-sized spike. In addition, the I(NaP) was enhanced in medium- and large-sized neurons of the compressed DRG, while bath-applied riluzole significantly inhibited the I(NaP) without affecting the transient sodium current (I(NaT)). Taken together, these results demonstrate for the first time that the I(NaP) blocker riluzole selectively inhibits I(NaP) and thereby blocks SMPOs and the ectopic spontaneous activity of injured A-type DRG neurons. This suggests that the I(NaP) of DRG neurons is a potential target for treating neuropathic pain at the peripheral level. Public Library of Science 2011-04-25 /pmc/articles/PMC3081829/ /pubmed/21541342 http://dx.doi.org/10.1371/journal.pone.0018681 Text en Xie et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Xie, Rou-Gang
Zheng, Da-Wei
Xing, Jun-Ling
Zhang, Xu-Jie
Song, Ying
Xie, Ya-Bin
Kuang, Fang
Dong, Hui
You, Si-Wei
Xu, Hui
Hu, San-Jue
Blockade of Persistent Sodium Currents Contributes to the Riluzole-Induced Inhibition of Spontaneous Activity and Oscillations in Injured DRG Neurons
title Blockade of Persistent Sodium Currents Contributes to the Riluzole-Induced Inhibition of Spontaneous Activity and Oscillations in Injured DRG Neurons
title_full Blockade of Persistent Sodium Currents Contributes to the Riluzole-Induced Inhibition of Spontaneous Activity and Oscillations in Injured DRG Neurons
title_fullStr Blockade of Persistent Sodium Currents Contributes to the Riluzole-Induced Inhibition of Spontaneous Activity and Oscillations in Injured DRG Neurons
title_full_unstemmed Blockade of Persistent Sodium Currents Contributes to the Riluzole-Induced Inhibition of Spontaneous Activity and Oscillations in Injured DRG Neurons
title_short Blockade of Persistent Sodium Currents Contributes to the Riluzole-Induced Inhibition of Spontaneous Activity and Oscillations in Injured DRG Neurons
title_sort blockade of persistent sodium currents contributes to the riluzole-induced inhibition of spontaneous activity and oscillations in injured drg neurons
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3081829/
https://www.ncbi.nlm.nih.gov/pubmed/21541342
http://dx.doi.org/10.1371/journal.pone.0018681
work_keys_str_mv AT xierougang blockadeofpersistentsodiumcurrentscontributestotheriluzoleinducedinhibitionofspontaneousactivityandoscillationsininjureddrgneurons
AT zhengdawei blockadeofpersistentsodiumcurrentscontributestotheriluzoleinducedinhibitionofspontaneousactivityandoscillationsininjureddrgneurons
AT xingjunling blockadeofpersistentsodiumcurrentscontributestotheriluzoleinducedinhibitionofspontaneousactivityandoscillationsininjureddrgneurons
AT zhangxujie blockadeofpersistentsodiumcurrentscontributestotheriluzoleinducedinhibitionofspontaneousactivityandoscillationsininjureddrgneurons
AT songying blockadeofpersistentsodiumcurrentscontributestotheriluzoleinducedinhibitionofspontaneousactivityandoscillationsininjureddrgneurons
AT xieyabin blockadeofpersistentsodiumcurrentscontributestotheriluzoleinducedinhibitionofspontaneousactivityandoscillationsininjureddrgneurons
AT kuangfang blockadeofpersistentsodiumcurrentscontributestotheriluzoleinducedinhibitionofspontaneousactivityandoscillationsininjureddrgneurons
AT donghui blockadeofpersistentsodiumcurrentscontributestotheriluzoleinducedinhibitionofspontaneousactivityandoscillationsininjureddrgneurons
AT yousiwei blockadeofpersistentsodiumcurrentscontributestotheriluzoleinducedinhibitionofspontaneousactivityandoscillationsininjureddrgneurons
AT xuhui blockadeofpersistentsodiumcurrentscontributestotheriluzoleinducedinhibitionofspontaneousactivityandoscillationsininjureddrgneurons
AT husanjue blockadeofpersistentsodiumcurrentscontributestotheriluzoleinducedinhibitionofspontaneousactivityandoscillationsininjureddrgneurons