Literature DB >> 12890510

Developmental regulation of the A-type potassium-channel current in hippocampal neurons: role of the Kvbeta 1.1 subunit.

T Falk1, R K Kilani, L A Strazdas, R S Borders, J V Steidl, A J Yool, S J Sherman.   

Abstract

The rapidly inactivating A-type K+ current (IA) is prominent in hippocampal neurons; and the speed of its inactivation may regulate electrical excitability. The auxiliary K+ channel subunit Kvbeta 1.1 confers fast inactivation to Shaker-related channels and is postulated to affect IA. Whole-cell patch clamp recordings of rat hippocampal pyramidal neurons in primary culture showed a developmental decrease in the time constant of inactivation (tau(in)) of voltage-gated K+ currents: 17.9+/-1.5 ms in young neurons (5-7 days in vitro; n=53, mean+/-S.E.M.); 9.9+/-1.0 ms in mature neurons (12-15 days in vitro; n=72, mean+/-S.E.M., P<0.01). During the same developmental time, the level of Kvbeta 1.1 transcript increased more than two-fold in vitro and in vivo, determined by semi-quantitative reverse transcriptase-polymerase chain reaction for hippocampus. The hypothesis that up-regulation of Kvbeta 1.1 led to the changes in tau(in) was tested in vitro, using antisense knockdown. Kvbeta 1.1-specific antisense DNA was introduced with a modified herpes virus co-expressing enhanced green fluorescent protein and knockdown of Kvbeta 1.1 was verified by immunocytochemistry. Following transduction with the antisense virus, mature neurons reverted to tau(in) values characteristic of young neurons: 18.3+/-2.4 ms (n=20). The effect of antisense knockdown on electrical excitability was tested using current-clamp protocols to induce repetitive firing. Treatment with the antisense virus increased the interspike interval over a range of membrane depolarization (baseline membrane potential=-40 to +20 mV). This effect was most pronounced at -40 mV, where the ISI of the first pair of action potentials was nearly doubled. These data indicate that Kvbeta 1.1 contributes to the developmental control of IA in hippocampal neurons and that the magnitude of effect is sufficient to regulate electrical excitability. Viral-mediated antisense knockdown of Kvbeta 1.1 is capable of decreasing the electrical excitability of post-mitotic hippocampal neurons, suggesting this approach has applicability to gene therapy of neurological diseases associated with hyperexcitability.

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Year:  2003        PMID: 12890510     DOI: 10.1016/s0306-4522(03)00044-7

Source DB:  PubMed          Journal:  Neuroscience        ISSN: 0306-4522            Impact factor:   3.590


  8 in total

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2.  Attenuating Ischemic Disruption of K+ Homeostasis in the Cortex of Hypoxic-Ischemic Neonatal Rats: DOR Activation vs. Acupuncture Treatment.

Authors:  Dongman Chao; Qinyu Wang; Gianfranco Balboni; Guanghong Ding; Ying Xia
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3.  Neurochemical and electrophysiological characteristics of rat striatal neurons in primary culture.

Authors:  Torsten Falk; Shiling Zhang; Emilie L Erbe; Scott J Sherman
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4.  Postnatal development of A-type and Kv1- and Kv2-mediated potassium channel currents in neocortical pyramidal neurons.

Authors:  Dongxu Guan; Leslie R Horton; William E Armstrong; Robert C Foehring
Journal:  J Neurophysiol       Date:  2011-03-30       Impact factor: 2.714

Review 5.  Hyperpolarization activated cyclic-nucleotide gated (HCN) channels in developing neuronal networks.

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Journal:  Prog Neurobiol       Date:  2008-09-11       Impact factor: 11.685

6.  Electrophysiological Properties of Melanin-Concentrating Hormone and Orexin Neurons in Adolescent Rats.

Authors:  Victoria Linehan; Michiru Hirasawa
Journal:  Front Cell Neurosci       Date:  2018-03-13       Impact factor: 5.505

7.  Saikosaponin a Enhances Transient Inactivating Potassium Current in Rat Hippocampal CA1 Neurons.

Authors:  Wei Xie; Yun Hong Yu; Yong Ping Du; Yun Yan Zhao; Chang Zheng Li; Lin Yu; Jian Hong Duan; Jun Ling Xing
Journal:  Evid Based Complement Alternat Med       Date:  2013-02-21       Impact factor: 2.629

8.  The contribution of Kv2.2-mediated currents decreases during the postnatal development of mouse dorsal root ganglion neurons.

Authors:  Glenn Regnier; Elke Bocksteins; Gerda Van de Vijver; Dirk J Snyders; Pierre-Paul van Bogaert
Journal:  Physiol Rep       Date:  2016-03-31
  8 in total

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