Molecular determinants of emerging excitability in rat embryonic motoneurons
- 1 May 2002
- journal article
- Published by Wiley in The Journal of Physiology
- Vol. 541 (1) , 25-39
- https://doi.org/10.1113/jphysiol.2001.013371
Abstract
Molecular determinants of excitability were studied in pure cultures of rat embryonic motoneurons. Using RT-PCR, we have shown here that the spike-generating Na(+) current is supported by Nav1.2 and/or Nav1.3 alpha-subunits. Nav1.1 and Nav1.6 transcripts were also identified. We have demonstrated that alternatively spliced isoforms of Nav1.1 and Nav1.6, resulting in truncated proteins, were predominant during the first week in culture. However, Nav1.6 protein could be detected after 12 days in vitro. The Nav beta 2.1 transcript was not detected, whereas the Nav beta 1.1 transcript was present. Even in the absence of Nav beta 2.1, alpha-subunits were correctly inserted into the initial segment. RT-PCR (at semi-quantitative and single-cell levels) and immunocytochemistry showed that transient K(+) currents result from the expression of Kv4.2 and Kv4.3 subunits. This is the first identification of subunits responsible for a transient K(+) current in spinal motoneurons. The blockage of Kv4.2/Kv4.3 using a specific toxin modified the shape of the action potential demonstrating the involvement of these conductance channels in regulating spike repolarization and the discharge frequency. Among the other Kv alpha-subunits (Kv1.3, 1.4, 1.6, 2.1, 3.1 and 3.3), we showed that the Kv1.6 subunit was partly responsible for the sustained K(+) current. In conclusion, this study has established the first correlation between the molecular nature of voltage-dependent Na(+) and K(+) channels expressed in embryonic rat motoneurons in culture and their electrophysiological characteristics in the period when excitability appears.Keywords
This publication has 68 references indexed in Scilit:
- Immunolocalization of sodium channel isoform NaCh6 in the nervous systemJournal of Comparative Neurology, 2000
- Cloning, Localization, and Functional Expression of Sodium Channel β1A SubunitsPublished by Elsevier ,2000
- Molecular cloning and tissue distribution of an alternatively spliced variant of an A‐type K+ channel α‐subunit, Kv4.3 in the ratFEBS Letters, 1997
- Recent studies on dendrotoxins and potassium ion channelsGeneral Pharmacology: The Vascular System, 1997
- Neurotrophic Survival Molecules for Motoneurons: An Embarrassment of RichesNeuron, 1996
- Suppression of neuronal potassium A‐current by arachidonic acidFEBS Letters, 1993
- Developmental expression of voltage-dependent calcium currents in identified mouse motoneuronsDevelopmental Biology, 1992
- AMPA receptor subunits expressed by single purkinje cellsNeuron, 1992
- Molecular cloning and functional expression of a potassium channel cDNA isolated from a rat cardiac libraryFEBS Letters, 1990
- Early development of voltage-dependent sodium currents in cultured mouse spinal cord neuronsDevelopmental Biology, 1986