Functional differences in Na+ channel gating between fast‐spiking interneurones and principal neurones of rat hippocampus
Open Access
- 1 December 1997
- journal article
- research article
- Published by Wiley in The Journal of Physiology
- Vol. 505 (3) , 593-603
- https://doi.org/10.1111/j.1469-7793.1997.593ba.x
Abstract
1 GABAergic interneurones differ from glutamatergic principal neurones in their ability to discharge high‐frequency trains of action potentials without adaptation. To examine whether Na+ channel gating contributed to these differences, Na+ currents were recorded in nucleated patches from interneurones (dentate gyrus basket cells, BCs) and principal neurones (CA1 pyramidal cells, PCs) of rat hippocampal slices. 2 The voltage dependence of Na+ channel activation in BCs and PCs was similar. The slope factors of the activation curves, fitted with Boltzmann functions raised to the third power, were 11.5 and 11.8 mV, and the mid‐point potentials were −25.1 and −23.9 mV, respectively. 3 Whereas the time course of Na+ channel activation (−30 to +40 mV) was similar, the deactivation kinetics (−100 to −40 mV) were faster in BCs than in PCs (tail current decay time constants, 0.13 and 0.20 ms, respectively, at −40 mV). 4 Na+ channels in BCs and PCs differed in the voltage dependence of inactivation. The slope factors of the steady‐state inactivation curves fitted with Boltzmann functions were 6.7 and 10.7 mV, and the mid‐point potentials were −58.3 and −62.9 mV, respectively. 5 The onset of Na+ channel inactivation at −55 mV was slower in BCs than in PCs; the inactivation time constants were 18.6 and 9.3 ms, respectively. At more positive potentials the differences in inactivation onset were smaller. 6 The time course of recovery of Na+ channels from inactivation induced by a 30 ms pulse was fast and mono‐exponential (τ= 2.0 ms at −120 mV) in BCs, whereas it was slower and bi‐exponential in PCs (τ1= 2.0 ms and τ2= 133 ms; amplitude contribution of the slow component, 15%). 7 We conclude that Na+ channels of BCs and PCs differ in gating properties that contribute to the characteristic action potential patterns of the two types of neurones.Keywords
This publication has 44 references indexed in Scilit:
- A mechanism for generation of long-range synchronous fast oscillations in the cortexNature, 1996
- Influence of dendritic structure on firing pattern in model neocortical neuronsNature, 1996
- Muscarinic Modulation of Sodium Current by Activation of Protein Kinase C in Rat Hippocampal NeuronsNeuron, 1996
- Strategy for rapid immobilization of prey by a fish-hunting marine snailNature, 1996
- Active Properties of Neuronal DendritesAnnual Review of Neuroscience, 1996
- Activity-Dependent Action Potential Invasion and Calcium Influx into Hippocampal CA1 DendritesScience, 1995
- A High Degree of Spatial Selectivity in the Axonal and Dendritic Domains of Physiologically Identified Local‐circuit Neurons in the Dentate Gyms of the Rat HippocampusEuropean Journal of Neuroscience, 1993
- Primary structure and functional expression of the beta 1 subunit of the rat brain sodium channelScience, 1992
- Temperature dependence of gating current in myelinated nerve fibersThe Journal of Membrane Biology, 1989
- The sodium current underlying action potentials in guinea pig hippocampal CA1 neurons.The Journal of general physiology, 1988