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PMID: 7807051 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Inactivation of N-type calcium current in chick sensory neurons: calcium and voltage dependence.

The Journal of general physiology ·Vol. 104 ·No. 2 ·1994-08-00 ·Pages 311-36

Cox DH, Dunlap K

Abstract

We have studied the inactivation of high-voltage-activated (HVA), omega-conotoxin-sensitive, N-type Ca2+ current in embryonic chick dorsal root ganglion (DRG) neurons. Voltage steps from -80 to 0 mV produced inward Ca2+ currents that inactivated in a biphasic manner and were fit well with the sum of two exponentials (with time constants of approximately 100 ms and > 1 s). As reported previously, upon depolarization of the holding potential to -40 mV, N current amplitude was significantly reduced and the rapid phase of inactivation all but eliminated (Nowycky, M. C., A. P. Fox, and R. W. Tsien. 1985. Nature. 316:440-443; Fox, A. P., M. C. Nowycky, and R. W. Tsien. 1987a. Journal of Physiology. 394:149-172; Swandulla, D., and C. M. Armstrong. 1988. Journal of General Physiology. 92:197-218; Plummer, M. R., D. E. Logothetis, and P. Hess. 1989. Neuron. 2:1453-1463; Regan, L. J., D. W. Sah, and B. P. Bean. 1991. Neuron. 6:269-280; Cox, D. H., and K. Dunlap. 1992. Journal of Neuroscience. 12:906-914). Such kinetic properties might be explained by a model in which N channels inactivate by both fast and slow voltage-dependent processes. Alternatively, kinetic models of Ca-dependent inactivation suggest that the biphasic kinetics and holding-potential-dependence of N current inactivation could be due to a combination of Ca-dependent and slow voltage-dependent inactivation mechanisms. To distinguish between these possibilities we have performed several experiments to test for the presence of Ca-dependent inactivation. Three lines of evidence suggest that N channels inactivate in a Ca-dependent manner. (a) The total extent of inactivation increased 50%, and the ratio of rapid to slow inactivation increased approximately twofold when the concentration of the Ca2+ buffer, EGTA, in the patch pipette was reduced from 10 to 0.1 mM. (b) With low intracellular EGTA concentrations (0.1 mM), the ratio of rapid to slow inactivation was additionally increased when the extracellular Ca2+ concentration was raised from 0.5 to 5 mM. (c) Substituting Na+ for Ca2+ as the permeant ion eliminated the rapid phase of inactivation. Other results do not support the notion of current-dependent inactivation, however. Although high intracellular EGTA (10 mM) or BAPTA (5 mM) concentrations suppressed the rapid phase inactivation, they did not eliminate it. Increasing the extracellular Ca2+ from 0.5 to 5 mM had little effect on this residual fast inactivation, indicating that it is not appreciably sensitive to Ca2+ influx under these conditions.(ABSTRACT TRUNCATED AT 400 WORDS)

MeSH Terms
Animals Calcium/metabolism Calcium Channel Blockers/pharmacology Calcium Channels/metabolism Cesium/pharmacokinetics Chelating Agents/pharmacology Chick Embryo Electrophysiology Ganglia, Spinal/cytology Kinetics Membrane Potentials/drug effects,physiology Models, Biological Neurons, Afferent/drug effects,metabolism Patch-Clamp Techniques Peptides/pharmacology Sodium/metabolism omega-Conotoxin GVIA
Chemicals
Calcium Channel Blockers Calcium Channels Chelating Agents Peptides Cesium omega-Conotoxin GVIA Sodium Calcium
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Cox D H
Department of Physiology, Tufts University School of Medicine, Boston, Massachusetts 02111.
Dunlap K
Article Info
Journal
The Journal of general physiology
Abbr.
J Gen Physiol
ISSN
0022-1295
Published
1994-08-00
Pages
311-36
Language
English
Region
United States
NLM ID
2985110R
PMCID
PMC2229202
Subset
IM
Grants
NINDS NIH HHS · NS16483 · United States
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