Reopening of Ca2+ channels in mouse cerebellar neurons at resting membrane potentials during Recovery from Inactivation

Recordings of single-channel activity from cerebellar granule cells show that a component of Ca2+ entry flows through L-type Ca2+ channels that are closed at negative membrane potentials following a strong depolarization, but then open after a delay. The delayed openings can be explained if membrane...

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Veröffentlicht in:Neuron (Cambridge, Mass.) Mass.), 1991-11, Vol.7 (5), p.755-762
Hauptverfasser: Slesinger, Paul A., Lansman, Jeffry B.
Format: Artikel
Sprache:eng
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Zusammenfassung:Recordings of single-channel activity from cerebellar granule cells show that a component of Ca2+ entry flows through L-type Ca2+ channels that are closed at negative membrane potentials following a strong depolarization, but then open after a delay. The delayed openings can be explained if membrane depolarization drives Ca2+ channels into an inactivated state and some channels return to rest through the open state after repolarization. Whole-cell recordings show that the charge carried by Ca2+ during the tail increases as inactivation progresses, whereas the current during the voltage step decreases. Voltage-dependent inactivation may be a general mechanism in central neurons for enhancing Ca2+ entry by delaying it until after repolarization, when the driving force for ion entry is large. Modifying the rate and extent of inactivation would have large effects on Ca2+ entry through those channels that recover from inactivation by passing through the open state.
ISSN:0896-6273
1097-4199
DOI:10.1016/0896-6273(91)90278-8