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A sodium afterdepolarization in rat superior colliculus neurons and its contribution to population activity

Authors :
Michele A. Basso
Nima Ghitani
Meyer B. Jackson
Peter O. Bayguinov
Source :
Ghitani, N; Bayguinov, PO; Basso, MA; & Jackson, MB. (2016). A sodium afterdepolarization in rat superior colliculus neurons and its contribution to population activity.. Journal of neurophysiology, 116(1), 191-200. doi: 10.1152/jn.01138.2015. UCLA: Retrieved from: http://www.escholarship.org/uc/item/2kq054d1
Publication Year :
2016
Publisher :
American Physiological Society, 2016.

Abstract

The mammalian superior colliculus (SC) is a midbrain structure that integrates multimodal sensory inputs and computes commands to initiate rapid eye movements. SC neurons burst with the sudden onset of a visual stimulus, followed by persistent activity that may underlie shifts of attention and decision making. Experiments in vitro suggest that circuit reverberations play a role in the burst activity in the SC, but the origin of persistent activity is unclear. In the present study we characterized an afterdepolarization (ADP) that follows action potentials in slices of rat SC. Population responses seen with voltage-sensitive dye imaging consisted of rapid spikes followed immediately by a second distinct depolarization of lower amplitude and longer duration. Patch-clamp recordings showed qualitatively similar behavior: in nearly all neurons throughout the SC, rapid spikes were followed by an ADP. Ionic and pharmacological manipulations along with experiments with current and voltage steps indicated that the ADP of SC neurons arises from Na+ current that either persists or resurges following Na+ channel inactivation at the end of an action potential. Comparisons of pharmacological properties and frequency dependence revealed a clear parallel between patch-clamp recordings and voltage imaging experiments, indicating a common underlying membrane mechanism for the ADP in both single neurons and populations. The ADP can initiate repetitive spiking at intervals consistent with the frequency of persistent activity in the SC. These results indicate that SC neurons have intrinsic membrane properties that can contribute to electrical activity that underlies shifts of attention and decision making.

Details

ISSN :
15221598 and 00223077
Volume :
116
Database :
OpenAIRE
Journal :
Journal of Neurophysiology
Accession number :
edsair.doi.dedup.....acca06fcd9bc17fa147515e0ca308848