D2Dopamine Receptor-Mediated Modulation of Voltage-Dependent Na+Channels Reduces Autonomous Activity in Striatal Cholinergic Interneurons
Open Access
- 17 November 2004
- journal article
- Published by Society for Neuroscience in Journal of Neuroscience
- Vol. 24 (46), 10289-10301
- https://doi.org/10.1523/jneurosci.2155-04.2004
Abstract
Striatal cholinergic interneurons are critical elements of the striatal circuitry controlling motor planning, movement, and associative learning. Intrastriatal release of dopamine and inhibition of interneuron activity is thought to be a critical link between behaviorally relevant events, such as reward, and alterations in striatal function. However, the mechanisms mediating this modulation are unclear. Using a combination of electrophysiological, molecular, and computational approaches, the studies reported here show that D2 dopamine receptor modulation of Na+ currents underlying autonomous spiking contributes to a slowing of discharge rate, such as that seen in vivo. Four lines of evidence support this conclusion. First, D2 receptor stimulation in tissue slices reduced the autonomous spiking in the presence of synaptic blockers. Second, in acutely isolated neurons, D2 receptor activation led to a reduction in Na+ currents underlying pacemaking. The modulation was mediated by a protein kinase C-dependent enhancement of channel entry into a slow-inactivated state at depolarized potentials. Third, the sodium channel blocker TTX mimicked the effects of D2 receptor agonists on pacemaking. Fourth, simulation of cholinergic interneuron pacemaking revealed that a modest increase in the entry of Na+ channels into the slow-inactivated state was sufficient to account for the slowing of pacemaker discharge. These studies establish a cellular mechanism linking dopamine and the reduction in striatal cholinergic interneuron activity seen in the initial stages of associative learning.Keywords
This publication has 41 references indexed in Scilit:
- Subthreshold Sodium Currents and Pacemaking of Subthalamic NeuronsNeuron, 2003
- Resurgence of Sodium Channel ResearchAnnual Review of Physiology, 2001
- Inactivation and Recovery of Sodium Currents in Cerebellar Purkinje Neurons: Evidence for Two MechanismsBiophysical Journal, 2001
- D5 Dopamine Receptors Enhance Zn2+-Sensitive GABAA Currents in Striatal Cholinergic Interneurons through a PKA/PP1 CascadeNeuron, 1997
- Structure and function of the β2 subunit of brain sodium channels, a transmembrane glycoprotein with a CAM motifCell, 1995
- The Basal Ganglia and Adaptive Motor ControlScience, 1994
- Effect of the Nigrostriatal Dopamine System on Acquired Neural Responses in the Striatum of Behaving MonkeysScience, 1994
- Synaptic relationships between dopaminergic afferents and cortical or thalamic input in the sensorimotor territory of the striatum in monkeyJournal of Comparative Neurology, 1994
- differential effect of systemic administration of bromocriptine andl-DOPA on the release of acetylcholine from striatum of intact and 6-OHDA-treated ratsBrain Research, 1993
- Dopamine Depletion Preferentially Impairs D1 over D2‐Receptor Regulation of Striatal In Vivo Acetylcholine ReleaseJournal of Neurochemistry, 1992