Ion Channels Generating Complex Spikes in Cartwheel Cells of the Dorsal Cochlear Nucleus
Open Access
- 1 February 2007
- journal article
- Published by American Physiological Society in Journal of Neurophysiology
- Vol. 97 (2) , 1705-1725
- https://doi.org/10.1152/jn.00536.2006
Abstract
Cartwheel cells are glycinergic interneurons that modify somatosensory input to the dorsal cochlear nucleus. They are characterized by firing of mixtures of both simple and complex action potentials. To understand what ion channels determine the generation of these two types of spike waveforms, we recorded from cartwheel cells using the gramicidin perforated-patch technique in brain slices of mouse dorsal cochlear nucleus and applied channel-selective blockers. Complex spikes were distinguished by whether they arose directly from a negative membrane potential or later during a long depolarization. Ca2+ channels and Ca2+-dependent K+ channels were major determinants of complex spikes. Onset complex spikes required T-type and possibly R-type Ca2+ channels and were shaped by BK and SK K+ channels. Complex spikes arising later in a depolarization were dependent on P/Q- and L-type Ca2+ channels as well as BK and SK channels. BK channels also contributed to fast repolarization of simple spikes. Simple spikes featured an afterdepolarization that is probably the trigger for complex spiking and is shaped by T/R-type Ca2+ and SK channels. Fast spikes were dependent on Na+ channels; a large persistent Na+ current may provide a depolarizing drive for spontaneous activity in cartwheel cells. Thus the diverse electrical behavior of cartwheel cells is determined by the interaction of a wide variety of ion channels with a prominent role played by Ca2+.Keywords
This publication has 72 references indexed in Scilit:
- Interaction of Kv3 Potassium Channels and Resurgent Sodium Current Influences the Rate of Spontaneous Firing of Purkinje NeuronsJournal of Neuroscience, 2006
- Physiological characterization, localization and synaptic inputs of bursting and nonbursting neurons in the trigeminal principal sensory nucleus of the ratEuropean Journal of Neuroscience, 2005
- Cell-specific, spike timing–dependent plasticities in the dorsal cochlear nucleusNature Neuroscience, 2004
- What's a cerebellar circuit doing in the auditory system?Trends in Neurosciences, 2004
- Thalamic bursting mechanism: an inward slow current revealed by membrane hyperpolarizationPublished by Elsevier ,2003
- High affinity interaction of mibefradil with voltage‐gated calcium and sodium channelsBritish Journal of Pharmacology, 2000
- A neuronal β subunit (KCNMB4) makes the large conductance, voltage- and Ca 2+ -activated K + channel resistant to charybdotoxin and iberiotoxinProceedings of the National Academy of Sciences, 2000
- SLEEP AND AROUSAL: Thalamocortical MechanismsAnnual Review of Neuroscience, 1997
- Physiology and morphology of complex spiking neurons in the guinea pig dorsal cochlear nucleusJournal of Comparative Neurology, 1994
- The Purkinje cell class may extend beyond the cerebellumJournal of Neurocytology, 1990