Electrophysiological properties of neurons in the lateral habenula nucleus: an in vitro study
- 1 January 1988
- journal article
- research article
- Published by American Physiological Society in Journal of Neurophysiology
- Vol. 59 (1) , 212-225
- https://doi.org/10.1152/jn.1988.59.1.212
Abstract
1. The electroresponsive characteristics of neurons in the lateral habenula were studied with intracellular recordings in a brain slice preparation of guinea pig diencephalon maintained in vitro. One hundred and two neurons met the criteria for recording stability, and of these, 18 were analyzed in detail. For these 18 neurons, the mean resting membrane potential was -61.9 mV, the mean input resistance was 124 M omega, and the mean spike amplitude of fast action potentials was 60.3 mV. 2. Lateral habenula neurons were found to have distinct patterns of activity dependent on membrane potential. At membrane potentials more positive than -65 mV, depolarization elicited trains of sodium-dependent fast action potentials. At membrane potentials more negative than -65 mV, slight depolarization elicited a tetrodotoxin-insensitive wave of depolarization, called a low-threshold spike (LTS), from which a burst of fast action potentials were triggered. The principal conductance underlying the LTS is a low-threshold calcium conductance, which is inactivated at membrane potential more positive than -65 mV and deinactivated when the membrane is hyperpolarized to potentials more negative than -65 V. 3. Upon termination of injected hyperpolarizing current, many neurons displayed oscillation in membrane potential at a frequency of 3–10 Hz, thereby generating repetitive bursts of fast spikes. 4. The pattern of neuronal activity in lateral habenula neurons was highly sensitive to slight alterations in membrane potential. The ability of these neurons to fire action potentials in two modes, tonically and in bursts, and the propensity of these neurons to dramatically alter their output in response to transient hyperpolarizing input, indicate that transmission through this relay in the dorsal diencephalic conduction system may be greatly augmented by relatively small hyperpolarizing influences on the individual neurons.This publication has 20 references indexed in Scilit:
- Thalamic bursting mechanism: an inward slow current revealed by membrane hyperpolarizationPublished by Elsevier ,2003
- Ionic requirements for membrane oscillations and their dependence on the calcium concentration in a molluscan pace‐maker neuroneThe Journal of Physiology, 1982
- Extracellular Potassium Ions Mediate Specific Neuronal InteractionScience, 1982
- Properties and distribution of ionic conductances generating electroresponsiveness of mammalian inferior olivary neurones in vitro.The Journal of Physiology, 1981
- Electrophysiology of mammalian inferior olivary neurones in vitro. Different types of voltage‐dependent ionic conductances.The Journal of Physiology, 1981
- Efferent connections of the habenular nuclei in the ratJournal of Comparative Neurology, 1979
- Functional connections between cells as revealed by dye-coupling with a highly fluorescent naphthalimide tracerPublished by Elsevier ,1978
- Physiological Evidence for Habenula as Major Link Between Forebrain and Midbrain RapheScience, 1977
- Afferent connections of the habenular nuclei in the rat. A horseradish peroxidase study, with a note on the fiber‐of‐passage problemJournal of Comparative Neurology, 1977
- A Golgi study on the habenular nucleus of the catJournal of Comparative Neurology, 1977