Abstract
Prior studies of thalamic neurons have demonstrated that they exhibit at least two response modes: a relay mode and a burst mode. During the relay mode, sensory information is faithfully relayed to cortex; during the burst mode, which is caused by a voltage-dependent Ca2+ conductance, this relay of sensory information is interrupted. We began in vivo studies of these response modes in neurons from the lateral geniculate nucleus of anesthetized, paralyzed cats. Each of the 9 X and 10 Y cells we recorded intracellularly displayed voltage-dependent, low threshold spikes that were presumably the Ca2+ spikes described from in vitro recording. These spikes were triangular in waveform and typically had 2-7 fast action potentials (interspike intervals of 1.2-4 ms) riding its crest. Furthermore, the cell's membrane had to be hyperpolarized to de-inactivate the low threshold spike before a depolarization could then activate it. We could activate these low threshold spikes in Y cells from EPSPs, whether spontaneous or evoked from activation of the optic chiasm. However, in only one of the X cells could we activate low threshold spikes from chiasm shock; in the remainder, we could activate low threshold spikes only via depolarizing current pulses, possibly because the EPSPs of these X cells were too small to activate these spikes. We also used extracellular recording to study spontaneous activity and responses to chiasm shock from 114 geniculate neurons and, as a control, 57 optic tract axons. We concentrated on periods of bursty responsiveness signifying the burst mode. We define a burst as 2-7 action potentials with interspike intervals less than or equal to 4 ms, and the bursts are separated by greater than 100 ms; from our intracellular recording, we know that such bursts signify low threshold spikes. We found that, during extracellular recording, 20 of the 39 X cells and each of the 75 Y cells displayed evidence of the burst response mode, although burst periods were rare in X cells. Electrical activation of the optic chiasm greatly enhanced the burstiness of Y cells for periods of 500 ms or more. We also electrically stimulated the parabrachial region of the midbrain, which provides a mostly cholinergic innervation to the lateral geniculate nucleus. Although parabrachial activation by itself had no detectable effect on Y cell response modes, prior parabrachial activation prevented the enhanced burstiness caused by chiasm stimulation. This parabrachial effect lasted for roughly 500 ms after stimulation.(ABSTRACT TRUNCATED AT 400 WORDS)
MeSH Terms
Action Potentials/physiology
Anesthesia
Animals
Axons/physiology
Cats
Electric Stimulation
Electrodes
Evoked Potentials/physiology
Geniculate Bodies/cytology,physiology
Membrane Potentials/physiology
Mesencephalon/cytology,physiology
Neurons/physiology
Optic Chiasm/physiology
Synapses/physiology
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Lo F S
Department of Neurobiology, State University of New York, Stony Brook 11794-5230.
Lu S M
Sherman S M
References (30)
30 references, click to expand
-
Quantitative studies of intracellular postsynaptic potentials in the lateral geniculate nucleus of the cat with respect to optic tract stimulus response latencies.
Exp Brain Res. 1976 Jul 28;25:469-86
PMID: 182514
-
The control of retinogeniculate transmission in the mammalian lateral geniculate nucleus.
Exp Brain Res. 1986;63(1):1-20
PMID: 3015651
-
Effects of sleep and arousal on the processing of visual information in the cat.
Nature. 1981 Jun 18;291(5816):554-61
PMID: 6165893
-
Projections of cholinergic and non-cholinergic neurons of the brainstem core to relay and associational thalamic nuclei in the cat and macaque monkey.
Neuroscience. 1988 Apr;25(1):47-67
PMID: 3393286
-
Cholinergic and non-cholinergic projections from the upper brainstem core to the visual thalamus in the cat.
Exp Brain Res. 1988;70(1):166-80
PMID: 2841149
-
The functional states of the thalamus and the associated neuronal interplay.
Physiol Rev. 1988 Jul;68(3):649-742
PMID: 2839857
-
A T-type Ca2+ current underlies low-threshold Ca2+ potentials in cells of the cat and rat lateral geniculate nucleus.
J Physiol. 1989 Jun;413:543-61
PMID: 2557441
-
Electrophysiology of neurons of lateral thalamic nuclei in cat: resting properties and burst discharges.
J Neurophysiol. 1984 Jun;51(6):1196-219
PMID: 6737028
-
Control of thalamic transmission by corticofugal and ascending reticular pathways in the visual system.
Physiol Rev. 1977 Jul;57(3):386-420
PMID: 196301
-
Postsynaptic potentials recorded in neurons of the cat's lateral geniculate nucleus following electrical stimulation of the optic chiasm.
J Neurophysiol. 1988 Dec;60(6):1924-45
PMID: 3236056
-
The brainstem projection to the lateral geniculate nucleus in the cat: identification of cholinergic and monoaminergic elements.
J Comp Neurol. 1987 May 1;259(1):92-121
PMID: 2884241
-
Spatial frequency analysis in the visual system.
Annu Rev Neurosci. 1985;8:547-83
PMID: 3920946
-
Actions of acetylcholine in the guinea-pig and cat medial and lateral geniculate nuclei, in vitro.
J Physiol. 1987 Nov;392:147-65
PMID: 2833597
-
Passive cable properties and morphological correlates of neurones in the lateral geniculate nucleus of the cat.
J Physiol. 1987 Feb;383:653-92
PMID: 3309260
-
Parallel visual pathways: a review.
Vision Res. 1980;20(7):561-94
PMID: 7434593
-
The effects of brainstem peribrachial stimulation on perigeniculate neurons: the blockage of spindle waves.
Neuroscience. 1989;31(1):1-12
PMID: 2771051
-
Ionic basis for the electro-responsiveness and oscillatory properties of guinea-pig thalamic neurones in vitro.
J Physiol. 1984 Apr;349:227-47
PMID: 6737293
-
The cellular mechanism of thalamic ponto-geniculo-occipital waves.
Neuroscience. 1989;31(1):25-35
PMID: 2771060
-
Single unit activity in lateral geniculate body and optic tract of unrestrained cats.
J Physiol. 1960 Jan;150:91-104
PMID: 14403680
-
Dependence of Retinogeniculate Transmission on Membrane Voltage in the Cat.
Eur J Neurosci. 1989 May;1(3):204-209
PMID: 12106152
-
Integrative action in the cat's lateral geniculate body.
J Physiol. 1961 Feb;155:385-98
PMID: 13716436
-
Electrophysiological properties of guinea-pig thalamic neurones: an in vitro study.
J Physiol. 1984 Apr;349:205-26
PMID: 6737292
-
The projection of individual axons from the parabrachial region of the brain stem to the dorsal lateral geniculate nucleus in the cat.
J Neurosci. 1988 Dec;8(12):4565-75
PMID: 2848936
-
The cholinergic influence on the function of the cat dorsal lateral geniculate nucleus (dLGN).
Brain Res. 1983 Dec 5;280(2):299-307
PMID: 6652490
-
In vivo recording of postsynaptic potentials and low threshold spikes in W cells of the cat's lateral geniculate nucleus.
Exp Brain Res. 1990;81(2):438-42
PMID: 2397769
-
Lateral geniculate nucleus unitary discharge in sleep and waking: state- and rate-specific aspects.
J Neurophysiol. 1983 Oct;50(4):798-818
PMID: 6631464
-
The effects of brainstem peribrachial stimulation on neurons of the lateral geniculate nucleus.
Neuroscience. 1989;31(1):13-24
PMID: 2771054
-
Acetylcholine inhibits identified interneurons in the cat lateral geniculate nucleus.
Nature. 1988 Jul 21;334(6179):246-8
PMID: 3398922
-
Extraretinal influences on the lateral geniculate nucleus.
Rev Physiol Biochem Pharmacol. 1978;80:105-66
PMID: 24886
-
The cholinergic innervation of the visual thalamus: an EM immunocytochemical study.
Exp Brain Res. 1985;59(1):206-12
PMID: 2990983