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A slowly activating Ca(2+)-dependent K+ current that plays a role in termination of swimming in Xenopus embryos.
Wall MJ, Dale N.
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1. Acutely isolated Xenopus spinal neurons possess a slowly activating Ca(2+)-dependent outward current which was revealed either by removal of external Ca2+ or by the addition of the Ca2+ channel blocker, 150 microM Cd2+. 2. The Ca(2+)-sensitive current was very slow to activate and had a mean time constant of activation of 437 ms at 0 mV. The current also had very long tail currents which were blocked by Cd2+. The rate of decay of the slowest component of the Ca(2+)-dependent tail currents was insensitive to membrane potential suggesting that the relaxation of the Ca(2+)-dependent current may only be weakly voltage dependent. 3. The reversal potential of the Ca(2+)-sensitive tail currents depended on the concentration of external K+ in a manner predicted by the Nernst equation. Thus the Ca(2+)-sensitive current was carried by K+. 4. The toxin apamin (10 nM to 2 microM) selectively blocked the Ca(2+)-dependent K+ current without affecting voltage-gated K+ currents. This current may be analogous to a small-conductance Ca(2+)-dependent K+ (SK) current; however, unlike some SK currents, the Ca(2+)-dependent K+ current was also sensitive to 500 microM tetraethylammonium chloride (TEA). 5. Applications of 10 nM apamin to spinalized embryos did not perturb the motor pattern for swimming. However, the cycle periods over which the locomotor rhythm generator could generate appropriate motor activity were lengthened by about 10% and the mean duration of swimming episodes was increased by approximately 40%. 6. We therefore propose that the Ca(2+)-dependent K+ current plays an important role in the self-termination of motor activity.
Barrett,
Separation of two voltage-sensitive potassium currents, and demonstration of a tetrodotoxin-resistant calcium current in frog motoneurones.
1976, Pubmed
Barrett,
Separation of two voltage-sensitive potassium currents, and demonstration of a tetrodotoxin-resistant calcium current in frog motoneurones.
1976,
Pubmed Bielefeldt,
A calcium-activated potassium channel causes frequency-dependent action-potential failures in a mammalian nerve terminal.
1993,
Pubmed Blatz,
Single apamin-blocked Ca-activated K+ channels of small conductance in cultured rat skeletal muscle.
,
Pubmed Cook,
Effects of apamin, quinine and neuromuscular blockers on calcium-activated potassium channels in guinea-pig hepatocytes.
1985,
Pubmed Dale,
A large, sustained Na(+)- and voltage-dependent K+ current in spinal neurons of the frog embryo.
1993,
Pubmed
,
Xenbase Dale,
The Isolation and Identification of Spinal Neurons That Control Movement in the Xenopus Embryo.
1991,
Pubmed
,
Xenbase Dale,
Excitatory amino acid receptors in Xenopus embryo spinal cord and their role in the activation of swimming.
1984,
Pubmed
,
Xenbase Gustafsson,
Evidence for two types of afterhyperpolarization in CA1 pyramidal cells in the hippocampus.
1981,
Pubmed Hill,
Apamin blocks the slow AHP in lamprey and delays termination of locomotor bursts.
1992,
Pubmed Hill,
Ionic mechanisms of 3 types of functionally different neurons in the lamprey spinal cord.
1985,
Pubmed Hugues,
Apamin as a selective blocker of the calcium-dependent potassium channel in neuroblastoma cells: voltage-clamp and biochemical characterization of the toxin receptor.
1982,
Pubmed Iwahara,
Locomotion induced by spinal cord stimulation in the neonate rat in vitro.
1991,
Pubmed Jean,
Control of the central swallowing program by inputs from the peripheral receptors. A review.
1984,
Pubmed Kimura,
Identification of sodium-calcium exchange current in single ventricular cells of guinea-pig.
1987,
Pubmed Lancaster,
Calcium-dependent current generating the afterhyperpolarization of hippocampal neurons.
1986,
Pubmed McClellan,
Initiation and sensory gating of 'fictive' swimming and withdrawal responses in an in vitro preparation of the lamprey spinal cord.
1983,
Pubmed McKenna,
A model for the study of sexual function in anesthetized male and female rats.
1991,
Pubmed Meer,
Apamin reduces the late afterhyperpolarization of lamprey spinal neurons, with little effect on fictive swimming.
1992,
Pubmed O'Dowd,
Development of voltage-dependent calcium, sodium, and potassium currents in Xenopus spinal neurons.
1988,
Pubmed
,
Xenbase Pennefather,
Two distinct Ca-dependent K currents in bullfrog sympathetic ganglion cells.
1985,
Pubmed Ribera,
Differentiation of IKA in amphibian spinal neurons.
1990,
Pubmed
,
Xenbase Ribera,
Both barium and calcium activate neuronal potassium currents.
1987,
Pubmed
,
Xenbase Roberts,
Mutual Re-excitation with Post-Inhibitory Rebound: A Simulation Study on the Mechanisms for Locomotor Rhythm Generation in the Spinal Cord of Xenopus Embryos.
1990,
Pubmed
,
Xenbase Roberts,
The neuroanatomy of an amphibian embryo spinal cord.
1982,
Pubmed
,
Xenbase Roberts,
How does a nervous system produce behaviour? A case study in neurobiology.
1990,
Pubmed
,
Xenbase Robertson,
Three forms of the scratch reflex in the spinal turtle: central generation of motor patterns.
1985,
Pubmed Sauvé,
Single-channel analysis of the potassium permeability in HeLa cancer cells: evidence for a calcium-activated potassium channel of small unitary conductance.
1986,
Pubmed Sillar,
Control of frequency during swimming in Xenopus embryos: a study on interneuronal recruitment in a spinal rhythm generator.
1993,
Pubmed
,
Xenbase Sillar,
5HT induces NMDA receptor-mediated intrinsic oscillations in embryonic amphibian spinal neurons.
1994,
Pubmed Smith,
Slow membrane currents in bursting pace-maker neurones of Tritonia.
1987,
Pubmed Soffe,
Tonic and phasic synaptic input to spinal cord motoneurons during fictive locomotion in frog embryos.
1982,
Pubmed
,
Xenbase Soffe,
Active and Passive Membrane Properties of Spinal Cord Neurons that Are Rhythmically Active during Swimming in Xenopus Embryos.
1990,
Pubmed
,
Xenbase Storm,
Potassium currents in hippocampal pyramidal cells.
1990,
Pubmed Swenson,
K+ channels close more slowly in the presence of external K+ and Rb+.
1981,
Pubmed Wall,
A role for potassium currents in the generation of the swimming motor pattern of Xenopus embryos.
1994,
Pubmed
,
Xenbase Wall,
GABAB receptors modulate an omega-conotoxin-sensitive calcium current that is required for synaptic transmission in the Xenopus embryo spinal cord.
1994,
Pubmed
,
Xenbase Wallén,
N-methyl-D-aspartate receptor-induced, inherent oscillatory activity in neurons active during fictive locomotion in the lamprey.
1987,
Pubmed Zhang,
Apamin depresses selectively the after-hyperpolarization of cat spinal motoneurons.
1987,
Pubmed