Click here to close
Hello! We notice that you are using Internet Explorer, which is not supported by Xenbase and may cause the site to display incorrectly.
We suggest using a current version of Chrome,
FireFox, or Safari.
J Membr Biol
1992 Nov 01;1302:149-62. doi: 10.1007/bf00231893.
Show Gene links
Show Anatomy links
A TEA-insensitive flickering potassium channel active around the resting potential in myelinated nerve.
Koh DS, Jonas P, Bräu ME, Vogel W.
???displayArticle.abstract???
A novel potassium-selective channel which is active at membrane potentials between -100 mV and +40 mV has been identified in peripheral myelinated axons of Xenopus laevis using the patch-clamp technique. At negative potentials with 105 mM-K on both sides of the membrane, the channel at 1 kHz resolution showed a series of brief openings and closings interrupted by longer closings, resulting in a flickery bursting activity. Measurements with resolution up to 10 kHz revealed a single-channel conductance of 49 pS with 105 mM-K and 17 pS with 2.5 mM-K on the outer side of the membrane. The channel was selective for K ions over Na ions (PNa/PK = 0.033). The probability of being within a burst in outside-out patches varied from patch to patch (> 0.2, but often > 0.9), and was independent of membrane potential. Open-time histograms were satisfactorily described with a single exponential (tau o = 0.09 msec), closed times with the sum of three exponentials (tau c = 0.13, 5.9, and 36.6 msec). Sensitivity to external tetraethylammonium was comparatively low (IC50 = 19.0 mM). External Cs ions reduced the apparent unitary conductance for inward currents at Em = -90 mV (IC50 = 1.1 mM). Ba and, more potently, Zn ions lowered not only the apparent single-channel conductance but also open probability. The local anesthetic bupivacaine with high potency reduced probability of being within a burst (IC50 = 165 nM). The flickering K channel is clearly different from the other five types of K channels identified so far in the same preparation. We suggest that this channel may form the molecular basis of the resting potential in vertebrate myelinated axons.
Adrian,
Slow changes in potassium permeability in skeletal muscle.
1970, Pubmed
Adrian,
Slow changes in potassium permeability in skeletal muscle.
1970,
Pubmed Ashcroft,
Properties of single potassium channels modulated by glucose in rat pancreatic beta-cells.
1988,
Pubmed Baker,
Function and distribution of three types of rectifying channel in rat spinal root myelinated axons.
1987,
Pubmed Barrett,
Intracellular recording from vertebrate myelinated axons: mechanism of the depolarizing afterpotential.
1982,
Pubmed Chang,
Is the K permeability of the resting membrane controlled by the excitable K channel?
1986,
Pubmed Chiu,
On the physiological role of internodal potassium channels and the security of conduction in myelinated nerve fibres.
1984,
Pubmed Chiu,
Evidence for the presence of potassium channels in the internode of frog myelinated nerve fibres.
1982,
Pubmed Colquhoun,
On the stochastic properties of bursts of single ion channel openings and of clusters of bursts.
1982,
Pubmed Constanti,
Fast inward-rectifying current accounts for anomalous rectification in olfactory cortex neurones.
1983,
Pubmed Grygorczyk,
Ca2+-activated K+ permeability in human erythrocytes: modulation of single-channel events.
1985,
Pubmed Hagiwara,
Potassium current and the effect of cesium on this current during anomalous rectification of the egg cell membrane of a starfish.
1976,
Pubmed Halliwell,
Voltage-clamp analysis of muscarinic excitation in hippocampal neurons.
1982,
Pubmed Hamill,
Improved patch-clamp techniques for high-resolution current recording from cells and cell-free membrane patches.
1981,
Pubmed Haydon,
The potassium conductance of the resting squid axon and its blockage by clinical concentrations of general anaesthetics.
1988,
Pubmed Hille,
Potassium channels as multi-ion single-file pores.
1978,
Pubmed Hille,
Potassium channels in myelinated nerve. Selective permeability to small cations.
1973,
Pubmed HUXLEY,
Direct determination of membrane resting potential and action potential in single myelinated nerve fibers.
1951,
Pubmed Hwa,
Hyperpolarizing inward rectification in rat neocortical neurons located in the superficial layers.
1991,
Pubmed Jonas,
ATP-sensitive and Ca-activated K channels in vertebrate axons: novel links between metabolism and excitability.
1991,
Pubmed
,
Xenbase Jonas,
Single-channel recording in myelinated nerve fibers reveals one type of Na channel but different K channels.
1989,
Pubmed
,
Xenbase Jones,
On the resting potential of isolated frog sympathetic neurons.
1989,
Pubmed Klein,
Serotonin modulates a specific potassium current in the sensory neurons that show presynaptic facilitation in Aplysia.
1982,
Pubmed Mayer,
A voltage-clamp analysis of inward (anomalous) rectification in mouse spinal sensory ganglion neurones.
1983,
Pubmed McManus,
Kinetic states and modes of single large-conductance calcium-activated potassium channels in cultured rat skeletal muscle.
1988,
Pubmed Nonner,
A new voltage clamp method for Ranvier nodes.
1969,
Pubmed Quayle,
The voltage-dependent block of ATP-sensitive potassium channels of frog skeletal muscle by caesium and barium ions.
1988,
Pubmed Rae,
Properties of single potassium-selective ionic channels from the apical membrane of rabbit corneal endothelium.
1989,
Pubmed Sakmann,
Voltage-dependent inactivation of inward-rectifying single-channel currents in the guinea-pig heart cell membrane.
1984,
Pubmed Schmidt,
[The effect of tetraethylammonium chloride on single Ranvier's nodes].
1966,
Pubmed Spalding,
Zinc inhibition of potassium efflux in depolarized frog muscle and its modification by external hydrogen ions and diethylpyrocarbonate treatment.
1986,
Pubmed Takahashi,
Inward rectification in neonatal rat spinal motoneurones.
1990,
Pubmed Yamamoto,
Blockage of chloride channels by HEPES buffer.
1987,
Pubmed Yellen,
Ionic permeation and blockade in Ca2+-activated K+ channels of bovine chromaffin cells.
1984,
Pubmed