Javascript must be enabled to continue!
Voltage-dependent gating of veratridine-modified Na channels.
View through CrossRef
Na channels of frog muscle fibers treated with 100 microM veratridine became transiently modified after a train of repetitive depolarizations. They open and close reversibly with a gating process whose midpoint lies 93 mV more negative than the midpoint of normal activation gating and whose time course shows no appreciable delay in the opening or closing kinetics but still requires more than two kinetic states. Like normal activation, the voltage dependence of the modified gating can be shifted by changing the bathing Ca2+ concentration. The instantaneous current-voltage relation of veratridine-modified channels is curved at potentials negative to -90 mV, as if external Ca ions produced a voltage-dependent block but also permeated. Modified channels probably carry less current than normal ones. When the concentration of veratridine is varied between 5 and 100 microM, the initial rate of modification during a pulse train is directly proportional to the concentration, while the rate of recovery from modification after the train is unaffected. These are the properties expected if drug binding and modification of channels can be equated. Hyperpolarizations that close modified channels slow unbinding. Allethrin and DDT also modify channels. They bind and unbind far faster than veratridine does, and their binding requires open channels.
Title: Voltage-dependent gating of veratridine-modified Na channels.
Description:
Na channels of frog muscle fibers treated with 100 microM veratridine became transiently modified after a train of repetitive depolarizations.
They open and close reversibly with a gating process whose midpoint lies 93 mV more negative than the midpoint of normal activation gating and whose time course shows no appreciable delay in the opening or closing kinetics but still requires more than two kinetic states.
Like normal activation, the voltage dependence of the modified gating can be shifted by changing the bathing Ca2+ concentration.
The instantaneous current-voltage relation of veratridine-modified channels is curved at potentials negative to -90 mV, as if external Ca ions produced a voltage-dependent block but also permeated.
Modified channels probably carry less current than normal ones.
When the concentration of veratridine is varied between 5 and 100 microM, the initial rate of modification during a pulse train is directly proportional to the concentration, while the rate of recovery from modification after the train is unaffected.
These are the properties expected if drug binding and modification of channels can be equated.
Hyperpolarizations that close modified channels slow unbinding.
Allethrin and DDT also modify channels.
They bind and unbind far faster than veratridine does, and their binding requires open channels.
Related Results
Kinetics of veratridine action on Na channels of skeletal muscle.
Kinetics of veratridine action on Na channels of skeletal muscle.
Veratridine bath-applied to frog muscle makes inactivation of INa incomplete during a depolarizing voltage-clamp pulse and leads to a persistent veratridine-induced Na tail current...
Positive Inotropic Action of Veratridine in Rat Atria: Possible Involvement of Prostanoids
Positive Inotropic Action of Veratridine in Rat Atria: Possible Involvement of Prostanoids
Veratridine caused a positive inotropic action in the electrically driven left atria of rats. Quinacrine (a phospholipase A<sub>2</sub> inhibitor), indomethacin (a cycl...
Ca2+o‐Independent Veratridine‐Evoked Acetylcholine Release from Striatal Slices Is Not Inhibited by Vesamicol (AH5183): Mobilization of Distinct Transmitter Pools
Ca2+o‐Independent Veratridine‐Evoked Acetylcholine Release from Striatal Slices Is Not Inhibited by Vesamicol (AH5183): Mobilization of Distinct Transmitter Pools
Abstract: The effect of 2‐(4‐phenylpiperidino)cyclohexanol (AH5183 or vesamicol), a compound known to block the uptake of acetylcholine (ACh) into cholinergic synaptic vesicles, o...
Widespread Inhibition of Sodium Channel–dependent Glutamate Release from Isolated Nerve Terminals by Isoflurane and Propofol
Widespread Inhibition of Sodium Channel–dependent Glutamate Release from Isolated Nerve Terminals by Isoflurane and Propofol
Background
Controversy persists concerning the mechanisms and role of general anesthetic inhibition of glutamate release from nerve endings. To determine the generality...
P015 Improving the diagnostic performance of ANCA testing: evaluating the use of a gating strategy for ANCA test requests
P015 Improving the diagnostic performance of ANCA testing: evaluating the use of a gating strategy for ANCA test requests
Abstract
Background/Aims
Anti-neutrophil cytoplasmic antibody (ANCAs) associated vasculitis (AAV) encompasses: Granulomatosis with polyangiitis (GPA)...
Rescue of protein expression defects may not be enough to abolish the pro‐arrhythmic phenotype of long QT type 2 mutations
Rescue of protein expression defects may not be enough to abolish the pro‐arrhythmic phenotype of long QT type 2 mutations
Key points
Most missense long QT syndrome type 2 (LQTS2) mutations result in Kv11.1 channels that show reduced levels of membrane expression.
Pharmacological chaperones that rescue...
Modelado de un Recuperador Dinámico de Tensión para el Mejoramiento de la Calidad de la Onda de Tensión
Modelado de un Recuperador Dinámico de Tensión para el Mejoramiento de la Calidad de la Onda de Tensión
[1] R. C. Dugan, H. W. Beaty, y S. Santoso, Electrical Power Systems Quality, Third edition. Tata McGraw Hill Education, 2012.[2] J. Arrilaga y N. R. Watson, Powe...
Insights into the Voltage Regulation Mechanism of the Pore-Forming Toxin Lysenin
Insights into the Voltage Regulation Mechanism of the Pore-Forming Toxin Lysenin
Lysenin, a pore forming toxin (PFT) extracted from Eisenia fetida, inserts voltage-regulated channels into artificial lipid membranes containing sphingomyelin. The voltage-induced ...

