The effects of ionic strength (10–1,000 mM) on the gating of batrachotoxin-activated rat brain sodium channels were studied in neutral and in negatively charged lipid bilayers. In neutral bilayers, increasing the ionic strength of the extracellular solution, shifted the voltage dependence of the open probability (gating curve) of the sodium channel to more positive membrane potentials. On the other hand, increasing the intracellular ionic strength shifted the gating curve to more negative membrane potentials. Ionic strength shifted the voltage dependence of both opening and closing rate constants of the channel in analogous ways to its effects on gating curves. The voltage sensitivities of the rate constants were not affected by ionic stren...
We present a simple two-parameter model for surface charge directly associated with ion channels. A ...
An anion selective channel and three types of cation selective channels were found in planar lipid b...
Voltage-gated ion channels regulate the electric activity of excitable tissues, such as the heart an...
The effects of ionic strength (10–1,000 mM) on the gating of batrachotoxin-activated rat brain sodiu...
We have studied the effects of membrane surface charge on Na+ ion permeation and Ca2+ block in singl...
Batrachotoxin-activated rat brain Na+ channels were reconstituted in neutral planar phospholipid bil...
Batrachotoxin-activated rat brain Na+ channels were reconstituted in neutral planar phospholipid bil...
AbstractFew experimental data illuminate the relationship between the molecular structures that medi...
We have previously studied single, voltage-dependent, saxitoxin-(STX) blockable sodium channels from...
The plasma membrane isolates the interior of cells from the external environment. In addition to act...
An anion selective channel and three types of cation selective channels were found in planar lipid b...
Single Na+ channels from rat skeletal muscle were inserted into planar lipid bilayers in the presenc...
Ion channels are specialized proteins that enable the movement of charges through otherwise impermea...
AbstractVoltage-gated ion channels regulate the electric activity of excitable tissues, such as the ...
We have previously studied single, voltage-dependent, saxitoxin-(STX) blockable sodium channels from...
We present a simple two-parameter model for surface charge directly associated with ion channels. A ...
An anion selective channel and three types of cation selective channels were found in planar lipid b...
Voltage-gated ion channels regulate the electric activity of excitable tissues, such as the heart an...
The effects of ionic strength (10–1,000 mM) on the gating of batrachotoxin-activated rat brain sodiu...
We have studied the effects of membrane surface charge on Na+ ion permeation and Ca2+ block in singl...
Batrachotoxin-activated rat brain Na+ channels were reconstituted in neutral planar phospholipid bil...
Batrachotoxin-activated rat brain Na+ channels were reconstituted in neutral planar phospholipid bil...
AbstractFew experimental data illuminate the relationship between the molecular structures that medi...
We have previously studied single, voltage-dependent, saxitoxin-(STX) blockable sodium channels from...
The plasma membrane isolates the interior of cells from the external environment. In addition to act...
An anion selective channel and three types of cation selective channels were found in planar lipid b...
Single Na+ channels from rat skeletal muscle were inserted into planar lipid bilayers in the presenc...
Ion channels are specialized proteins that enable the movement of charges through otherwise impermea...
AbstractVoltage-gated ion channels regulate the electric activity of excitable tissues, such as the ...
We have previously studied single, voltage-dependent, saxitoxin-(STX) blockable sodium channels from...
We present a simple two-parameter model for surface charge directly associated with ion channels. A ...
An anion selective channel and three types of cation selective channels were found in planar lipid b...
Voltage-gated ion channels regulate the electric activity of excitable tissues, such as the heart an...