Ionic and gating currents from noninactivating Shaker B K+ channels were studied with the cut-open oocyte voltage clamp technique and compared with the macropatch clamp technique. The performance of the cut-open oocyte voltage clamp technique was evaluated from the electrical properties of the clamped upper domus membrane, K+ tail current measurements, and the time course of K+ currents after partial blockade. It was concluded that membrane currents less than 20 microA were spatially clamped with a time resolution of at least 50 microseconds. Subtracted, unsubtracted gating currents with the cut-open oocyte voltage clamp technique and gating currents recorded in cell attached macropatches had similar properties and time course, and the char...
AbstractShaker K+ channels were expressed in outside-out macropatches excised from Xenopus oocytes, ...
AbstractWhole-cell gating current recording from rat brain IIA sodium channels in Xenopus oocytes wa...
Voltage gated channels underlie generation, detection, and amplification of electrical signals in th...
Ionic and gating currents from noninactivating Shaker B K+ channels were studied with the cut-open o...
Steady-state and kinetic properties of gating currents of the Shaker K+ channels were studied in cha...
Steady-state and kinetic properties of gating currents of the Shaker K+ channels were studied in cha...
AbstractThis study presents what is, to our knowledge, a novel technique by means of which the ratio...
AbstractThe opening and closing of the ion conduction pathway in ion channels underlies the generati...
AbstractThe opening and closing of the ion conduction pathway in ion channels underlies the generati...
AbstractVoltage-activated ion channels respond to changes in membrane voltage by coupling the moveme...
We have studied ionic and gating currents in mutant and wild-type Shaker K+ channels to investigate ...
AbstractIn voltage-dependent ion channels, pore opening is initiated by electrically driven movement...
The conduction properties of the cloned Shaker K+ channel were studied using electrophysiological te...
Prolonged depolarization induces a slow inactivation process in some K+ channels. We have studied io...
Prolonged depolarization induces a slow inactivation process in some K+ channels. We have studied io...
AbstractShaker K+ channels were expressed in outside-out macropatches excised from Xenopus oocytes, ...
AbstractWhole-cell gating current recording from rat brain IIA sodium channels in Xenopus oocytes wa...
Voltage gated channels underlie generation, detection, and amplification of electrical signals in th...
Ionic and gating currents from noninactivating Shaker B K+ channels were studied with the cut-open o...
Steady-state and kinetic properties of gating currents of the Shaker K+ channels were studied in cha...
Steady-state and kinetic properties of gating currents of the Shaker K+ channels were studied in cha...
AbstractThis study presents what is, to our knowledge, a novel technique by means of which the ratio...
AbstractThe opening and closing of the ion conduction pathway in ion channels underlies the generati...
AbstractThe opening and closing of the ion conduction pathway in ion channels underlies the generati...
AbstractVoltage-activated ion channels respond to changes in membrane voltage by coupling the moveme...
We have studied ionic and gating currents in mutant and wild-type Shaker K+ channels to investigate ...
AbstractIn voltage-dependent ion channels, pore opening is initiated by electrically driven movement...
The conduction properties of the cloned Shaker K+ channel were studied using electrophysiological te...
Prolonged depolarization induces a slow inactivation process in some K+ channels. We have studied io...
Prolonged depolarization induces a slow inactivation process in some K+ channels. We have studied io...
AbstractShaker K+ channels were expressed in outside-out macropatches excised from Xenopus oocytes, ...
AbstractWhole-cell gating current recording from rat brain IIA sodium channels in Xenopus oocytes wa...
Voltage gated channels underlie generation, detection, and amplification of electrical signals in th...