We have examined the molecular mechanism of rapid inactivation gating in a mouse Shal K+ channel (mKv4.1). The results showed that inactivation of these channels follows a complex time course that is well approximated by the sum of three exponential terms. Truncation of an amphipathic region at the N-terminus (residues 2–71) abolished the rapid phase of inactivation (r = 16 ms) and altered voltage-dependent gating. Surprisingly, these effects could be mimicked by deletions affecting the hydrophilic C-terminus. The sum of two exponential terms was sufficient to describe the inactivation of deletion mutants. In fact, the time constants corresponded closely to those of the intermediate and slow phases of inactivation observed with wild-type ch...
AbstractWe examined the relationship between deactivation and inactivation in Kv4.2 channels. In par...
AbstractIon permeation and gating kinetics of voltage-gated K channels critically depend on the amin...
AbstractWe examined whether the N-terminus of Kv4.2 A-type channels (4.2NT) possesses an autoinhibit...
Inactivation and recovery from inactivation of Kv4 voltage-gated potassium channels are thought to r...
Rat Kv1.4 potassium channels undergo rapid inactivation, which is mediated by the N-terminal structu...
Voltage-gated K+ channels activate with depolarization of the membrane potential and subsequently in...
AbstractWith prolonged stimulation, voltage-activated K+ channels close by a gating process called i...
AbstractWe examined whether the N-terminus of Kv4.2 A-type channels (4.2NT) possesses an autoinhibit...
AbstractKv1.4 channels are Shaker-related voltage-gated potassium channels with two distinct inactiv...
C-type inactivation of Kv channels is thought to involve conformational changes in the outer pore o...
C-type inactivation of Kv channels is thought to involve conformational changes in the outer pore o...
AbstractWe examined the relationship between deactivation and inactivation in Kv4.2 channels. In par...
AbstractVoltage-activated K+ currents and their inactivation properties are important for controllin...
AbstractInactivation of potassium channels plays an important role in shaping the electrical signall...
N-type inactivation occurs when the N-terminus of a potassium channel binds into the open pore of th...
AbstractWe examined the relationship between deactivation and inactivation in Kv4.2 channels. In par...
AbstractIon permeation and gating kinetics of voltage-gated K channels critically depend on the amin...
AbstractWe examined whether the N-terminus of Kv4.2 A-type channels (4.2NT) possesses an autoinhibit...
Inactivation and recovery from inactivation of Kv4 voltage-gated potassium channels are thought to r...
Rat Kv1.4 potassium channels undergo rapid inactivation, which is mediated by the N-terminal structu...
Voltage-gated K+ channels activate with depolarization of the membrane potential and subsequently in...
AbstractWith prolonged stimulation, voltage-activated K+ channels close by a gating process called i...
AbstractWe examined whether the N-terminus of Kv4.2 A-type channels (4.2NT) possesses an autoinhibit...
AbstractKv1.4 channels are Shaker-related voltage-gated potassium channels with two distinct inactiv...
C-type inactivation of Kv channels is thought to involve conformational changes in the outer pore o...
C-type inactivation of Kv channels is thought to involve conformational changes in the outer pore o...
AbstractWe examined the relationship between deactivation and inactivation in Kv4.2 channels. In par...
AbstractVoltage-activated K+ currents and their inactivation properties are important for controllin...
AbstractInactivation of potassium channels plays an important role in shaping the electrical signall...
N-type inactivation occurs when the N-terminus of a potassium channel binds into the open pore of th...
AbstractWe examined the relationship between deactivation and inactivation in Kv4.2 channels. In par...
AbstractIon permeation and gating kinetics of voltage-gated K channels critically depend on the amin...
AbstractWe examined whether the N-terminus of Kv4.2 A-type channels (4.2NT) possesses an autoinhibit...