ABSTRACT The mechanisms of inactivation gating of the neuronal somatodendritic A-type K1 current and the cardiac Ito were investigated in Xenopus oocyte macropatches expressing Kv4.1 and Kv4.3 channels. Upon membrane patch excision (inside-out), Kv4.1 channels undergo time-dependent acceleration of macroscopic inactivation accompanied by a parallel partial current rundown. These changes are readily reversible by patch cramming, suggesting the influence of modulatory cytoplasmic factors. The consequences of these perturbations were investigated in detail to gain insights into the biophysical basis and mechanisms of inactivation gating. Accelerated inactivation at positive voltages (0 to 1110 mV) is mainly the result of reducing the time cons...
Inactivation and recovery from inactivation of Kv4 voltage-gated potassium channels are thought to r...
Inactivation is the auto-regulatory process of A-type voltage-gated K + (Kv) channels. Kv channels m...
Poster presented at Society for Neuroscience Abstract: A-type voltage-gated K+ channels auto-regula...
AbstractThe mechanisms of inactivation gating of the neuronal somatodendritic A-type K+ current and ...
ABSTRACT Kv4.3 inactivation is a complex multiexponential process, which can occur from both closed ...
AbstractKv4.3 inactivation is a complex multiexponential process, which can occur from both closed a...
Inactivation of Kv3 (Kv1.3) delayed rectifier potassium channels was studied in the Xenopus oocyte e...
Kv4 channels mediate the somatodendritic A-type K+ current (I(SA)) in neurons. The availability of f...
AbstractKv4.3 inactivation is a complex multiexponential process, which can occur from both closed a...
AbstractKv1.4 channels are Shaker-related voltage-gated potassium channels with two distinct inactiv...
AbstractWe report here several unusual features of inactivation of the rat Kv2.1 delayed rectifier p...
The voltage-gated potassium channel protein KvLQT1 (Wang et al., 1996, Nature Genet. 12:17-23) is be...
Inactivation of Kv3 (Kv1.3) delayed rectifier potassium channels was studied in the Xenopus oocyte e...
AbstractThe voltage-gated potassium channel protein KvLQT1 (Wang et al., 1996. Nature Genet. 12:17–2...
Inactivation is the auto-regulatory process of A-type voltage-gated K + (Kv) channels. Kv channels m...
Inactivation and recovery from inactivation of Kv4 voltage-gated potassium channels are thought to r...
Inactivation is the auto-regulatory process of A-type voltage-gated K + (Kv) channels. Kv channels m...
Poster presented at Society for Neuroscience Abstract: A-type voltage-gated K+ channels auto-regula...
AbstractThe mechanisms of inactivation gating of the neuronal somatodendritic A-type K+ current and ...
ABSTRACT Kv4.3 inactivation is a complex multiexponential process, which can occur from both closed ...
AbstractKv4.3 inactivation is a complex multiexponential process, which can occur from both closed a...
Inactivation of Kv3 (Kv1.3) delayed rectifier potassium channels was studied in the Xenopus oocyte e...
Kv4 channels mediate the somatodendritic A-type K+ current (I(SA)) in neurons. The availability of f...
AbstractKv4.3 inactivation is a complex multiexponential process, which can occur from both closed a...
AbstractKv1.4 channels are Shaker-related voltage-gated potassium channels with two distinct inactiv...
AbstractWe report here several unusual features of inactivation of the rat Kv2.1 delayed rectifier p...
The voltage-gated potassium channel protein KvLQT1 (Wang et al., 1996, Nature Genet. 12:17-23) is be...
Inactivation of Kv3 (Kv1.3) delayed rectifier potassium channels was studied in the Xenopus oocyte e...
AbstractThe voltage-gated potassium channel protein KvLQT1 (Wang et al., 1996. Nature Genet. 12:17–2...
Inactivation is the auto-regulatory process of A-type voltage-gated K + (Kv) channels. Kv channels m...
Inactivation and recovery from inactivation of Kv4 voltage-gated potassium channels are thought to r...
Inactivation is the auto-regulatory process of A-type voltage-gated K + (Kv) channels. Kv channels m...
Poster presented at Society for Neuroscience Abstract: A-type voltage-gated K+ channels auto-regula...