Voltage-gated K(+) channels of the Kv3 subfamily have unusual electrophysiological properties, including activation at very depolarized voltages (positive to -10 mV) and very fast deactivation rates, suggesting special roles in neuronal excitability. In the brain, Kv3 channels are prominently expressed in select neuronal populations, which include fast-spiking (FS) GABAergic interneurons of the neocortex, hippocampus, and caudate, as well as other high-frequency firing neurons. Although evidence points to a key role in high-frequency firing, a definitive understanding of the function of these channels has been hampered by a lack of selective pharmacological tools. We therefore generated mouse lines in which one of the Kv3 genes, Kv3.2, was ...
The Kv2.1 delayed rectifier potassium channel exhibits high-level expression in both principal and i...
Fast-spiking (FS) neurons can fire action potentials (APs) up to 1,000 Hz and play key roles in vita...
Kv3 potassium currents mediate rapid repolarisation of action potentials (APs), supporting fast spik...
Voltage-gated K(+) channels of the Kv3 subfamily have unusual electrophysiological properties, inclu...
Voltage-gated K+ channels of the Kv3 subfamily have unusual electrophysiological properties, includi...
Voltage-gated K+ channels of the Kv3 subfamily have unusual electrophysiological properties, includi...
We show here that the voltage-gated K+ channel Kv12.2 is a potent regulator of excitability in hippo...
Potassium (K+) channel subunits of the Kv3 subfamily (Kv3.1-Kv3.4) display a positively shifted volt...
Potassium (K+) channel subunits of the Kv3 subfamily (Kv3.1-Kv3.4) display a positively shifted volt...
Thesis (Ph. D.)--University of Washington, 1996Mutations at the Drosophila Shaker locus cause motor ...
SummaryFast-spiking cells (FS cells) are a prominent subtype of neocortical GABAergic interneurons w...
Kv3.1 and Kv3.2 K(+) channel proteins form similar voltage-gated K(+) channels with unusual properti...
Kv3.1 and Kv3.2 K+ channel proteins form similar voltage-gated K+ channels with unusual properties, ...
The Kv2.1 delayed rectifier potassium channel exhibits high-level expression in both principal and i...
The Kv2.1 delayed rectifier potassium channel exhibits high-level expression in both principal and i...
The Kv2.1 delayed rectifier potassium channel exhibits high-level expression in both principal and i...
Fast-spiking (FS) neurons can fire action potentials (APs) up to 1,000 Hz and play key roles in vita...
Kv3 potassium currents mediate rapid repolarisation of action potentials (APs), supporting fast spik...
Voltage-gated K(+) channels of the Kv3 subfamily have unusual electrophysiological properties, inclu...
Voltage-gated K+ channels of the Kv3 subfamily have unusual electrophysiological properties, includi...
Voltage-gated K+ channels of the Kv3 subfamily have unusual electrophysiological properties, includi...
We show here that the voltage-gated K+ channel Kv12.2 is a potent regulator of excitability in hippo...
Potassium (K+) channel subunits of the Kv3 subfamily (Kv3.1-Kv3.4) display a positively shifted volt...
Potassium (K+) channel subunits of the Kv3 subfamily (Kv3.1-Kv3.4) display a positively shifted volt...
Thesis (Ph. D.)--University of Washington, 1996Mutations at the Drosophila Shaker locus cause motor ...
SummaryFast-spiking cells (FS cells) are a prominent subtype of neocortical GABAergic interneurons w...
Kv3.1 and Kv3.2 K(+) channel proteins form similar voltage-gated K(+) channels with unusual properti...
Kv3.1 and Kv3.2 K+ channel proteins form similar voltage-gated K+ channels with unusual properties, ...
The Kv2.1 delayed rectifier potassium channel exhibits high-level expression in both principal and i...
The Kv2.1 delayed rectifier potassium channel exhibits high-level expression in both principal and i...
The Kv2.1 delayed rectifier potassium channel exhibits high-level expression in both principal and i...
Fast-spiking (FS) neurons can fire action potentials (APs) up to 1,000 Hz and play key roles in vita...
Kv3 potassium currents mediate rapid repolarisation of action potentials (APs), supporting fast spik...