Polymodal thermo- and mechanosensitive two-pore domain potassium (K-2P) channels of the TREK1 subfamily generate `leak' currents that regulate neuronal excitability, respond to lipids, temperature and mechanical stretch, and influence pain, temperature perception and anaesthetic responses(1-3). These dimeric voltage-gated ion channel (VGIC) superfamily members have a unique topology comprising two pore-forming regions per subunit(4-6). In contrast to other potassium channels, K-2P channels use a selectivity filter `C-type' gate(7-10) as the principal gating site. Despite recent advances(3,11,12), poor pharmacological profiles of K2P channels limit mechanistic and biological studies. Here we describe a class of small-molecule TREK ...
The ability to conduct potassium ions (K+) selectively in the abundant presence of other ion species...
ABSTRACT: K2P (KCNK) potassium channels generate “leak ” potassium currents that strongly influence ...
Two-pore potassium (K2P) channels are responsible for regulating the resting membrane potential of e...
Polymodal thermo- and mechanosensitive two-pore domain potassium (K-2P) channels of the TREK1 subfa...
K2P (KCNK) potassium channels form "background" or "leak" currents that have critical roles in cell ...
K2P (KCNK) potassium channels form ‘background’ or ‘leak’ currents that are important for controllin...
K2P potassium channels regulate cellular excitability using their selectivity filter (C-type) gate. ...
K-2P potassium channels generate leak currents that stabilize the resting membrane potential of exci...
K2P potassium channels generate leak currents that stabilize the resting membrane potential of excit...
K 2P potassium channels generate leak currents that stabilize the resting membrane potential of exci...
Tandem pore domain (K2P) potassium channels modulate resting membrane potentials and shape cellular ...
K2P potassium channels generate leak currents that stabilize the resting membrane potential of excit...
Two-pore domain potassium channels (K2Ps) are a family of dimeric potassium channels responsible for...
Two-pore domain potassium channels (K2Ps) are a family of dimeric potassium channels responsible for...
International audienceMembers of the K(2P) potassium channel family regulate neuronal excitability a...
The ability to conduct potassium ions (K+) selectively in the abundant presence of other ion species...
ABSTRACT: K2P (KCNK) potassium channels generate “leak ” potassium currents that strongly influence ...
Two-pore potassium (K2P) channels are responsible for regulating the resting membrane potential of e...
Polymodal thermo- and mechanosensitive two-pore domain potassium (K-2P) channels of the TREK1 subfa...
K2P (KCNK) potassium channels form "background" or "leak" currents that have critical roles in cell ...
K2P (KCNK) potassium channels form ‘background’ or ‘leak’ currents that are important for controllin...
K2P potassium channels regulate cellular excitability using their selectivity filter (C-type) gate. ...
K-2P potassium channels generate leak currents that stabilize the resting membrane potential of exci...
K2P potassium channels generate leak currents that stabilize the resting membrane potential of excit...
K 2P potassium channels generate leak currents that stabilize the resting membrane potential of exci...
Tandem pore domain (K2P) potassium channels modulate resting membrane potentials and shape cellular ...
K2P potassium channels generate leak currents that stabilize the resting membrane potential of excit...
Two-pore domain potassium channels (K2Ps) are a family of dimeric potassium channels responsible for...
Two-pore domain potassium channels (K2Ps) are a family of dimeric potassium channels responsible for...
International audienceMembers of the K(2P) potassium channel family regulate neuronal excitability a...
The ability to conduct potassium ions (K+) selectively in the abundant presence of other ion species...
ABSTRACT: K2P (KCNK) potassium channels generate “leak ” potassium currents that strongly influence ...
Two-pore potassium (K2P) channels are responsible for regulating the resting membrane potential of e...