Two-pore domain (K2P) K+ channels are major regulators of excitability that endow cells with an outwardly rectifying background "leak" conductance. In some K2P channels, strong voltage-dependent activation has been observed, but the mechanism remains unresolved because they lack a canonical voltage-sensing domain. Here, we show voltage-dependent gating is common to most K2P channels and that this voltage sensitivity originates from the movement of three to four ions into the high electric field of an inactive selectivity filter. Overall, this ion-flux gating mechanism generates a oneway "check valve" within the filter because outward movement of K+ induces filter opening, whereas inward movement promotes inactivation. Furthermore, many phys...
Two-pore-domain potassium (K2P) channels are responsible for background leak currents which regulate...
Voltage-gated potassium channels open at depolarized membrane voltages. A prolonged depolarization c...
Voltage-gated potassium channels open at depolarized membrane voltages. A prolonged depolarization c...
Two-pore domain (K2P) K(+) channels are major regulators of excitability that endow cells with an ou...
Two-pore domain (K2P) K+ channels are major regulators of excitability that endow cells with an outw...
SummaryTwo-pore domain (K2P) K+ channels are major regulators of excitability that endow cells with ...
SummaryTwo-pore domain (K2P) K+ channels are major regulators of excitability that endow cells with ...
Two-pore domain (K2P) K+ channels are major regulators of excitability that endow cells with an outw...
Many potassium channels show voltage-dependent gating without a dedicated voltage sensor domain. Thi...
Many potassium channels show voltage-dependent gating without a dedicated voltage sensor domain. Thi...
Potassium two-pore domain (K2P) family ion channels are increasingly appreciated as important electr...
The ability to conduct potassium ions (K+) selectively in the abundant presence of other ion species...
Potassium two-pore domain (K2P) family ion channels are increasingly appreciated as important electr...
Two-pore domain (K2P) K+ channels have many important physiological functions. However, the function...
Two-pore domain (K2P) K+ channels have many important physiological functions. However, the function...
Two-pore-domain potassium (K2P) channels are responsible for background leak currents which regulate...
Voltage-gated potassium channels open at depolarized membrane voltages. A prolonged depolarization c...
Voltage-gated potassium channels open at depolarized membrane voltages. A prolonged depolarization c...
Two-pore domain (K2P) K(+) channels are major regulators of excitability that endow cells with an ou...
Two-pore domain (K2P) K+ channels are major regulators of excitability that endow cells with an outw...
SummaryTwo-pore domain (K2P) K+ channels are major regulators of excitability that endow cells with ...
SummaryTwo-pore domain (K2P) K+ channels are major regulators of excitability that endow cells with ...
Two-pore domain (K2P) K+ channels are major regulators of excitability that endow cells with an outw...
Many potassium channels show voltage-dependent gating without a dedicated voltage sensor domain. Thi...
Many potassium channels show voltage-dependent gating without a dedicated voltage sensor domain. Thi...
Potassium two-pore domain (K2P) family ion channels are increasingly appreciated as important electr...
The ability to conduct potassium ions (K+) selectively in the abundant presence of other ion species...
Potassium two-pore domain (K2P) family ion channels are increasingly appreciated as important electr...
Two-pore domain (K2P) K+ channels have many important physiological functions. However, the function...
Two-pore domain (K2P) K+ channels have many important physiological functions. However, the function...
Two-pore-domain potassium (K2P) channels are responsible for background leak currents which regulate...
Voltage-gated potassium channels open at depolarized membrane voltages. A prolonged depolarization c...
Voltage-gated potassium channels open at depolarized membrane voltages. A prolonged depolarization c...