AbstractIKs channels are heteromeric complexes of pore-forming KvLQT1 subunits and pore-associated MinK subunits. Channels formed only of KvLQT1 subunits vary from IKs channels in their gating kinetics, single-channel conductance, and ion selectivity. Here we show that IKs channels are more sensitive to blockade by internal tetraethylammonium ion (TEA) than KvLQT1 channels. Inhibition by internal TEA is shown to proceed by a simple bimolecular interaction in the IKs conduction pathway. Application of a noise-variance strategy suggests that MinK enhances blockade by increasing the dwell time of TEA on its pore site from ∼70 to 370μs. Mutation of consecutive residues across the single transmembrane segment of MinK identifies positions that al...
We have mapped residues in the carboxyl half of the P region of a voltage-gated K+ channel that infl...
AbstractExternal tetraethylammonium (TEA+) blocked currents through Kv1.1 channels in a voltage-inde...
The loop between transmembrane regions S5 and S6 (P-region) of voltage-gated K+ channels has been pr...
AbstractIKs channels are heteromeric complexes of pore-forming KvLQT1 subunits and pore-associated M...
I(Ks) channels are heteromeric complexes of pore-forming KvLQT1 subunits and pore-associated MinK su...
AbstractMinK has neither the P region nor signature sequence that characterizes pore-forming subunit...
AbstractHuman MinK and KCNQ1 subunits assemble to form IKs channels. When MinK position 55 is mutate...
MinK has neither the P region nor signature sequence that characterizes pore-forming subunits of all...
AbstractIKs voltage-gated K+ channels contain four pore-forming KCNQ1 subunits and MinK accessory su...
Human MinK and KCNQ1 subunits assemble to form I(Ks) channels. When MinK position 55 is mutated to c...
AbstractIntracellular tetraethylammonium (TEA) inhibition was studied at the single-channel level in...
AbstractIKs channels contain four pore-forming KCNQ1 subunits and two accessory MinK subunits. MinK ...
IKs channels are voltage dependent and K+ selective. They influence cardiac action potential duratio...
Extracellular tetraethylammonium (TEA) inhibits currents in Xenopus oocytes that have been injected ...
AbstractExpression of minK protein in Xenopus oocytes induces a slowly activating, voltage-dependent...
We have mapped residues in the carboxyl half of the P region of a voltage-gated K+ channel that infl...
AbstractExternal tetraethylammonium (TEA+) blocked currents through Kv1.1 channels in a voltage-inde...
The loop between transmembrane regions S5 and S6 (P-region) of voltage-gated K+ channels has been pr...
AbstractIKs channels are heteromeric complexes of pore-forming KvLQT1 subunits and pore-associated M...
I(Ks) channels are heteromeric complexes of pore-forming KvLQT1 subunits and pore-associated MinK su...
AbstractMinK has neither the P region nor signature sequence that characterizes pore-forming subunit...
AbstractHuman MinK and KCNQ1 subunits assemble to form IKs channels. When MinK position 55 is mutate...
MinK has neither the P region nor signature sequence that characterizes pore-forming subunits of all...
AbstractIKs voltage-gated K+ channels contain four pore-forming KCNQ1 subunits and MinK accessory su...
Human MinK and KCNQ1 subunits assemble to form I(Ks) channels. When MinK position 55 is mutated to c...
AbstractIntracellular tetraethylammonium (TEA) inhibition was studied at the single-channel level in...
AbstractIKs channels contain four pore-forming KCNQ1 subunits and two accessory MinK subunits. MinK ...
IKs channels are voltage dependent and K+ selective. They influence cardiac action potential duratio...
Extracellular tetraethylammonium (TEA) inhibits currents in Xenopus oocytes that have been injected ...
AbstractExpression of minK protein in Xenopus oocytes induces a slowly activating, voltage-dependent...
We have mapped residues in the carboxyl half of the P region of a voltage-gated K+ channel that infl...
AbstractExternal tetraethylammonium (TEA+) blocked currents through Kv1.1 channels in a voltage-inde...
The loop between transmembrane regions S5 and S6 (P-region) of voltage-gated K+ channels has been pr...