The energy barrier to the activated state for the S4 voltage sensor of a K channel is dependent on the electrostatic force between positively charged S4 residues and negatively charged groups on neighboring segments, the potential difference across the membrane, and the dielectric boundary force on the charged residues near the interface between the solvent and the low dielectric region of the membrane gating pore. The variation of the potential function with transverse displacement and rotation of the S4 sensor across the membrane may be derived from a solution of Poisson’s equation for the electrostatic potential. By approximating the energy of an S4 sensor along a path between stationary states by a piecewise linear function of the trans...
AbstractIn this article, we present the results of the molecular dynamics simulations of amphiphilic...
Voltage-gated ion channels have a paramount importance in many physiological processes such as cell-...
Voltage-gated ion channels play fundamental roles in neural excitability and thus dysfunctional chan...
Published online 6 September 2011The voltage dependence of the ionic and gating currents of a K chan...
The activation of a K+ channel sensor in two sequential stages during a voltage clamp may be describ...
AbstractThe S4 transmembrane domain of the family of voltage-gated ion channels is generally thought...
A position-dependent stochastic diffusion model of gating in ion channels is developed by considerin...
AbstractThe recent crystal structures of the voltage-gated potassium channel KvAP and its isolated v...
AbstractKramers’ diffusion theory of reaction rates in the condensed phase is considered as an alter...
AbstractRecently, the structure of the Shaker channel Kv1.2 has been determined at a 2.9-Å resolutio...
AbstractThe S4 segment comprises part of the voltage sensor in Shaker K+ channels. We have used a st...
AbstractWe have developed a method for rapidly computing gating currents from a multiparticle ion ch...
SummaryVoltage-gated ion channels respond to changes in membrane potential by movement of their volt...
AbstractThe fourth transmembrane helix (S4) is the primary voltage-sensor of voltage-gated ion chann...
ABSTRACT The S4 transmembrane domain of the family of voltage-gated ion channels is generally though...
AbstractIn this article, we present the results of the molecular dynamics simulations of amphiphilic...
Voltage-gated ion channels have a paramount importance in many physiological processes such as cell-...
Voltage-gated ion channels play fundamental roles in neural excitability and thus dysfunctional chan...
Published online 6 September 2011The voltage dependence of the ionic and gating currents of a K chan...
The activation of a K+ channel sensor in two sequential stages during a voltage clamp may be describ...
AbstractThe S4 transmembrane domain of the family of voltage-gated ion channels is generally thought...
A position-dependent stochastic diffusion model of gating in ion channels is developed by considerin...
AbstractThe recent crystal structures of the voltage-gated potassium channel KvAP and its isolated v...
AbstractKramers’ diffusion theory of reaction rates in the condensed phase is considered as an alter...
AbstractRecently, the structure of the Shaker channel Kv1.2 has been determined at a 2.9-Å resolutio...
AbstractThe S4 segment comprises part of the voltage sensor in Shaker K+ channels. We have used a st...
AbstractWe have developed a method for rapidly computing gating currents from a multiparticle ion ch...
SummaryVoltage-gated ion channels respond to changes in membrane potential by movement of their volt...
AbstractThe fourth transmembrane helix (S4) is the primary voltage-sensor of voltage-gated ion chann...
ABSTRACT The S4 transmembrane domain of the family of voltage-gated ion channels is generally though...
AbstractIn this article, we present the results of the molecular dynamics simulations of amphiphilic...
Voltage-gated ion channels have a paramount importance in many physiological processes such as cell-...
Voltage-gated ion channels play fundamental roles in neural excitability and thus dysfunctional chan...