The nature of voltage sensing by voltage-activated ion channels is a key problem in membrane protein structural biology. The way in which the voltage-sensor (VS) domain interacts with its membrane environment remains unclear. In particular, the known structures of Kv channels do not readily explain how a positively charged S4 helix is able to stably span a lipid bilayer. Extended (2 x 50 ns) molecular dynamics simulations of the high-resolution structure of the isolated VS domain from the archaebacterial potassium channel KvAP, embedded in zwitterionic and in anionic lipid bilayers, have been used to explore VS/lipid interactions at atomic resolution. The simulations reveal penetration of water into the center of the VS and bilayer. Further...
Molecular dynamics (MO) simulations were used to study the interaction of voltage-gated potassium (K...
AbstractA high-resolution crystal structure of KvAP, an archeabacterial voltage-gated potassium (Kv)...
AbstractA number of membrane proteins act via binding at the water/lipid bilayer interface. An impor...
The nature of voltage sensing by voltage-activated ion channels is a key problem in membrane protein...
SummaryThe nature of voltage sensing by voltage-activated ion channels is a key problem in membrane ...
Coarse-grained molecular dynamics simulations are used to explore the interaction with a phospholipi...
Voltage sensors (VS) domains couple the activation of ion channels/enzymes to changes in membrane vo...
AbstractVoltage sensors (VS) domains couple the activation of ion channels/enzymes to changes in mem...
AbstractAll-atom molecular dynamics simulations are used to better understand the dynamic environmen...
ABSTRACT All-atom molecular dynamics simulations are used to better understand the dynamic environme...
Most membrane proteins contain a transmembrane (TM) domain made up of a bundle of lipid-bilayer-span...
AbstractIn this article, we present the results of the molecular dynamics simulations of amphiphilic...
SummaryA strong interplay between the voltage-sensor domain (VSD) and the pore domain (PD) underlies...
Gating-modifier toxins inhibit voltage-gated ion channels by binding the voltage sensors (VS) and al...
A number of membrane proteins act via binding at the water/lipid bilayer interface. An important exa...
Molecular dynamics (MO) simulations were used to study the interaction of voltage-gated potassium (K...
AbstractA high-resolution crystal structure of KvAP, an archeabacterial voltage-gated potassium (Kv)...
AbstractA number of membrane proteins act via binding at the water/lipid bilayer interface. An impor...
The nature of voltage sensing by voltage-activated ion channels is a key problem in membrane protein...
SummaryThe nature of voltage sensing by voltage-activated ion channels is a key problem in membrane ...
Coarse-grained molecular dynamics simulations are used to explore the interaction with a phospholipi...
Voltage sensors (VS) domains couple the activation of ion channels/enzymes to changes in membrane vo...
AbstractVoltage sensors (VS) domains couple the activation of ion channels/enzymes to changes in mem...
AbstractAll-atom molecular dynamics simulations are used to better understand the dynamic environmen...
ABSTRACT All-atom molecular dynamics simulations are used to better understand the dynamic environme...
Most membrane proteins contain a transmembrane (TM) domain made up of a bundle of lipid-bilayer-span...
AbstractIn this article, we present the results of the molecular dynamics simulations of amphiphilic...
SummaryA strong interplay between the voltage-sensor domain (VSD) and the pore domain (PD) underlies...
Gating-modifier toxins inhibit voltage-gated ion channels by binding the voltage sensors (VS) and al...
A number of membrane proteins act via binding at the water/lipid bilayer interface. An important exa...
Molecular dynamics (MO) simulations were used to study the interaction of voltage-gated potassium (K...
AbstractA high-resolution crystal structure of KvAP, an archeabacterial voltage-gated potassium (Kv)...
AbstractA number of membrane proteins act via binding at the water/lipid bilayer interface. An impor...