AbstractA number of membrane proteins act via binding at the water/lipid bilayer interface. An important example of such proteins is provided by the gating-modifier toxins that act on voltage-gated potassium (Kv) channels. They are thought to partition to the headgroup region of lipid bilayers, and so provide a good system for probing the nature of interactions of a protein with the water/bilayer interface. We used coarse-grained molecular dynamics simulations to compute the one-dimensional potential of mean force (i.e., free energy) profile that governs the interaction between a Kv channel gating-modifier toxin (VSTx1) and model phospholipid bilayers. The reaction coordinate sampled corresponds to the position of the toxin along the bilaye...
The nature of voltage sensing by voltage-activated ion channels is a key problem in membrane protein...
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 ...
A number of membrane proteins act via binding at the water/lipid bilayer interface. An important exa...
AbstractA number of membrane proteins act via binding at the water/lipid bilayer interface. An impor...
Molecular dynamics (MO) simulations were used to study the interaction of voltage-gated potassium (K...
AbstractGating-modifier toxins inhibit voltage-gated ion channels by binding the voltage sensors (VS...
AbstractSGTx1 is a gating-modifier toxin that has been shown to inhibit the voltage-gated potassium ...
Gating-modifier toxins inhibit voltage-gated ion channels by binding the voltage sensors (VS) and al...
VSTx1 is a tarantula venom toxin which binds to the archaebacterial voltage-gated potassium channel ...
AbstractRegulation of membrane protein functions due to hydrophobic coupling with a lipid bilayer ha...
AbstractSGTx1 is a gating-modifier toxin that has been shown to inhibit the voltage-gated potassium ...
SGTx1 is a gating-modifier toxin that has been shown to inhibit the voltage-gated potassium channel ...
SGTx1 is a gating-modifier toxin that has been shown to inhibit the voltage-gated potassium channel ...
AbstractVoltage sensors (VS) domains couple the activation of ion channels/enzymes to changes in mem...
The nature of voltage sensing by voltage-activated ion channels is a key problem in membrane protein...
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 ...
A number of membrane proteins act via binding at the water/lipid bilayer interface. An important exa...
AbstractA number of membrane proteins act via binding at the water/lipid bilayer interface. An impor...
Molecular dynamics (MO) simulations were used to study the interaction of voltage-gated potassium (K...
AbstractGating-modifier toxins inhibit voltage-gated ion channels by binding the voltage sensors (VS...
AbstractSGTx1 is a gating-modifier toxin that has been shown to inhibit the voltage-gated potassium ...
Gating-modifier toxins inhibit voltage-gated ion channels by binding the voltage sensors (VS) and al...
VSTx1 is a tarantula venom toxin which binds to the archaebacterial voltage-gated potassium channel ...
AbstractRegulation of membrane protein functions due to hydrophobic coupling with a lipid bilayer ha...
AbstractSGTx1 is a gating-modifier toxin that has been shown to inhibit the voltage-gated potassium ...
SGTx1 is a gating-modifier toxin that has been shown to inhibit the voltage-gated potassium channel ...
SGTx1 is a gating-modifier toxin that has been shown to inhibit the voltage-gated potassium channel ...
AbstractVoltage sensors (VS) domains couple the activation of ion channels/enzymes to changes in mem...
The nature of voltage sensing by voltage-activated ion channels is a key problem in membrane protein...
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 ...