Voltage sensor domains (VSD) of voltage-dependent ion channels share a basic molecular structure with a voltage-sensing phosphatase and a voltage-gated proton channel. The VSD senses and responds to changes in the membrane potential by undergoing conformational changes associated with the movement of the charged arginines located on the S4 segment. Although several functional and structural studies have provided useful information about the conformational changes in many ion channels, a detailed and unambiguous explanation has not been published. Therefore, understanding the principle of voltage-dependent gating at an atomic level is required. In this study, we took advantage of the available spin labeling electron paramagnetic resonance sp...
AbstractVoltage sensor domains (VSD) are transmembrane proteins that respond to changes in membrane ...
Despite the growing number of atomic-resolution membrane protein structures, direct structural infor...
Voltage-sensing domains (VSDs) sense changes in the membrane electrostatic potential and, through co...
CiVSP is a voltage sensor-containing phosphatase whose N-terminal comprises a voltage sensing domain...
SummaryA strong interplay between the voltage-sensor domain (VSD) and the pore domain (PD) underlies...
AbstractVoltage-sensing domains (VSDs) of voltage-gated potassium (Kv) channels undergo a series of ...
SummaryThe nature of voltage sensing by voltage-activated ion channels is a key problem in membrane ...
ABSTRACT All-atom molecular dynamics simulations are used to better understand the dynamic environme...
Voltage-gated ion channels (VGICs) open and close in response to changes in electric potential acros...
The nature of voltage sensing by voltage-activated ion channels is a key problem in membrane protein...
The voltage sensor domain (VSD) of voltage-gated cation (e.g., Na(+), K(+)) channels central to neur...
AbstractVoltage-sensor (VS) domains cause the pore of voltage-gated ion channels to open and close i...
AbstractAll-atom molecular dynamics simulations are used to better understand the dynamic environmen...
Voltage-gated proton-selective channels (Hv1) mediate proton extrusion during intracellular acidific...
ABSTRACT: The voltage sensor domain (VSD) of voltage-gated cation (e.g., Na+, K+) channels central t...
AbstractVoltage sensor domains (VSD) are transmembrane proteins that respond to changes in membrane ...
Despite the growing number of atomic-resolution membrane protein structures, direct structural infor...
Voltage-sensing domains (VSDs) sense changes in the membrane electrostatic potential and, through co...
CiVSP is a voltage sensor-containing phosphatase whose N-terminal comprises a voltage sensing domain...
SummaryA strong interplay between the voltage-sensor domain (VSD) and the pore domain (PD) underlies...
AbstractVoltage-sensing domains (VSDs) of voltage-gated potassium (Kv) channels undergo a series of ...
SummaryThe nature of voltage sensing by voltage-activated ion channels is a key problem in membrane ...
ABSTRACT All-atom molecular dynamics simulations are used to better understand the dynamic environme...
Voltage-gated ion channels (VGICs) open and close in response to changes in electric potential acros...
The nature of voltage sensing by voltage-activated ion channels is a key problem in membrane protein...
The voltage sensor domain (VSD) of voltage-gated cation (e.g., Na(+), K(+)) channels central to neur...
AbstractVoltage-sensor (VS) domains cause the pore of voltage-gated ion channels to open and close i...
AbstractAll-atom molecular dynamics simulations are used to better understand the dynamic environmen...
Voltage-gated proton-selective channels (Hv1) mediate proton extrusion during intracellular acidific...
ABSTRACT: The voltage sensor domain (VSD) of voltage-gated cation (e.g., Na+, K+) channels central t...
AbstractVoltage sensor domains (VSD) are transmembrane proteins that respond to changes in membrane ...
Despite the growing number of atomic-resolution membrane protein structures, direct structural infor...
Voltage-sensing domains (VSDs) sense changes in the membrane electrostatic potential and, through co...