SummaryA strong interplay between the voltage-sensor domain (VSD) and the pore domain (PD) underlies voltage-gated channel functions. In a few voltage-sensitive proteins, the VSD has been shown to function without a canonical PD, although its structure and oligomeric state remain unknown. Here, using EPR spectroscopy, we show that the isolated VSD of KvAP can remain monomeric in a reconstituted bilayer and retain a transmembrane conformation. We find that water-filled crevices extending deep into the membrane around S3, a scaffold conducive to transport of protons/cations, are intrinsic to the VSD. Differences in solvent accessibility in comparison to the full-length KvAP allowed us to define an interacting footprint of the PD on the VSD. T...
ABSTRACT: The voltage sensor domain (VSD) of voltage-gated cation (e.g., Na+, K+) channels central t...
SummaryVoltage-activated potassium (Kv) channels contain a central pore domain that is partially sur...
The modular architecture of voltage-gated K+ (Kv) channels suggests that they resulted from the fusi...
SummaryA strong interplay between the voltage-sensor domain (VSD) and the pore domain (PD) underlies...
AbstractVoltage-sensor (VS) domains cause the pore of voltage-gated ion channels to open and close i...
SummaryThe nature of voltage sensing by voltage-activated ion channels is a key problem in membrane ...
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...
AbstractMembrane proteins that respond to changes in transmembrane voltage are critical in regulatin...
The voltage-sensing domain (VSD) is a common scaffold responsible for the transduction of transmembr...
AbstractVoltage sensor domains (VSD) are transmembrane proteins that respond to changes in membrane ...
Voltage sensors (VS) domains couple the activation of ion channels/enzymes to changes in membrane vo...
SummaryVoltage-sensing domains (VSDs) undergo conformational changes in response to the membrane pot...
Voltage sensor domains (VSD) of voltage-dependent ion channels share a basic molecular structure wit...
The voltage sensor domain (VSD) of voltage-gated cation (e.g., Na<sup>+</sup>, K<sup>+</sup>) channe...
ABSTRACT: The voltage sensor domain (VSD) of voltage-gated cation (e.g., Na+, K+) channels central t...
SummaryVoltage-activated potassium (Kv) channels contain a central pore domain that is partially sur...
The modular architecture of voltage-gated K+ (Kv) channels suggests that they resulted from the fusi...
SummaryA strong interplay between the voltage-sensor domain (VSD) and the pore domain (PD) underlies...
AbstractVoltage-sensor (VS) domains cause the pore of voltage-gated ion channels to open and close i...
SummaryThe nature of voltage sensing by voltage-activated ion channels is a key problem in membrane ...
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...
AbstractMembrane proteins that respond to changes in transmembrane voltage are critical in regulatin...
The voltage-sensing domain (VSD) is a common scaffold responsible for the transduction of transmembr...
AbstractVoltage sensor domains (VSD) are transmembrane proteins that respond to changes in membrane ...
Voltage sensors (VS) domains couple the activation of ion channels/enzymes to changes in membrane vo...
SummaryVoltage-sensing domains (VSDs) undergo conformational changes in response to the membrane pot...
Voltage sensor domains (VSD) of voltage-dependent ion channels share a basic molecular structure wit...
The voltage sensor domain (VSD) of voltage-gated cation (e.g., Na<sup>+</sup>, K<sup>+</sup>) channe...
ABSTRACT: The voltage sensor domain (VSD) of voltage-gated cation (e.g., Na+, K+) channels central t...
SummaryVoltage-activated potassium (Kv) channels contain a central pore domain that is partially sur...
The modular architecture of voltage-gated K+ (Kv) channels suggests that they resulted from the fusi...