Voltage sensors regulate the conformations of voltage-dependent ion channels and enzymes. Their nearly switchlike response as a function of membrane voltage comes from the movement of positively charged amino acids, arginine or lysine, across the membrane field. We used mutations with natural and unnatural amino acids, electrophysiological recordings, and x-ray crystallography to identify a charge transfer center in voltage sensors that facilitates this movement. This center consists of a rigid cyclic "cap" and two negatively charged amino acids to interact with a positive charge. Specific mutations induce a preference for lysine relative to arginine. By placing lysine at specific locations, the voltage sensor can be stabilized in different...
AbstractThe S4 segment comprises part of the voltage sensor in Shaker K+ channels. We have used a st...
My research focused on voltage-dependent K+ (Kv) channels. Kv channels serve many di erent functions...
Voltage-dependent ion channels are crucial for generation and propagation of electrical activity in ...
Voltage sensors regulate the conformations of voltage-dependent ion channels and enzymes. Their near...
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...
SummaryVoltage-gated ion channels sense transmembrane voltage changes via a paddle-shaped motif that...
Voltage-gated ion channels have a paramount importance in many physiological processes such as cell-...
AbstractThe voltage sensor is a four-transmembrane helix bundle (S1–S4) that couples changes in memb...
SummaryVoltage-gated calcium channels (CaV) regulate numerous vital functions in nerve and muscle ce...
Activation of voltage-dependent channels involves charge-moving conformational changes of the voltag...
AbstractThe activation of Shaker K+ channels is steeply voltage dependent. To determine whether cons...
AbstractIn voltage-dependent ion channels, pore opening is initiated by electrically driven movement...
Voltage-gated ion channels play fundamental roles in neural excitability and thus dysfunctional chan...
Despite tremendous progress in the study of voltage-gated channels, the molecular mechanism underlyi...
AbstractThe S4 segment comprises part of the voltage sensor in Shaker K+ channels. We have used a st...
My research focused on voltage-dependent K+ (Kv) channels. Kv channels serve many di erent functions...
Voltage-dependent ion channels are crucial for generation and propagation of electrical activity in ...
Voltage sensors regulate the conformations of voltage-dependent ion channels and enzymes. Their near...
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...
SummaryVoltage-gated ion channels sense transmembrane voltage changes via a paddle-shaped motif that...
Voltage-gated ion channels have a paramount importance in many physiological processes such as cell-...
AbstractThe voltage sensor is a four-transmembrane helix bundle (S1–S4) that couples changes in memb...
SummaryVoltage-gated calcium channels (CaV) regulate numerous vital functions in nerve and muscle ce...
Activation of voltage-dependent channels involves charge-moving conformational changes of the voltag...
AbstractThe activation of Shaker K+ channels is steeply voltage dependent. To determine whether cons...
AbstractIn voltage-dependent ion channels, pore opening is initiated by electrically driven movement...
Voltage-gated ion channels play fundamental roles in neural excitability and thus dysfunctional chan...
Despite tremendous progress in the study of voltage-gated channels, the molecular mechanism underlyi...
AbstractThe S4 segment comprises part of the voltage sensor in Shaker K+ channels. We have used a st...
My research focused on voltage-dependent K+ (Kv) channels. Kv channels serve many di erent functions...
Voltage-dependent ion channels are crucial for generation and propagation of electrical activity in ...