Evolutionary imprint of activation: the design principles of VSDs.
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The hitchhiker's guide to the voltage-gated sodium channel galaxyCommandeering Channel Voltage Sensors for Secretion, Cell Turgor, and Volume ControlMembrane Protein Structure, Function, and Dynamics: a Perspective from Experiments and Theory.Regulation of KCNQ/Kv7 family voltage-gated K+ channels by lipids.Bacterial voltage-gated sodium channels (BacNa(V)s) from the soil, sea, and salt lakes enlighten molecular mechanisms of electrical signaling and pharmacology in the brain and heart.Functional heterogeneity of the four voltage sensors of a human L-type calcium channelComparative sequence analysis suggests a conserved gating mechanism for TRP channels.Voltage Sensing in Membranes: From Macroscopic Currents to Molecular MotionsThe α2δ-1 subunit remodels CaV1.2 voltage sensors and allows Ca2+ influx at physiological membrane potentialsAccurate Estimation of the Intrinsic Dimension Using Graph Distances: Unraveling the Geometric Complexity of Datasets.Divining the design principles of voltage sensors.Purification and structural study of the voltage-sensor domain of the human KCNQ1 potassium ion channelSmall molecule modulation of voltage gated sodium channels.Identifying relevant positions in proteins by Critical Variable Selection.Gating pore currents, a new pathological mechanism underlying cardiac arrhythmias associated with dilated cardiomyopathy.Voltage-sensor transitions of the inward-rectifying K+ channel KAT1 indicate a latching mechanism biased by hydration within the voltage sensor.Mutations in the Voltage Sensors of Domains I and II of Nav1.5 that are Associated with Arrhythmias and Dilated Cardiomyopathy Generate Gating Pore Currents.Atomistic Modeling of Ion Conduction through the Voltage-Sensing Domain of the Shaker K+ Ion Channel.Patterns of coevolving amino acids unveil structural and dynamical domains.Conversion of an instantaneous activating K+ channel into a slow activating inward rectifier.A vesicle-trafficking protein commandeers Kv channel voltage sensors for voltage-dependent secretion.Structural insight into the transmembrane segments 3 and 4 of the hERG potassium channel
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P2860
Evolutionary imprint of activation: the design principles of VSDs.
description
article científic
@ca
article scientifique
@fr
articolo scientifico
@it
artigo científico
@pt
bilimsel makale
@tr
scientific article published on February 2014
@en
vedecký článok
@sk
vetenskaplig artikel
@sv
videnskabelig artikel
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vědecký článek
@cs
name
Evolutionary imprint of activation: the design principles of VSDs.
@en
Evolutionary imprint of activation: the design principles of VSDs.
@nl
type
label
Evolutionary imprint of activation: the design principles of VSDs.
@en
Evolutionary imprint of activation: the design principles of VSDs.
@nl
prefLabel
Evolutionary imprint of activation: the design principles of VSDs.
@en
Evolutionary imprint of activation: the design principles of VSDs.
@nl
P2093
P2860
P356
P1476
Evolutionary imprint of activation: the design principles of VSDs.
@en
P2093
Eugene Palovcak
Michael L Klein
Vincenzo Carnevale
P2860
P304
P356
10.1085/JGP.201311103
P577
2014-02-01T00:00:00Z