Although extensively studied, it has proved difficult to describe in detail how potassium ion channels conduct cations and water. We present a computational study that, by using stratified umbrella sampling, examines nearly an entire conduction event of the Kv1.2/2.1 paddle chimera and thereby identifies the expected stable configurations of ions and waters in the selectivity filter of the channel. We describe in detail the motions of the ions and waters during a conduction event, focusing on how waters and ions enter the filter, the rotation of water molecules inside the filter, and how potassium ions are coordinated as they move from a water to a protein environment. Finally, we analyze the small conformational changes undergone by the pr...
The structural, dynamical, and thermodynamic properties of a model potassium channel are studied usi...
SummaryThe selectivity filter of potassium channels is the structural element directly responsible f...
Potassium channels can conduct passively K+ ions with rates of up to ∼ 108 ions per second at physio...
ABSTRACT: Although extensively studied, it has proved difficult to describe in detail how potassium ...
K+-channels are membrane proteins that regulate the selective conduction of potassium ions across ce...
AbstractThe crystallographic structure of a potassium channel, Kv1.2, in an open state makes it feas...
The chemical-physical basis for K+ permeation and selectivity in K+ channels has been the focus of a...
The chemical-physical basis for K+ permeation and selectivity in K+ channels has been the focus of a...
AbstractInteractions of Na+, K+, Rb+, and Cs+ ions within the selectivity filter of a potassium chan...
ABSTRACT: Potassium ion channels form pores in cell membranes, allowing potassium ions through while...
AbstractThe structural, dynamical, and thermodynamic properties of a model potassium channel are stu...
Biological ion channels are protein pores of sub-nanometer radius that enable rapid movement of sele...
AbstractMolecular dynamics simulations and electrostatic modeling are used to investigate structural...
Ion permeation, selectivity, and the behavior of the K+ channel selectivity filter have been studied...
ABSTRACT Potassium channels enable K1 ions to move passively across biological membranes. Multiple n...
The structural, dynamical, and thermodynamic properties of a model potassium channel are studied usi...
SummaryThe selectivity filter of potassium channels is the structural element directly responsible f...
Potassium channels can conduct passively K+ ions with rates of up to ∼ 108 ions per second at physio...
ABSTRACT: Although extensively studied, it has proved difficult to describe in detail how potassium ...
K+-channels are membrane proteins that regulate the selective conduction of potassium ions across ce...
AbstractThe crystallographic structure of a potassium channel, Kv1.2, in an open state makes it feas...
The chemical-physical basis for K+ permeation and selectivity in K+ channels has been the focus of a...
The chemical-physical basis for K+ permeation and selectivity in K+ channels has been the focus of a...
AbstractInteractions of Na+, K+, Rb+, and Cs+ ions within the selectivity filter of a potassium chan...
ABSTRACT: Potassium ion channels form pores in cell membranes, allowing potassium ions through while...
AbstractThe structural, dynamical, and thermodynamic properties of a model potassium channel are stu...
Biological ion channels are protein pores of sub-nanometer radius that enable rapid movement of sele...
AbstractMolecular dynamics simulations and electrostatic modeling are used to investigate structural...
Ion permeation, selectivity, and the behavior of the K+ channel selectivity filter have been studied...
ABSTRACT Potassium channels enable K1 ions to move passively across biological membranes. Multiple n...
The structural, dynamical, and thermodynamic properties of a model potassium channel are studied usi...
SummaryThe selectivity filter of potassium channels is the structural element directly responsible f...
Potassium channels can conduct passively K+ ions with rates of up to ∼ 108 ions per second at physio...