AbstractWe have performed simulations of both a single potassium ion and a single sodium ion within the pore of the bacterial potassium channel KcsA. For both ions there is a dehydration energy barrier at the cytoplasmic mouth suggesting that the crystal structure is a closed conformation of the channel. There is a potential energy barrier for a sodium ion in the selectivity filter that is not seen for potassium. Radial distribution functions for both ions with the carbonyl oxygens of the selectivity filter indicate that sodium may interact more tightly with the filter than does potassium. This suggests that the key to the ion selectivity of KcsA is the greater dehydration energy of Na+ ions, and helps to explain the block of KcsA by intern...
Since the availability of the first crystal structure of a bacterial Na+ channel in 2011, understand...
ABSTRACT Potassium channels enable K1 ions to move passively across biological membranes. Multiple n...
Potassium channels enable K(+) ions to move passively across biological membranes. Multiple nanoseco...
We have performed simulations of both a single potassium ion and a single sodium ion within the pore...
We have performed simulations of both a single potassium ion and a single sodium ion within the pore...
AbstractThe structural, dynamical, and thermodynamic properties of a model potassium channel are stu...
AbstractInteractions of Na+, K+, Rb+, and Cs+ ions within the selectivity filter of a potassium chan...
The structural, dynamical, and thermodynamic properties of a model potassium channel are studied usi...
AbstractThe structural, dynamical, and thermodynamic properties of a model potassium channel are stu...
AbstractMolecular dynamics simulations of a bacterial potassium channel (KcsA) embedded in a phospho...
AbstractMolecular dynamics simulations and electrostatic modeling are used to investigate structural...
AbstractConduction of ions through the NaK channel, with M0 helix removed, was studied using both Br...
Since the availability of the first crystal structure of a bacterial Na+ channel in 2011, understand...
Since the availability of the first crystal structure of a bacterial Na+ channel in 2011, understand...
Since the availability of the first crystal structure of a bacterial Na+ channel in 2011, understand...
Since the availability of the first crystal structure of a bacterial Na+ channel in 2011, understand...
ABSTRACT Potassium channels enable K1 ions to move passively across biological membranes. Multiple n...
Potassium channels enable K(+) ions to move passively across biological membranes. Multiple nanoseco...
We have performed simulations of both a single potassium ion and a single sodium ion within the pore...
We have performed simulations of both a single potassium ion and a single sodium ion within the pore...
AbstractThe structural, dynamical, and thermodynamic properties of a model potassium channel are stu...
AbstractInteractions of Na+, K+, Rb+, and Cs+ ions within the selectivity filter of a potassium chan...
The structural, dynamical, and thermodynamic properties of a model potassium channel are studied usi...
AbstractThe structural, dynamical, and thermodynamic properties of a model potassium channel are stu...
AbstractMolecular dynamics simulations of a bacterial potassium channel (KcsA) embedded in a phospho...
AbstractMolecular dynamics simulations and electrostatic modeling are used to investigate structural...
AbstractConduction of ions through the NaK channel, with M0 helix removed, was studied using both Br...
Since the availability of the first crystal structure of a bacterial Na+ channel in 2011, understand...
Since the availability of the first crystal structure of a bacterial Na+ channel in 2011, understand...
Since the availability of the first crystal structure of a bacterial Na+ channel in 2011, understand...
Since the availability of the first crystal structure of a bacterial Na+ channel in 2011, understand...
ABSTRACT Potassium channels enable K1 ions to move passively across biological membranes. Multiple n...
Potassium channels enable K(+) ions to move passively across biological membranes. Multiple nanoseco...