The mechanisms underlying transport of ions across the potassium channel are examined using electrostatic calculations and three-dimensional Brownian dynamics simulations. We first build open-state configurations of the channel with molecular dynamics simulations, by pulling the transmembrane helices outward until the channel attains the desired interior radius. To gain insights into ion permeation, we construct potential energy profiles experienced by an ion traversing the channel in the presence of other resident ions. These profiles reveal that in the absence of an applied field the channel accommodates three potassium ions in a stable equilibrium, two in the selectivity filter and one in the central cavity. In the presence of a driving ...
Potassium channels enable K(+) ions to move passively across biological membranes. Multiple nanoseco...
AbstractMolecular dynamics simulations and electrostatic modeling are used to investigate structural...
Potassium channels enable K(+) ions to move passively across biological membranes. Multiple nanoseco...
AbstractThe mechanisms underlying transport of ions across the potassium channel are examined using ...
The mechanisms underlying transport of ions across the potassium channel are examined using electros...
AbstractThe mechanisms underlying transport of ions across the potassium channel are examined using ...
AbstractThree-dimensional Brownian dynamics simulations are used to study conductance of the KcsA po...
AbstractUsing the experimentally determined KcsA structure as a template, we propose a plausible exp...
AbstractThe physical mechanisms underlying the transport of ions across a model potassium channel ar...
AbstractA hierarchical computational strategy combining molecular modeling, electrostatics calculati...
The physical mechanisms underlying the transport of ions across a model potassium channel are descri...
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...
AbstractUsing the experimentally determined KcsA structure as a template, we propose a plausible exp...
AbstractThe structural, dynamical, and thermodynamic properties of a model potassium channel are stu...
Potassium channels enable K(+) ions to move passively across biological membranes. Multiple nanoseco...
AbstractMolecular dynamics simulations and electrostatic modeling are used to investigate structural...
Potassium channels enable K(+) ions to move passively across biological membranes. Multiple nanoseco...
AbstractThe mechanisms underlying transport of ions across the potassium channel are examined using ...
The mechanisms underlying transport of ions across the potassium channel are examined using electros...
AbstractThe mechanisms underlying transport of ions across the potassium channel are examined using ...
AbstractThree-dimensional Brownian dynamics simulations are used to study conductance of the KcsA po...
AbstractUsing the experimentally determined KcsA structure as a template, we propose a plausible exp...
AbstractThe physical mechanisms underlying the transport of ions across a model potassium channel ar...
AbstractA hierarchical computational strategy combining molecular modeling, electrostatics calculati...
The physical mechanisms underlying the transport of ions across a model potassium channel are descri...
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...
AbstractUsing the experimentally determined KcsA structure as a template, we propose a plausible exp...
AbstractThe structural, dynamical, and thermodynamic properties of a model potassium channel are stu...
Potassium channels enable K(+) ions to move passively across biological membranes. Multiple nanoseco...
AbstractMolecular dynamics simulations and electrostatic modeling are used to investigate structural...
Potassium channels enable K(+) ions to move passively across biological membranes. Multiple nanoseco...