AbstractThe binding of blockers to the human voltage-gated Kv1.5 potassium ion channel is investigated using a three-step procedure consisting of homology modeling, automated docking, and binding free energy calculations from molecular dynamics simulations, in combination with the linear interaction energy method. A reliable homology model of Kv1.5 is constructed using the recently published crystal structure of the Kv1.2 channel as a template. This model is expected to be significantly more accurate than earlier ones based on less similar templates. Using the three-dimensional homology model, a series of blockers with known affinities are docked into the cavity of the ion channel and their free energies of binding are calculated. The predi...
The voltage-gated potassium channel Kv1.3 is an established target for treatment of autoimmune disea...
AbstractA high-resolution crystal structure of KvAP, an archeabacterial voltage-gated potassium (Kv)...
AbstractPotassium ion (K+) channels are attractive targets for rational drug design. Based upon a th...
AbstractThe binding of blockers to the human voltage-gated Kv1.5 potassium ion channel is investigat...
AbstractBinding of blockers to the human voltage-gated hERG potassium channel is studied using a com...
AbstractThe inner pore of potassium channels is targeted by many ligands of intriguingly different c...
Voltage-gated potassium channels of the Kv1 family play a crucial role in the generation and transmi...
AbstractThe conduction properties of the voltage-gated potassium channel Kv1.3 and its modes of inte...
Understanding protein-ligand interactions is highly important in drug development. In the present wo...
Understanding protein-ligand interactions is highly important in drug development. In the present wo...
Understanding protein-ligand interactions is highly important in drug development. In the present wo...
Potassium channels play fundamental roles in physiology. Chemically diverse drugs bind in the pore r...
This study uses the structural coordinates of the determined K+ channels to create comparative model...
The voltage-gated potassium channel Kv1.3 is an attractive target for treatment of autoimmune diseas...
Kv1.5 channels conduct the ultra-rapid delayed rectifier potassium current (I Kur). Pharmacological ...
The voltage-gated potassium channel Kv1.3 is an established target for treatment of autoimmune disea...
AbstractA high-resolution crystal structure of KvAP, an archeabacterial voltage-gated potassium (Kv)...
AbstractPotassium ion (K+) channels are attractive targets for rational drug design. Based upon a th...
AbstractThe binding of blockers to the human voltage-gated Kv1.5 potassium ion channel is investigat...
AbstractBinding of blockers to the human voltage-gated hERG potassium channel is studied using a com...
AbstractThe inner pore of potassium channels is targeted by many ligands of intriguingly different c...
Voltage-gated potassium channels of the Kv1 family play a crucial role in the generation and transmi...
AbstractThe conduction properties of the voltage-gated potassium channel Kv1.3 and its modes of inte...
Understanding protein-ligand interactions is highly important in drug development. In the present wo...
Understanding protein-ligand interactions is highly important in drug development. In the present wo...
Understanding protein-ligand interactions is highly important in drug development. In the present wo...
Potassium channels play fundamental roles in physiology. Chemically diverse drugs bind in the pore r...
This study uses the structural coordinates of the determined K+ channels to create comparative model...
The voltage-gated potassium channel Kv1.3 is an attractive target for treatment of autoimmune diseas...
Kv1.5 channels conduct the ultra-rapid delayed rectifier potassium current (I Kur). Pharmacological ...
The voltage-gated potassium channel Kv1.3 is an established target for treatment of autoimmune disea...
AbstractA high-resolution crystal structure of KvAP, an archeabacterial voltage-gated potassium (Kv)...
AbstractPotassium ion (K+) channels are attractive targets for rational drug design. Based upon a th...