AbstractThe ability of macrocycles, enzymes, ion channels, transporters, and DNA to differentiate among ion types is often crucial to their function. Using molecular dynamics simulations on both detailed systems and simple models, we quantify the importance of several factors which affect the ion selectivity of such molecules, including the number of coordinating ligands, their dipole moment, and their vibrational motion. The information resulting from our model systems is distilled into a series of selectivity maps that can be used to read off the relative free energy associated with binding of different ions, and to provide an estimate of the importance of the various factors. Although our maps cannot capture all elements of real systems,...
Quantum mechanics/molecular mechanics (QM/MM) Car-Parrinello simulations were performed to estimate ...
AbstractIn studying ion-selectivity in biomaterials, it is common to study ion-protein interactions ...
AbstractGenerations of scientists have been captivated by ion channels and how they control the work...
The ability of macrocycles, enzymes, ion channels, transporters, and DNA to differentiate among ion ...
AbstractThe ability of macrocycles, enzymes, ion channels, transporters, and DNA to differentiate am...
Several mechanisms have been proposed to explain how ion channels and transporters distinguish betwe...
AbstractThe ability to discriminate between different cations efficiently is essential for the prope...
AbstractThe macroscopic ion-selective behavior of K+ channels is mediated by a multitude of physiolo...
AbstractSelective binding of ions to biomolecules plays a vital role in numerous biological processe...
AbstractTo provide utility in understanding the molecular evolution of ion-selective biomembrane cha...
AbstractHow K+ channels are able to conduct certain cations yet not others remains an important but ...
AbstractThe major pitfalls in studying ion selectivity in binding site models using energy minimizat...
AbstractRecent mutagenesis studies of the ion channel proteins have allowed us to identify amino aci...
AbstractPotassium channels are exquisitely selective, allowing K+ to pass across cell membranes whil...
Ion channels are integral membrane proteins found in all cells that mediate the selective passage of...
Quantum mechanics/molecular mechanics (QM/MM) Car-Parrinello simulations were performed to estimate ...
AbstractIn studying ion-selectivity in biomaterials, it is common to study ion-protein interactions ...
AbstractGenerations of scientists have been captivated by ion channels and how they control the work...
The ability of macrocycles, enzymes, ion channels, transporters, and DNA to differentiate among ion ...
AbstractThe ability of macrocycles, enzymes, ion channels, transporters, and DNA to differentiate am...
Several mechanisms have been proposed to explain how ion channels and transporters distinguish betwe...
AbstractThe ability to discriminate between different cations efficiently is essential for the prope...
AbstractThe macroscopic ion-selective behavior of K+ channels is mediated by a multitude of physiolo...
AbstractSelective binding of ions to biomolecules plays a vital role in numerous biological processe...
AbstractTo provide utility in understanding the molecular evolution of ion-selective biomembrane cha...
AbstractHow K+ channels are able to conduct certain cations yet not others remains an important but ...
AbstractThe major pitfalls in studying ion selectivity in binding site models using energy minimizat...
AbstractRecent mutagenesis studies of the ion channel proteins have allowed us to identify amino aci...
AbstractPotassium channels are exquisitely selective, allowing K+ to pass across cell membranes whil...
Ion channels are integral membrane proteins found in all cells that mediate the selective passage of...
Quantum mechanics/molecular mechanics (QM/MM) Car-Parrinello simulations were performed to estimate ...
AbstractIn studying ion-selectivity in biomaterials, it is common to study ion-protein interactions ...
AbstractGenerations of scientists have been captivated by ion channels and how they control the work...