Ion transport between two baths of fixed ionic concentrations and applied electrostatic (ES) potential is analysed using a one-dimensional drift-diffusion (Poisson–Nernst–Planck, PNP) transport system designed to model biological ion channels. The ions are described as charged, hard spheres with excess chemical potentials computed from equilibrium density functional theory (DFT). The method of Rosenfeld (Rosenfeld Y 1993 J. Chem. Phys. 98 8126) is generalized to calculate the ES excess chemical potential in channels. A numerical algorithm for solving the set of integral–differential PNP/DFT equations is described and used to calculate flux through a calcium-selective ion channel. 1
The transport of ions across single-molecule protein nanochannels is important both in the biologica...
We study the event of ion flow through ion channel proteins modeled with a one-dimensional Poisson-N...
We study the event of ion flow through ion channel proteins modeled with a one-dimensional Poisson-N...
73 p.Thesis (Ph.D.)--University of Illinois at Urbana-Champaign, 2007.Ion channels are proteins embe...
73 p.Thesis (Ph.D.)--University of Illinois at Urbana-Champaign, 2007.Ion channels are proteins embe...
AbstractA composite continuum theory for calculating ion current through a protein channel of known ...
Ions crossing biological membranes are described as a concentration of charge flowing through a sele...
In this article a theory is presented to calculate integral properties of biological ion channels (l...
In this article a theory is presented to calculate integral properties of biological ion channels (l...
Recent results of X-Ray crystallography have provided important information for functional studies o...
Recent results of X-Ray crystallography have provided important information for functional studies o...
Recent results of X-Ray crystallography have provided important information for functional studies o...
We study a quasi-one-dimensional steady-state Poisson-Nernst-Planck type model for ionic flows throu...
Abstract. We have developed efficient numerical algorithms for solving 3D steady-state Poisson-Nerns...
A novel algorithmic scheme for numerical solution of the 3D Poisson-Nernst-Planck model is proposed....
The transport of ions across single-molecule protein nanochannels is important both in the biologica...
We study the event of ion flow through ion channel proteins modeled with a one-dimensional Poisson-N...
We study the event of ion flow through ion channel proteins modeled with a one-dimensional Poisson-N...
73 p.Thesis (Ph.D.)--University of Illinois at Urbana-Champaign, 2007.Ion channels are proteins embe...
73 p.Thesis (Ph.D.)--University of Illinois at Urbana-Champaign, 2007.Ion channels are proteins embe...
AbstractA composite continuum theory for calculating ion current through a protein channel of known ...
Ions crossing biological membranes are described as a concentration of charge flowing through a sele...
In this article a theory is presented to calculate integral properties of biological ion channels (l...
In this article a theory is presented to calculate integral properties of biological ion channels (l...
Recent results of X-Ray crystallography have provided important information for functional studies o...
Recent results of X-Ray crystallography have provided important information for functional studies o...
Recent results of X-Ray crystallography have provided important information for functional studies o...
We study a quasi-one-dimensional steady-state Poisson-Nernst-Planck type model for ionic flows throu...
Abstract. We have developed efficient numerical algorithms for solving 3D steady-state Poisson-Nerns...
A novel algorithmic scheme for numerical solution of the 3D Poisson-Nernst-Planck model is proposed....
The transport of ions across single-molecule protein nanochannels is important both in the biologica...
We study the event of ion flow through ion channel proteins modeled with a one-dimensional Poisson-N...
We study the event of ion flow through ion channel proteins modeled with a one-dimensional Poisson-N...