Literature DB >> 24363784

A Stabilized Finite Element Method for Modified Poisson-Nernst-Planck Equations to Determine Ion Flow Through a Nanopore.

Jehanzeb Hameed Chaudhry1, Jeffrey Comer2, Aleksei Aksimentiev2, Luke N Olson3.   

Abstract

The conventional Poisson-Nernst-Planck equations do not account for the finite size of ions explicitly. This leads to solutions featuring unrealistically high ionic concentrations in the regions subject to external potentials, in particular, near highly charged surfaces. A modified form of the Poisson-Nernst-Planck equations accounts for steric effects and results in solutions with finite ion concentrations. Here, we evaluate numerical methods for solving the modified Poisson-Nernst-Planck equations by modeling electric field-driven transport of ions through a nanopore. We describe a novel, robust finite element solver that combines the applications of the Newton's method to the nonlinear Galerkin form of the equations, augmented with stabilization terms to appropriately handle the drift-diffusion processes. To make direct comparison with particle-based simulations possible, our method is specifically designed to produce solutions under periodic boundary conditions and to conserve the number of ions in the solution domain. We test our finite element solver on a set of challenging numerical experiments that include calculations of the ion distribution in a volume confined between two charged plates, calculations of the ionic current though a nanopore subject to an external electric field, and modeling the effect of a DNA molecule on the ion concentration and nanopore current.

Entities:  

Keywords:  PNP; SUPG; Steric effects; continuum transport theory; finite element method; ion channels; ionic current; nucleic acids

Year:  2014        PMID: 24363784      PMCID: PMC3867981          DOI: 10.4208/cicp.101112.100413a

Source DB:  PubMed          Journal:  Commun Comput Phys        ISSN: 1815-2406            Impact factor:   3.246


  44 in total

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Review 6.  Modeling and simulation of ion channels.

Authors:  Christopher Maffeo; Swati Bhattacharya; Jejoong Yoo; David Wells; Aleksei Aksimentiev
Journal:  Chem Rev       Date:  2012-10-04       Impact factor: 60.622

Review 7.  Patch clamp techniques for studying ionic channels in excitable membranes.

Authors:  B Sakmann; E Neher
Journal:  Annu Rev Physiol       Date:  1984       Impact factor: 19.318

8.  Ions and counterions in a biological channel: a molecular dynamics simulation of OmpF porin from Escherichia coli in an explicit membrane with 1 M KCl aqueous salt solution.

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Review 9.  The potential and challenges of nanopore sequencing.

Authors:  Daniel Branton; David W Deamer; Andre Marziali; Hagan Bayley; Steven A Benner; Thomas Butler; Massimiliano Di Ventra; Slaven Garaj; Andrew Hibbs; Xiaohua Huang; Stevan B Jovanovich; Predrag S Krstic; Stuart Lindsay; Xinsheng Sean Ling; Carlos H Mastrangelo; Amit Meller; John S Oliver; Yuriy V Pershin; J Michael Ramsey; Robert Riehn; Gautam V Soni; Vincent Tabard-Cossa; Meni Wanunu; Matthew Wiggin; Jeffery A Schloss
Journal:  Nat Biotechnol       Date:  2008-10       Impact factor: 54.908

10.  Poisson-Nernst-Planck models of nonequilibrium ion electrodiffusion through a protegrin transmembrane pore.

Authors:  Dan S Bolintineanu; Abdallah Sayyed-Ahmad; H Ted Davis; Yiannis N Kaznessis
Journal:  PLoS Comput Biol       Date:  2009-01-30       Impact factor: 4.475

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Review 2.  Close encounters with DNA.

Authors:  C Maffeo; J Yoo; J Comer; D B Wells; B Luan; A Aksimentiev
Journal:  J Phys Condens Matter       Date:  2014-09-19       Impact factor: 2.333

3.  Rapid and Accurate Determination of Nanopore Ionic Current Using a Steric Exclusion Model.

Authors:  James Wilson; Kumar Sarthak; Wei Si; Luyu Gao; Aleksei Aksimentiev
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4.  1D Measurement of Sodium Ion Flow in Hydrogel After a Bath Concentration Jump.

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5.  Conic shapes have higher sensitivity than cylindrical ones in nanopore DNA sequencing.

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  5 in total

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