Literature DB >> 23550030

Quantum Dynamics in Continuum for Proton Transport I: Basic Formulation.

Duan Chen1, Guo-Wei Wei.   

Abstract

Proton transport is one of the most important and interesting phenomena in living cells. The present work proposes a multiscale/multiphysics model for the understanding of the molecular mechanism of proton transport in transmembrane proteins. We describe proton dynamics quantum mechanically via a density functional approach while implicitly model other solvent ions as a dielectric continuum to reduce the number of degrees of freedom. The densities of all other ions in the solvent are assumed to obey the Boltzmann distribution. The impact of protein molecular structure and its charge polarization on the proton transport is considered explicitly at the atomic level. We formulate a total free energy functional to put proton kinetic and potential energies as well as electrostatic energy of all ions on an equal footing. The variational principle is employed to derive nonlinear governing equations for the proton transport system. Generalized Poisson-Boltzmann equation and Kohn-Sham equation are obtained from the variational framework. Theoretical formulations for the proton density and proton conductance are constructed based on fundamental principles. The molecular surface of the channel protein is utilized to split the discrete protein domain and the continuum solvent domain, and facilitate the multiscale discrete/continuum/quantum descriptions. A number of mathematical algorithms, including the Dirichlet to Neumann mapping, matched interface and boundary method, Gummel iteration, and Krylov space techniques are utilized to implement the proposed model in a computationally efficient manner. The Gramicidin A (GA) channel is used to demonstrate the performance of the proposed proton transport model and validate the efficiency of proposed mathematical algorithms. The electrostatic characteristics of the GA channel is analyzed with a wide range of model parameters. The proton conductances are studied over a number of applied voltages and reference concentrations. A comparison with experimental data verifies the present model predictions and validates the proposed model.

Entities:  

Keywords:  Poisson-Boltzmann equation; Proton transport; generalized Kohn-Sham equation; multiscale model; quantum dynamics in continuum; variational principle

Year:  2012        PMID: 23550030      PMCID: PMC3580801          DOI: 10.4208/cicp.050511.050811s

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


  39 in total

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2.  Continuum electrostatics fails to describe ion permeation in the gramicidin channel.

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Review 4.  Gramicidin as an example of a single-filing ionic channel.

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7.  Proton transfer in gramicidin water wires in phospholipid bilayers: attenuation by phosphoethanolamine.

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9.  Treatment of charge singularities in implicit solvent models.

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Journal:  J Chem Phys       Date:  2007-09-21       Impact factor: 3.488

10.  Highly accurate biomolecular electrostatics in continuum dielectric environments.

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  8 in total

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7.  Variational multiscale models for charge transport.

Authors:  Guo-Wei Wei; Qiong Zheng; Zhan Chen; Kelin Xia
Journal:  SIAM Rev Soc Ind Appl Math       Date:  2012-11-08       Impact factor: 10.780

8.  Biomolecular surface construction by PDE transform.

Authors:  Qiong Zheng; Siyang Yang; Guo-Wei Wei
Journal:  Int J Numer Method Biomed Eng       Date:  2011-09-26       Impact factor: 2.747

  8 in total

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