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Balancing the Interactions of Ions, Water, and DNA in the Drude Polarizable Force Field

[Image: see text] Recently we presented a first-generation all-atom Drude polarizable force field for DNA based on the classical Drude oscillator model, focusing on optimization of key dihedral angles followed by extensive validation of the force field parameters. Presently, we describe the procedur...

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Autores principales: Savelyev, Alexey, MacKerell, Alexander D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4064693/
https://www.ncbi.nlm.nih.gov/pubmed/24874104
http://dx.doi.org/10.1021/jp503469s
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author Savelyev, Alexey
MacKerell, Alexander D.
author_facet Savelyev, Alexey
MacKerell, Alexander D.
author_sort Savelyev, Alexey
collection PubMed
description [Image: see text] Recently we presented a first-generation all-atom Drude polarizable force field for DNA based on the classical Drude oscillator model, focusing on optimization of key dihedral angles followed by extensive validation of the force field parameters. Presently, we describe the procedure for balancing the electrostatic interactions between ions, water, and DNA as required for development of the Drude force field for DNA. The proper balance of these interactions is shown to impact DNA stability and subtler conformational properties, including the conformational equilibrium between the BI and BII states, and the A and B forms of DNA. The parametrization efforts were simultaneously guided by gas-phase quantum mechanics (QM) data on small model compounds and condensed-phase experimental data on the hydration and osmotic properties of biologically relevant ions and their solutions, as well as theoretical predictions for ionic distribution around DNA oligomer. In addition, fine-tuning of the internal base parameters was performed to obtain the final DNA model. Notably, the Drude model is shown to more accurately reproduce counterion condensation theory predictions of DNA charge neutralization by the condensed ions as compared to the CHARMM36 additive DNA force field, indicating an improved physical description of the forces dictating the ionic solvation of DNA due to the explicit treatment of electronic polarizability. In combination with the polarizable DNA force field, the availability of Drude polarizable parameters for proteins, lipids, and carbohydrates will allow for simulation studies of heterogeneous biological systems.
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spelling pubmed-40646932015-05-29 Balancing the Interactions of Ions, Water, and DNA in the Drude Polarizable Force Field Savelyev, Alexey MacKerell, Alexander D. J Phys Chem B [Image: see text] Recently we presented a first-generation all-atom Drude polarizable force field for DNA based on the classical Drude oscillator model, focusing on optimization of key dihedral angles followed by extensive validation of the force field parameters. Presently, we describe the procedure for balancing the electrostatic interactions between ions, water, and DNA as required for development of the Drude force field for DNA. The proper balance of these interactions is shown to impact DNA stability and subtler conformational properties, including the conformational equilibrium between the BI and BII states, and the A and B forms of DNA. The parametrization efforts were simultaneously guided by gas-phase quantum mechanics (QM) data on small model compounds and condensed-phase experimental data on the hydration and osmotic properties of biologically relevant ions and their solutions, as well as theoretical predictions for ionic distribution around DNA oligomer. In addition, fine-tuning of the internal base parameters was performed to obtain the final DNA model. Notably, the Drude model is shown to more accurately reproduce counterion condensation theory predictions of DNA charge neutralization by the condensed ions as compared to the CHARMM36 additive DNA force field, indicating an improved physical description of the forces dictating the ionic solvation of DNA due to the explicit treatment of electronic polarizability. In combination with the polarizable DNA force field, the availability of Drude polarizable parameters for proteins, lipids, and carbohydrates will allow for simulation studies of heterogeneous biological systems. American Chemical Society 2014-05-29 2014-06-19 /pmc/articles/PMC4064693/ /pubmed/24874104 http://dx.doi.org/10.1021/jp503469s Text en Copyright © 2014 American Chemical Society Open Access on 05/29/2015
spellingShingle Savelyev, Alexey
MacKerell, Alexander D.
Balancing the Interactions of Ions, Water, and DNA in the Drude Polarizable Force Field
title Balancing the Interactions of Ions, Water, and DNA in the Drude Polarizable Force Field
title_full Balancing the Interactions of Ions, Water, and DNA in the Drude Polarizable Force Field
title_fullStr Balancing the Interactions of Ions, Water, and DNA in the Drude Polarizable Force Field
title_full_unstemmed Balancing the Interactions of Ions, Water, and DNA in the Drude Polarizable Force Field
title_short Balancing the Interactions of Ions, Water, and DNA in the Drude Polarizable Force Field
title_sort balancing the interactions of ions, water, and dna in the drude polarizable force field
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4064693/
https://www.ncbi.nlm.nih.gov/pubmed/24874104
http://dx.doi.org/10.1021/jp503469s
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