Literature DB >> 19090564

Polarizable empirical force field for nitrogen-containing heteroaromatic compounds based on the classical Drude oscillator.

Pedro E M Lopes1, Guillaume Lamoureux, Alexander D Mackerell.   

Abstract

The polarizable empirical CHARMM force field based on the classical Drude oscillator has been extended to the nitrogen-containing heteroaromatic compounds pyridine, pyrimidine, pyrrole, imidazole, indole, and purine. Initial parameters for the six-membered rings were based on benzene with nonbond parameter optimization focused on the nitrogen atoms and adjacent carbons and attached hydrogens. In the case of five-member rings, parameters were first developed for imidazole and transferred to pyrrole. Optimization of all parameters was performed against an extensive set of quantum mechanical and experimental data. Ab initio data were used for the determination of initial electrostatic parameters, the vibrational analysis, and in the optimization of the relative magnitudes of the Lennard-Jones (LJ) parameters, through computations of the interactions of dimers of model compounds, model compound-water interactions, and interactions of rare gases with model compounds. The absolute values of the LJ parameters were determined targeting experimental heats of vaporization, molecular volumes, heats of sublimation, crystal lattice parameters, and free energies of hydration. Final scaling of the polarizabilities from the gas-phase values by 0.85 was determined by reproduction of the dielectric constants of pyridine and pyrrole. The developed parameter set was extensively validated against additional experimental data such as diffusion constants, heat capacities, and isothermal compressibilities, including data as a function of temperature. Copyright 2008 Wiley Periodicals, Inc.

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Year:  2009        PMID: 19090564      PMCID: PMC2704921          DOI: 10.1002/jcc.21183

Source DB:  PubMed          Journal:  J Comput Chem        ISSN: 0192-8651            Impact factor:   3.376


  28 in total

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2.  A biomolecular force field based on the free enthalpy of hydration and solvation: the GROMOS force-field parameter sets 53A5 and 53A6.

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4.  Toward true DNA base-stacking energies: MP2, CCSD(T), and complete basis set calculations.

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5.  Assessment of the MP2 method, along with several basis sets, for the computation of interaction energies of biologically relevant hydrogen bonded and dispersion bound complexes.

Authors:  Kevin E Riley; Pavel Hobza
Journal:  J Phys Chem A       Date:  2007-07-25       Impact factor: 2.781

6.  Evaluation of the molecular polarizability using the IPPP-CLOPPA-INDO/S method. Application to molecules of biological interest.

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Journal:  J Phys Chem A       Date:  2008-07-02       Impact factor: 2.781

7.  The crystal and molecular structure of purine.

Authors:  D G Watson; R M Sweet; R E Marsh
Journal:  Acta Crystallogr       Date:  1965-10-10

8.  Polarizable empirical force field for alkanes based on the classical Drude oscillator model.

Authors:  Igor V Vorobyov; Victor M Anisimov; Alexander D MacKerell
Journal:  J Phys Chem B       Date:  2005-10-13       Impact factor: 2.991

9.  CHARMM fluctuating charge force field for proteins: I parameterization and application to bulk organic liquid simulations.

Authors:  Sandeep Patel; Charles L Brooks
Journal:  J Comput Chem       Date:  2004-01-15       Impact factor: 3.376

10.  Accurate description of van der Waals complexes by density functional theory including empirical corrections.

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Journal:  J Comput Chem       Date:  2004-09       Impact factor: 3.376

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  33 in total

1.  Matching of additive and polarizable force fields for multiscale condensed phase simulations.

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2.  Kirkwood-Buff analysis of aqueous N-methylacetamide and acetamide solutions modeled by the CHARMM additive and Drude polarizable force fields.

Authors:  Bin Lin; Pedro E M Lopes; Benoît Roux; Alexander D MacKerell
Journal:  J Chem Phys       Date:  2013-08-28       Impact factor: 3.488

3.  Drude polarizable force field for aliphatic ketones and aldehydes, and their associated acyclic carbohydrates.

Authors:  Meagan C Small; Asaminew H Aytenfisu; Fang-Yu Lin; Xibing He; Alexander D MacKerell
Journal:  J Comput Aided Mol Des       Date:  2017-02-11       Impact factor: 3.686

Review 4.  Metal Ion Modeling Using Classical Mechanics.

Authors:  Pengfei Li; Kenneth M Merz
Journal:  Chem Rev       Date:  2017-01-03       Impact factor: 60.622

5.  Polarizable Force Field for Molecular Ions Based on the Classical Drude Oscillator.

Authors:  Fang-Yu Lin; Pedro E M Lopes; Edward Harder; Benoît Roux; Alexander D MacKerell
Journal:  J Chem Inf Model       Date:  2018-04-17       Impact factor: 4.956

6.  Calculating pKa values for substituted phenols and hydration energies for other compounds with the first-order Fuzzy-Border continuum solvation model.

Authors:  Ity Sharma; George A Kaminski
Journal:  J Comput Chem       Date:  2012-07-19       Impact factor: 3.376

7.  Force Field for Peptides and Proteins based on the Classical Drude Oscillator.

Authors:  Pedro E M Lopes; Jing Huang; Jihyun Shim; Yun Luo; Hui Li; Benoît Roux; Alexander D Mackerell
Journal:  J Chem Theory Comput       Date:  2013-12-10       Impact factor: 6.006

8.  All-atom polarizable force field for DNA based on the classical Drude oscillator model.

Authors:  Alexey Savelyev; Alexander D MacKerell
Journal:  J Comput Chem       Date:  2014-04-18       Impact factor: 3.376

9.  Proper balance of solvent-solute and solute-solute interactions in the treatment of the diffusion of glucose using the Drude polarizable force field.

Authors:  Mingjun Yang; Asaminew H Aytenfisu; Alexander D MacKerell
Journal:  Carbohydr Res       Date:  2018-01-31       Impact factor: 2.104

10.  Recent Developments and Applications of the CHARMM force fields.

Authors:  Xiao Zhu; Pedro E M Lopes; Alexander D Mackerell
Journal:  Wiley Interdiscip Rev Comput Mol Sci       Date:  2011-06-28
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