Protein molecular dynamics with the generalized born/ACE solvent model
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T. Simonson | N. Calimet | M. Schaefer | T Simonson | N Calimet | M Schaefer | Nicolas Calimet | Nicolas Calimet
[1] W. Im,et al. Continuum solvation model: Computation of electrostatic forces from numerical solutions to the Poisson-Boltzmann equation , 1998 .
[2] Thomas Simonson,et al. Implicit solvent models: Combining an analytical formulation of continuum electrostatics with simple models of the hydrophobic effect , 1999, J. Comput. Chem..
[3] C. Brooks,et al. A molecular dynamics simulation study of segment B1 of protein G , 1997, Proteins.
[4] R. Friesner,et al. Generalized Born Model Based on a Surface Integral Formulation , 1998 .
[5] K. Sharp,et al. Electrostatic interactions in macromolecules: theory and applications. , 1990, Annual review of biophysics and biophysical chemistry.
[6] Gregory D. Hawkins,et al. Pairwise solute descreening of solute charges from a dielectric medium , 1995 .
[7] K. Takano. ON SOLUTION OF , 1983 .
[8] C. Chothia,et al. Hydrophobic bonding and accessible surface area in proteins , 1974, Nature.
[9] P. Kraulis. A program to produce both detailed and schematic plots of protein structures , 1991 .
[10] J. Apostolakis,et al. Continuum Electrostatic Energies of Macromolecules in Aqueous Solutions , 1997 .
[11] W. C. Still,et al. The GB/SA Continuum Model for Solvation. A Fast Analytical Method for the Calculation of Approximate Born Radii , 1997 .
[12] J. Andrew McCammon,et al. Dielectric boundary smoothing in finite difference solutions of the poisson equation: An approach to improve accuracy and convergence , 1991 .
[13] Bernard R. Brooks,et al. New spherical‐cutoff methods for long‐range forces in macromolecular simulation , 1994, J. Comput. Chem..
[14] A. Gronenborn,et al. Investigation of the backbone dynamics of the igg‐binding domain of streptococcal protein g by heteronuclear two‐dimensional 1H‐15N nuclear magnetic resonance spectroscopy , 1994, Protein science : a publication of the Protein Society.
[15] M. Karplus,et al. Solution conformations and thermodynamics of structured peptides: molecular dynamics simulation with an implicit solvation model. , 1998, Journal of molecular biology.
[16] M. Born. Volumen und Hydratationswärme der Ionen , 1920 .
[17] M. Schaefer,et al. A precise analytical method for calculating the electrostatic energy of macromolecules in aqueous solution. , 1990, Journal of molecular biology.
[18] Wei Zu Chen,et al. A Stochastic Dynamics Simulation Study Associated with Hydration Force and Friction Memory Effect , 2000 .
[19] Raymond M. Fuoss,et al. Theory of dielectrics. , 1949 .
[20] J. Andrew McCammon,et al. Computation of electrostatic forces on solvated molecules using the Poisson-Boltzmann equation , 1993 .
[21] Arieh Warshel,et al. Consistent Calculations of pKa's of Ionizable Residues in Proteins: Semi-microscopic and Microscopic Approaches , 1997 .
[22] D. Chandler,et al. Hydrophobicity at Small and Large Length Scales , 1999 .
[23] A. Shrake,et al. Environment and exposure to solvent of protein atoms. Lysozyme and insulin. , 1973, Journal of molecular biology.
[24] J. Apostolakis,et al. Exhaustive docking of molecular fragments with electrostatic solvation , 1999, Proteins.
[25] G. Hummer,et al. HYDROPHOBIC FORCE FIELD AS A MOLECULAR ALTERNATIVE TO SURFACE-AREA MODELS , 1999 .
[26] Michael H. Abraham,et al. Free energies, enthalpies, and entropies of solution of gaseous nonpolar nonelectrolytes in water and nonaqueous solvents. The hydrophobic effect , 1982 .
[27] J. Kirkwood,et al. The Electrostatic Influence of Substituents on the Dissociation Constants of Organic Acids. II , 1938 .
[28] P. Kollman,et al. Continuum Solvent Studies of the Stability of DNA, RNA, and Phosphoramidate−DNA Helices , 1998 .
[29] P M Cullis,et al. Affinities of amino acid side chains for solvent water. , 1981, Biochemistry.
[30] M. B. Pinto,et al. Optimized δ expansion for relativistic nuclear models , 1997, nucl-th/9709049.
[31] G. Temple. Static and Dynamic Electricity , 1940, Nature.
[32] Thomas Simonson,et al. A POISSON-BOLTZMANN STUDY OF CHARGE INSERTION IN AN ENZYME ACTIVE SITE : THE EFFECT OF DIELECTRIC RELAXATION , 1999 .
[33] B. Dominy,et al. Development of a generalized Born model parameterization for proteins and nucleic acids , 1999 .
[34] K. Sharp,et al. Accurate Calculation of Hydration Free Energies Using Macroscopic Solvent Models , 1994 .
[35] R. Campbell,et al. Solution structures of cyclic and dicyclic analogues of growth hormone releasing factor as determined by two‐dimensional NMR and CD spectroscopies and constrained molecular dynamics , 1992, Biopolymers.
[36] E. Stoll. A fast cluster counting algorithm for percolation on and off lattices , 1998 .
[37] James Andrew McCammon,et al. Molecular dynamics simulation with a continuum electrostatic model of the solvent , 1995, J. Comput. Chem..
[38] M Karplus,et al. Polar hydrogen positions in proteins: Empirical energy placement and neutron diffraction comparison , 1988, Proteins.
[39] T. Simonson,et al. Macromolecular electrostatics: continuum models and their growing pains. , 2001, Current opinion in structural biology.
[40] J. Apostolakis,et al. Comparison of a GB Solvation Model with Explicit Solvent Simulations: Potentials of Mean Force and Conformational Preferences of Alanine Dipeptide and 1,2-Dichloroethane , 1998 .
[41] Donald G. Truhlar,et al. PARAMETRIZED MODEL FOR AQUEOUS FREE ENERGIES OF SOLVATION USING GEOMETRY-DEPENDENT ATOMIC SURFACE TENSIONS WITH IMPLICIT ELECTROSTATICS , 1997 .
[42] Alexander D. MacKerell,et al. Computational Biochemistry and Biophysics , 2001 .
[43] M. Karplus,et al. Proteins: A Theoretical Perspective of Dynamics, Structure, and Thermodynamics , 1988 .
[44] K. Sharp,et al. Calculating the electrostatic potential of molecules in solution: Method and error assessment , 1988 .
[45] M. Karplus,et al. A Comprehensive Analytical Treatment of Continuum Electrostatics , 1996 .
[46] Kim A. Sharp,et al. Incorporating solvent and ion screening into molecular dynamics using the finite‐difference Poisson–Boltzmann method , 1991 .
[47] D. Case,et al. Molecular Dynamics Simulations of Nucleic Acids with a Generalized Born Solvation Model , 2000 .
[48] D. Beglov,et al. Atomic Radii for Continuum Electrostatics Calculations Based on Molecular Dynamics Free Energy Simulations , 1997 .
[49] L. R. Scott,et al. Electrostatics and diffusion of molecules in solution: simulations with the University of Houston Brownian dynamics program , 1995 .
[50] Heather A. Carlson,et al. Molecular dynamics of cryptophane and its complexes with tetramethylammonium and neopentane using a continuum solvent model , 1999, J. Comput. Chem..
[51] M. Marchi,et al. A dielectric continuum molecular dynamics method , 2001 .
[52] W. V. van Gunsteren,et al. An efficient mean solvation force model for use in molecular dynamics simulations of proteins in aqueous solution. , 1996, Journal of molecular biology.
[53] C. Brooks,et al. Comparative Study of the Folding Free Energy Landscape of a Three-Stranded β-Sheet Protein with Explicit and Implicit Solvent Models , 2000 .
[54] G. Ciccotti,et al. Numerical Integration of the Cartesian Equations of Motion of a System with Constraints: Molecular Dynamics of n-Alkanes , 1977 .
[55] D. Eisenberg,et al. Atomic solvation parameters applied to molecular dynamics of proteins in solution , 1992, Protein science : a publication of the Protein Society.
[56] Thomas Simonson,et al. Microscopic Dielectric Properties of Cytochrome c from Molecular Dynamics Simulations in Aqueous Solution , 1995 .
[57] F. J. Luque,et al. Theoretical Methods for the Description of the Solvent Effect in Biomolecular Systems. , 2000, Chemical reviews.
[58] K. Hall,et al. Unrestrained stochastic dynamics simulations of the UUCG tetraloop using an implicit solvation model. , 1999, Biophysical journal.
[59] Christian Bartels,et al. Solution conformations of structured peptides: continuum electrostatics versus distance-dependent dielectric functions , 1999 .
[60] P. Harbury,et al. Tanford-Kirkwood electrostatics for protein modeling. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[61] Fabrice Leclerc,et al. Effective atom volumes for implicit solvent models: comparison between Voronoi volumes and minimum fluctuation volumes , 2001, J. Comput. Chem..
[62] Benoît Roux,et al. Molecular basis for the Born model of ion solvation , 1990 .
[63] Thomas Simonson,et al. Solvation Free Energies Estimated from Macroscopic Continuum Theory: An Accuracy Assessment , 1994 .
[64] D. Case,et al. Modification of the Generalized Born Model Suitable for Macromolecules , 2000 .
[65] M. Karplus,et al. CHARMM: A program for macromolecular energy, minimization, and dynamics calculations , 1983 .
[66] B. Brooks,et al. A 500 ps molecular dynamics simulation study of interleukin-1 beta in water. Correlation with nuclear magnetic resonance spectroscopy and crystallography. , 1992, Journal of molecular biology.
[67] B. Roux,et al. Implicit solvent models. , 1999, Biophysical chemistry.
[68] M. Karplus,et al. Electrostatic contributions to molecular free energies in solution. , 1998, Advances in protein chemistry.
[69] W. C. Still,et al. Semianalytical treatment of solvation for molecular mechanics and dynamics , 1990 .
[70] M. Karplus,et al. Effective energy function for proteins in solution , 1999, Proteins.
[71] D. Case,et al. Generalized born models of macromolecular solvation effects. , 2000, Annual review of physical chemistry.
[72] Malcolm E. Davis,et al. Electrostatics in biomolecular structure and dynamics , 1990 .