articleTop 1% cited
Calculating Structures and Free Energies of Complex Molecules: Combining Molecular Mechanics and Continuum Models
Accounts of Chemical Research · 2000 · Vol. 33(12) · pp. 889–897
Peter A. Kollman✉(Scripps Research Institute)Irina Massova(Scripps Research Institute)Carolina Reyes(University of California, San Francisco)Bernd Kuhn(Scripps Research Institute)Shuanghong Huo(University of California, San Francisco)Lillian T. Chong(Scripps Research Institute)Matthew Lee(University of Utah)Tai‐Sung Lee(University of California, San Francisco)Yong Duan(University of California, San Francisco)Wei Wang(University of California, San Francisco)Oreola Donini(University of California, San Francisco)Piotr Cieplak(University of California, San Francisco)Jaysharee Srinivasan(Scripps Research Institute)David A. Case(Scripps Research Institute)Thomas E. Cheatham(University of Utah)
Abstract
A historical perspective on the application of molecular dynamics (MD) to biological macromolecules is presented. Recent developments combining state-of-the-art force fields with continuum solvation calculations have allowed us to reach the fourth era of MD applications in which one can often derive both accurate structure and accurate relative free energies from molecular dynamics trajectories. We illustrate such applications on nucleic acid duplexes, RNA hairpins, protein folding trajectories, and protein-ligand, protein-protein, and protein-nucleic acid interactions.
Protein Structure and DynamicsRNA and protein synthesis mechanismsDNA and Nucleic Acid ChemistryNucleic acidSolvationMolecular dynamicsMolecular mechanicsStatistical physicsImplicit solvationProtein foldingFolding (DSP implementation)MacromoleculeChemistry
MeSH terms
Base SequenceDNAModels, MolecularProteinsRNAThermodynamicsMolecular Structure
Citations
4,872
FWCI
13.43
field-weighted impact
References
61
Percentile
99%
vs. same field & year
Citations per year
Cited by
Insights into Protein–Ligand Interactions: Mechanisms, Models, and Methods
International Journal of Molecular Sciences · 2016 · 1,559 citations
Clustering Molecular Dynamics Trajectories: 1. Characterizing the Performance of Different Clustering Algorithms
Journal of Chemical Theory and Computation · 2007 · 860 citations
Molecular Docking: Shifting Paradigms in Drug Discovery
International Journal of Molecular Sciences · 2019 · 2,141 citations
Predicting Changes in the Stability of Proteins and Protein Complexes: A Study of More Than 1000 Mutations
Journal of Molecular Biology · 2002 · 1,786 citations
Hot spots—A review of the protein–protein interface determinant amino‐acid residues
Proteins Structure Function and Bioinformatics · 2007 · 744 citations
The Amber biomolecular simulation programs
Journal of Computational Chemistry · 2005 · 9,470 citations
Exploring protein native states and large‐scale conformational changes with a modified generalized born model
Proteins Structure Function and Bioinformatics · 2004 · 2,505 citations
Empirical force fields for biological macromolecules: Overview and issues
Journal of Computational Chemistry · 2004 · 1,272 citations
References
Ab initio protein structure prediction of CASP III targets using ROSETTA
Proteins Structure Function and Bioinformatics · 1999 · 569 citations
Particle mesh Ewald: An <i>N</i>⋅log(<i>N</i>) method for Ewald sums in large systems
The Journal of Chemical Physics · 1993 · 30,035 citations
Accurate Calculation of Hydration Free Energies Using Macroscopic Solvent Models
The Journal of Physical Chemistry · 1994 · 2,128 citations
A Second Generation Force Field for the Simulation of Proteins, Nucleic Acids, and Organic Molecules
Journal of the American Chemical Society · 1995 · 13,076 citations
Computer Simulation of Liquids
Journal of Molecular Liquids · 1988 · 15,842 citations
Citation Network
How this paper connects to the literature. Drag to explore, click any node to open that paper.
