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Increasing the precision of comparative models with YASARA NOVA—a self‐parameterizing force field

Proteins Structure Function and Bioinformatics · 2002 · Vol. 47(3) · pp. 393–402
Elmar KriegerGünther KoraimannGert Vriend

Abstract

One of the conclusions drawn at the CASP4 meeting in Asilomar was that applying various force fields during refinement of template-based models tends to move predictions in the wrong direction, away from the experimentally determined coordinates. We have derived an all-atom force field aimed at protein and nucleotide optimization in vacuo (NOVA), which has been specifically designed to avoid this problem. NOVA resembles common molecular dynamics force fields but has been automatically parameterized with two major goals: (i) not to make high resolution X-ray structures worse and (ii) to improve homology models built by WHAT IF. Force-field parameters were not required to be physically correct; instead, they were optimized with random Monte Carlo moves in force-field parameter space, each one evaluated by simulated annealing runs of a 50-protein optimization set. Errors inherent to the approximate force-field equation could thus be canceled by errors in force-field parameters. Compared with the optimization set, the force field did equally well on an independent validation set and is shown to move in silico models closer to reality. It can be applied to modeling applications as well as X-ray and NMR structure refinement. A new method to assign force-field parameters based on molecular trees is also presented. A NOVA server is freely accessible at http://www.yasara.com/servers

Protein Structure and DynamicsEnzyme Structure and FunctionRNA and protein synthesis mechanismsForce field (fiction)Parameterized complexityField (mathematics)Simulated annealingMonte Carlo methodStatistical physicsComputer scienceParameter spaceSet (abstract data type)Molecular dynamics

MeSH terms

AlgorithmsModels, MolecularMonte Carlo MethodNucleotidesProtein ConformationProteinsReproducibility of Results
Citations
1,516
FWCI
2.28
field-weighted impact
References
24
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88%
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Citations per year
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The Journal of Physical Chemistry B · 1998 · 14,418 citations
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The European Physical Journal A · 1932 · 928 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
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