Scinovex
article Open AccessTop 1% cited

<i>Ab initio</i> protein structure assembly using continuous structure fragments and optimized knowledge‐based force field

Proteins Structure Function and Bioinformatics · 2012 · Vol. 80(7) · pp. 1715–1735
Dong XuYang Zhang

Abstract

Ab initio protein folding is one of the major unsolved problems in computational biology owing to the difficulties in force field design and conformational search. We developed a novel program, QUARK, for template-free protein structure prediction. Query sequences are first broken into fragments of 1-20 residues where multiple fragment structures are retrieved at each position from unrelated experimental structures. Full-length structure models are then assembled from fragments using replica-exchange Monte Carlo simulations, which are guided by a composite knowledge-based force field. A number of novel energy terms and Monte Carlo movements are introduced and the particular contributions to enhancing the efficiency of both force field and search engine are analyzed in detail. QUARK prediction procedure is depicted and tested on the structure modeling of 145 nonhomologous proteins. Although no global templates are used and all fragments from experimental structures with template modeling score >0.5 are excluded, QUARK can successfully construct 3D models of correct folds in one-third cases of short proteins up to 100 residues. In the ninth community-wide Critical Assessment of protein Structure Prediction experiment, QUARK server outperformed the second and third best servers by 18 and 47% based on the cumulative Z-score of global distance test-total scores in the FM category. Although ab initio protein folding remains a significant challenge, these data demonstrate new progress toward the solution of the most important problem in the field.

Protein Structure and DynamicsEnzyme Structure and FunctionRNA and protein synthesis mechanismsAb initioProtein structure predictionForce field (fiction)Monte Carlo methodProtein foldingReplicaComputer scienceProtein structureProtein designFragment (logic)

MeSH terms

Models, MolecularMonte Carlo MethodComputer SimulationHydrogen BondingModels, ChemicalProtein ConformationProteinsSolventsSequence AlignmentProtein FoldingDatabases, Protein

Funding

  • National Institute of General Medical Sciences
Citations
893
FWCI
25.77
field-weighted impact
References
56
Percentile
100%
vs. same field & year
Citations per year
Cited by
Improved PEP-FOLD Approach for Peptide and Miniprotein Structure Prediction
Journal of Chemical Theory and Computation · 2014 · 652 citations
References
Learning representations by back-propagating errors
Nature · 1986 · 30,045 citations
Ab initio protein structure prediction of CASP III targets using ROSETTA
Proteins Structure Function and Bioinformatics · 1999 · 569 citations
Satisfying Hydrogen Bonding Potential in Proteins
Journal of Molecular Biology · 1994 · 2,130 citations
Equation of State Calculations by Fast Computing Machines
The Journal of Chemical Physics · 1953 · 36,613 citations
Comparative Protein Modelling by Satisfaction of Spatial Restraints
Journal of Molecular Biology · 1993 · 13,125 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.