Scinovex
articleTop 1% cited

Protein flexibility predictions using graph theory

Proteins Structure Function and Bioinformatics · 2001 · Vol. 44(2) · pp. 150–165
Donald J. JacobsAndrew J. RaderLeslie A. KuhnM. F. Thorpe

Abstract

Techniques from graph theory are applied to analyze the bond networks in proteins and identify the flexible and rigid regions. The bond network consists of distance constraints defined by the covalent and hydrogen bonds and salt bridges in the protein, identified by geometric and energetic criteria. We use an algorithm that counts the degrees of freedom within this constraint network and that identifies all the rigid and flexible substructures in the protein, including overconstrained regions (with more crosslinking bonds than are needed to rigidify the region) and underconstrained or flexible regions, in which dihedral bond rotations can occur. The number of extra constraints or remaining degrees of bond-rotational freedom within a substructure quantifies its relative rigidity/flexibility and provides a flexibility index for each bond in the structure. This novel computational procedure, first used in the analysis of glassy materials, is approximately a million times faster than molecular dynamics simulations and captures the essential conformational flexibility of the protein main and side-chains from analysis of a single, static three-dimensional structure. This approach is demonstrated by comparison with experimental measures of flexibility for three proteins in which hinge and loop motion are essential for biological function: HIV protease, adenylate kinase, and dihydrofolate reductase.

Enzyme Structure and FunctionProtein Structure and Dynamicsbiodegradable polymer synthesis and propertiesDihedral angleHydrogen bondHingeCovalent bondMolecular dynamicsTopology (electrical circuits)Protein structureFlexibility (engineering)Computer scienceAlgorithm

MeSH terms

Adenylate KinaseAlgorithmsComputer SimulationHydrogen BondingModels, MolecularProtein ConformationProteinsSoftwareTetrahydrofolate DehydrogenaseThermodynamicsHIV ProteaseProtein FoldingComputational Biology
Citations
738
FWCI
14.42
field-weighted impact
References
59
Percentile
100%
vs. same field & year
Citations per year
References
An introduction to hydrogen bonding
Choice Reviews Online · 1998 · 6,248 citations
PROCHECK: a program to check the stereochemical quality of protein structures
Journal of Applied Crystallography · 1993 · 24,472 citations
Satisfying Hydrogen Bonding Potential in Proteins
Journal of Molecular Biology · 1994 · 2,130 citations
Dominant forces in protein folding
Biochemistry · 1990 · 3,775 citations
Citation Network

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