Cooperativity in two-state protein folding kinetics. 2004

Thomas R Weikl, and Matteo Palassini, and Ken A Dill
Department of Pharmaceutical Chemistry, University of California, San Francisco, 94143, USA. Thomas. Weikl@mpikg-golm.mpg.de

We present a solvable model that predicts the folding kinetics of two-state proteins from their native structures. The model is based on conditional chain entropies. It assumes that folding processes are dominated by small-loop closure events that can be inferred from native structures. For CI2, the src SH3 domain, TNfn3, and protein L, the model reproduces two-state kinetics, and it predicts well the average Phi-values for secondary structures. The barrier to folding is the formation of predominantly local structures such as helices and hairpins, which are needed to bring nonlocal pairs of amino acids into contact.

UI MeSH Term Description Entries
D007700 Kinetics The rate dynamics in chemical or physical systems.
D008956 Models, Chemical Theoretical representations that simulate the behavior or activity of chemical processes or phenomena; includes the use of mathematical equations, computers, and other electronic equipment. Chemical Models,Chemical Model,Model, Chemical
D009419 Nerve Tissue Proteins Proteins, Nerve Tissue,Tissue Proteins, Nerve
D010446 Peptide Fragments Partial proteins formed by partial hydrolysis of complete proteins or generated through PROTEIN ENGINEERING techniques. Peptide Fragment,Fragment, Peptide,Fragments, Peptide
D010455 Peptides Members of the class of compounds composed of AMINO ACIDS joined together by peptide bonds between adjacent amino acids into linear, branched or cyclical structures. OLIGOPEPTIDES are composed of approximately 2-12 amino acids. Polypeptides are composed of approximately 13 or more amino acids. PROTEINS are considered to be larger versions of peptides that can form into complex structures such as ENZYMES and RECEPTORS. Peptide,Polypeptide,Polypeptides
D010940 Plant Proteins Proteins found in plants (flowers, herbs, shrubs, trees, etc.). The concept does not include proteins found in vegetables for which PLANT PROTEINS, DIETARY is available. Plant Protein,Protein, Plant,Proteins, Plant
D011487 Protein Conformation The characteristic 3-dimensional shape of a protein, including the secondary, supersecondary (motifs), tertiary (domains) and quaternary structure of the peptide chain. PROTEIN STRUCTURE, QUATERNARY describes the conformation assumed by multimeric proteins (aggregates of more than one polypeptide chain). Conformation, Protein,Conformations, Protein,Protein Conformations
D011506 Proteins Linear POLYPEPTIDES that are synthesized on RIBOSOMES and may be further modified, crosslinked, cleaved, or assembled into complex proteins with several subunits. The specific sequence of AMINO ACIDS determines the shape the polypeptide will take, during PROTEIN FOLDING, and the function of the protein. Gene Products, Protein,Gene Proteins,Protein,Protein Gene Products,Proteins, Gene
D004268 DNA-Binding Proteins Proteins which bind to DNA. The family includes proteins which bind to both double- and single-stranded DNA and also includes specific DNA binding proteins in serum which can be used as markers for malignant diseases. DNA Helix Destabilizing Proteins,DNA-Binding Protein,Single-Stranded DNA Binding Proteins,DNA Binding Protein,DNA Single-Stranded Binding Protein,SS DNA BP,Single-Stranded DNA-Binding Protein,Binding Protein, DNA,DNA Binding Proteins,DNA Single Stranded Binding Protein,DNA-Binding Protein, Single-Stranded,Protein, DNA-Binding,Single Stranded DNA Binding Protein,Single Stranded DNA Binding Proteins
D000465 Algorithms A procedure consisting of a sequence of algebraic formulas and/or logical steps to calculate or determine a given task. Algorithm

Related Publications

Thomas R Weikl, and Matteo Palassini, and Ken A Dill
September 2003, Proteins,
Thomas R Weikl, and Matteo Palassini, and Ken A Dill
October 2001, Physical review. E, Statistical, nonlinear, and soft matter physics,
Thomas R Weikl, and Matteo Palassini, and Ken A Dill
March 1993, Proceedings of the National Academy of Sciences of the United States of America,
Thomas R Weikl, and Matteo Palassini, and Ken A Dill
January 1997, Proceedings of the National Academy of Sciences of the United States of America,
Thomas R Weikl, and Matteo Palassini, and Ken A Dill
August 2014, Journal of the American Chemical Society,
Thomas R Weikl, and Matteo Palassini, and Ken A Dill
June 2003, Physical review letters,
Thomas R Weikl, and Matteo Palassini, and Ken A Dill
September 2000, Journal of molecular biology,
Thomas R Weikl, and Matteo Palassini, and Ken A Dill
January 2004, Methods in enzymology,
Thomas R Weikl, and Matteo Palassini, and Ken A Dill
February 2016, Current opinion in structural biology,
Thomas R Weikl, and Matteo Palassini, and Ken A Dill
July 2006, Protein science : a publication of the Protein Society,
Copied contents to your clipboard!