Simulating the minimum core for hydrophobic collapse in globular proteins
Open Access
- 31 December 1997
- journal article
- research article
- Published by Wiley in Protein Science
- Vol. 6 (12) , 2606-2616
- https://doi.org/10.1002/pro.5560061212
Abstract
To investigate the nature of hydrophobic collapse considered to be the driving force in protein folding, we have simulated aqueous solutions of two model hydrophobic solutes, methane and isobutylene. Using a novel methodology for determining contacts, we can precisely follow hydrophobic aggregation as it proceeds through three stages: dispersed, transition, and collapsed. Theoretical modeling of the cluster formation observed by simulation indicates that this aggregation is cooperative and that the simulations favor the formation of a single cluster midway through the transition stage. This defines a minimum solute hydrophobic core volume. We compare this with protein hydrophobic core volumes determined from solved crystal structures. Our analysis shows that the solute core volume roughly estimates the minimum core size required for independent hydrophobic stabilization of a protein and defines a limiting concentration of nonpolar residues that can cause hydrophobic collapse. These results suggest that the physical forces driving aggregation of hydrophobic molecules in water is indeed responsible for protein folding.Keywords
This publication has 30 references indexed in Scilit:
- SCOP: A structural classification of proteins database for the investigation of sequences and structuresPublished by Elsevier ,2006
- The interpretation of protein structures: Total volume, group volume distributions and packing densityPublished by Elsevier ,2004
- Potential energy function and parameters for simulations of the molecular dynamics of proteins and nucleic acids in solutionComputer Physics Communications, 1995
- The Volume of Atoms on the Protein Surface: Calculated from Simulation, using Voronoi PolyhedraJournal of Molecular Biology, 1995
- Protein Folding: An unfolding storyCurrent Biology, 1995
- Molecular dynamics study of the hydrophobic interaction in an aqueous solution of kryptonThe Journal of Physical Chemistry, 1986
- Molecular dynamics of native proteinJournal of Molecular Biology, 1983
- Hydration of inert solutes. A molecular dynamics studyThe Journal of Physical Chemistry, 1982
- Volume occupation, environment and accessibility in proteins. The problem of the protein surfaceJournal of Molecular Biology, 1975
- Nouvelles applications des paramètres continus à la théorie des formes quadratiques. Deuxième mémoire. Recherches sur les parallélloèdres primitifs.Journal für die reine und angewandte Mathematik (Crelles Journal), 1908