Estimation of the maximum change in stability of globular proteins upon mutation of a hydrophobic residue to another of smaller size
- 1 May 1993
- journal article
- research article
- Published by Wiley in Protein Science
- Vol. 2 (5) , 733-738
- https://doi.org/10.1002/pro.5560020505
Abstract
Although the hydrophobic effect is generally considered to be one of the most important forces in stabilizing the folded structure of a globular protein molecule, there is a lack of consensus on the precise magnitude of this effect. The magnitude of the hydrophobic effect is most directly measured by observing the change in stability of a protein molecule when an internal hydrophobic residue is mutated to another of smaller size. Results of such measurements have, however, been confusing because they vary greatly and are generally considerably larger than expected from the transfer free energies of corresponding small molecules. In this article, a thermodynamic argument is presented to show (1) that the variation is mainly due to that in the flexibility of the protein molecule at the site of mutation, (2) that the maximum destabilization occurs when the protein at the site of mutation is rigid, in which case the value of the destabilization is approximately given by the work of cavity formation in water, and (3) that the transfer free energy approximately gives the minimum of the range of variations. The best numerical agreements between the small molecule and the protein systems are obtained when the data from the small molecule system are expressed as the molarity‐based standard free energies without other corrections.Keywords
This publication has 26 references indexed in Scilit:
- The interpretation of protein structures: Total volume, group volume distributions and packing densityPublished by Elsevier ,2004
- Contribution of the hydrophobic effect to globular protein stabilityJournal of Molecular Biology, 1992
- The use of flory–huggins theory in interpreting partitioning of solutes between organic liquids and waterBiopolymers, 1992
- The folding of an enzyme: II. Substructure of barnase and the contribution of different interactions to protein stabilityJournal of Molecular Biology, 1992
- Modeling the effects of mutations on the denatured states of proteinsProtein Science, 1992
- Solid model compounds and the thermodynamics of protein unfoldingJournal of Molecular Biology, 1991
- Extracting hydrophobic free energies from experimental data: relationship to protein folding and theoretical modelsBiochemistry, 1991
- Solvent reorganization contribution to the transfer thermodynamics of small nonpolar moleculesBiopolymers, 1991
- Comparing the polarities of the amino acids: side-chain distribution coefficients between the vapor phase, cyclohexane, 1-octanol, and neutral aqueous solutionBiochemistry, 1988
- Monte Carlo simulations of alkanes in water: hydration numbers and the hydrophobic effectThe Journal of Physical Chemistry, 1985