Contribution of Polar Groups in the Interior of a Protein to the Conformational Stability,
- 21 March 2001
- journal article
- research article
- Published by American Chemical Society (ACS) in Biochemistry
- Vol. 40 (15) , 4853-4858
- https://doi.org/10.1021/bi002792f
Abstract
It has been generally believed that polar residues are usually located on the surface of protein structures. However, there are many polar groups in the interior of the structures in reality. To evaluate the contribution of such buried polar groups to the conformational stability of a protein, nonpolar to polar mutations (L8T, A9S, A32S, I56T, I59T, I59S, A92S, V93T, A96S, V99T, and V100T) in the interior of a human lysozyme were examined. The thermodynamic parameters for denaturation were determined using a differential scanning calorimeter, and the crystal structures were analyzed by X-ray crystallography. If a polar group had a heavy energy cost to be buried, a mutant protein would be remarkably destabilized. However, the stability (ΔG) of the Ala to Ser and Val to Thr mutant human lysozymes was comparable to that of the wild-type protein, suggesting a low-energy penalty of buried polar groups. The structural analysis showed that all polar side chains introduced in the mutant proteins were able to find their hydrogen bond partners, which are ubiquitous in protein structures. The empirical structure-based calculation of stability change (ΔΔG) [Takano et al. (1999) Biochemistry 38, 12698−12708] revealed that the mutant proteins decreased the hydrophobic effect contributing to the stability (ΔGHP), but this destabilization was recovered by the hydrogen bonds newly introduced. The present study shows the favorable contribution of polar groups with hydrogen bonds in the interior of protein molecules to the conformational stability.Keywords
This publication has 16 references indexed in Scilit:
- A general rule for the relationship between hydrophobic effect and conformational stability of a protein: stability and structure of a series of hydrophobic mutants of human lysozymeJournal of Molecular Biology, 1998
- Contribution of water molecules in the interior of a protein to the conformational stabilityJournal of Molecular Biology, 1997
- Contribution of Hydrophobic Residues to the Stability of Human Lysozyme: Calorimetric Studies and X-ray Structural Analysis of the Five Isoleucine to Valine MutantsJournal of Molecular Biology, 1995
- Satisfying Hydrogen Bonding Potential in ProteinsJournal of Molecular Biology, 1994
- Contribution of Hydration to Protein Folding ThermodynamicsJournal of Molecular Biology, 1993
- MOLSCRIPT: a program to produce both detailed and schematic plots of protein structuresJournal of Applied Crystallography, 1991
- Hydrogen bond stereochemistry in protein structure and functionJournal of Molecular Biology, 1990
- Interior and surface of monomeric proteinsJournal of Molecular Biology, 1987
- Compartmentalization of amino acids in surfactant aggregatesJournal of Molecular Evolution, 1975
- A thermodynamic approach to the problem of stabilization of globular protein structure: A calorimetric studyJournal of Molecular Biology, 1974