Structural bases of lectin‐carbohydrate affinities: Comparison with protein‐folding energetics
Open Access
- 1 January 1999
- journal article
- Published by Wiley in Protein Science
- Vol. 8 (5) , 1075-1086
- https://doi.org/10.1110/ps.8.5.1075
Abstract
We have made a comparative structure based analysis of the thermodynamics of lectin-carbohydrate (L-C) binding and protein folding. Examination of the total change in accessible surface area in those processes revealed a much larger decrease in free energy per unit of area buried in the case of L-C associations. According to our analysis, this larger stabilization of L-C interactions arises from a more favorable enthalpy of burying a unit of polar surface area, and from higher proportions of polar areas. Hydrogen bonds present at 14 L-C interfaces were identified, and their overall characteristics were compared to those reported before for hydrogen bonds in protein structures. Three major factors might explain why polar-polar interactions are stronger in L-C binding than in protein folding: (1) higher surface density of hydrogen bonds; (2) better hydrogen-bonding geometry; (3) larger proportion of hydrogen bonds involving charged groups. Theoretically, the binding entropy can be partitioned into three main contributions: entropy changes due to surface desolvation, entropy losses arising from freezing rotatable bonds, and entropic effects that result from restricting translation and overall rotation motions. These contributions were estimated from structural information and added up to give calculated binding entropies. Good correlation between experimental and calculated values was observed when solvation effects were treated according to a parametrization developed by other authors from protein folding studies. Finally, our structural parametrization gave calculated free energies that deviate from experimental values by 1.1 kcal/mol on the average; this amounts to an uncertainty of one order of magnitude in the binding constant.Keywords
This publication has 70 references indexed in Scilit:
- ChemInform Abstract: Molecular Modeling: An Essential Component in the Structure Determination of Oligosaccharides and PolysaccharidesChemInform, 2010
- The interpretation of protein structures: Estimation of static accessibilityPublished by Elsevier ,2004
- Oligosaccharide structures: theory versus experimentCurrent Opinion in Structural Biology, 1997
- NMR-Based, Molecular Dynamics- and Random Walk Molecular Mechanics-Supported Study of Conformational Aspects of a Carbohydrate Ligand (Galβ1-2Galβ1-R) for an Animal Galectin in the Free and in the Bound StateBiochemical and Biophysical Research Communications, 1996
- Structural Basis of Trimannoside Recognition by Concanavalin AJournal of Biological Chemistry, 1996
- Structural Analysis of Monosaccharide Recognition by Rat Liver Mannose-binding ProteinJournal of Biological Chemistry, 1996
- Galactose‐binding site in Escherichia coli heat‐labile enterotoxin (LT) and cholera toxin (CT)Molecular Microbiology, 1994
- Contribution of Hydration to Protein Folding ThermodynamicsJournal of Molecular Biology, 1993
- The protein data bank: A computer-based archival file for macromolecular structuresJournal of Molecular Biology, 1977
- The nature of the accessible and buried surfaces in proteinsJournal of Molecular Biology, 1976