Toward Assessing the Position-Dependent Contributions of Backbone Hydrogen Bonding to β-Sheet Folding Thermodynamics Employing Amide-to-Ester Perturbations
- 1 December 2004
- journal article
- Published by American Chemical Society (ACS) in Journal of the American Chemical Society
- Vol. 126 (51) , 16762-16771
- https://doi.org/10.1021/ja045934s
Abstract
An amide-to-ester backbone substitution in a protein is accomplished by replacing an alpha-amino acid residue with the corresponding alpha-hydroxy acid, preserving stereochemistry, and conformation of the backbone and the structure of the side chain. This substitution replaces the amide NH (a hydrogen bond donor) with an ester O (which is not a hydrogen bond donor) and the amide carbonyl (a strong hydrogen bond acceptor) with an ester carbonyl (a weaker hydrogen bond acceptor), thus perturbing folding energetics. Amide-to-ester perturbations were used to evaluate the thermodynamic contribution of each hydrogen bond in the PIN WW domain, a three-stranded beta-sheet protein. Our results reveal that removing a hydrogen bond donor destabilizes the native state more than weakening a hydrogen bond acceptor and that the degree of destabilization is strongly dependent on the location of the amide bond replaced. Hydrogen bonds near turns or at the ends of beta-strands are less influential than hydrogen bonds that are protected within a hydrophobic core. Beta-sheet destabilization caused by an amide-to-ester substitution cannot be directly related to hydrogen bond strength because of differences in the solvation and electrostatic interactions of amides and esters. We propose corrections for these differences to obtain approximate hydrogen bond strengths from destabilization energies. These corrections, however, do not alter the trends noted above, indicating that the destabilization energy of an amide-to-ester mutation is a good first-order approximation of the free energy of formation of a backbone amide hydrogen bond.Keywords
This publication has 60 references indexed in Scilit:
- Protein folding: could hydrophobic collapse be coupled with hydrogen‐bond formation?FEBS Letters, 2003
- Thermodynamic Consequences of Burial of Polar and Non-polar Amino Acid Residues in the Protein InteriorJournal of Molecular Biology, 2002
- Mutational analysis of hydrogen bonding residues in the BPTI folding pathwayJournal of Molecular Biology, 2001
- The folding mechanism of a β-sheet: the WW domainJournal of Molecular Biology, 2001
- The osmophobic effect: natural selection of a thermodynamic force in protein folding 1 1Edited by D. DraperJournal of Molecular Biology, 2001
- Hydropathic analysis of the non-covalent interactions between molecular subunits of structurally characterized hemoglobinsJournal of Molecular Biology, 1997
- Accommodating Sequence Changes in β-Hairpins in ProteinsJournal of Molecular Biology, 1993
- Effect of active site residues in barnase on activity and stabilityJournal of Molecular Biology, 1992
- Protein folding: Current Opinion in Structural Biology 1991, 1:224–229Current Opinion in Structural Biology, 1991
- Polydepsipeptides. III. Theoretical Conformational Analysis of Randomly Coiling and Ordered Depsipeptide ChainsMacromolecules, 1974