Physical reasons for secondary structure stability: α‐Helices in short peptides
- 1 April 1991
- journal article
- research article
- Published by Wiley in Proteins-Structure Function and Bioinformatics
- Vol. 10 (4) , 287-299
- https://doi.org/10.1002/prot.340100403
Abstract
It was recently found that some short peptides (including C‐ and S‐peptide fragments of RNase A) can have considerable helicity in solution, 1–12 which was considered to be surprising. Does the observed helicity require a new explanation, or is it consistent with previous understanding? In this work we show that this helicity is consistent with the physical theory of secondary structure12–19 based on an extension of the conventional Zimm‐Bragg model.20 Without any special modifications, this theory explains reasonably well almost all the experimentally observed dependencies of helicity on pH, temperature, and amino acid replacements. We conclude that the observed “general level” of helicity of C‐ and S‐peptides (5–30% at room temperature and 10–50% near 0°C) is “normal” for short peptides consisting mainly of helix‐forming and helix‐indifferent residues. The helicity is modified by a multitude of weak specific side chain interactions, many of which are taken into account by the present theory;13–19 some discrepancies between the theory and experiment can be explained by weak side‐chain‐side chain interactions that were neglected. A reasonable coincidence of the theory with experiment suggests that it had been used to investigate the role of local interactions in the formation of α‐helical “embryos” in unfolded protein chains.Keywords
This publication has 48 references indexed in Scilit:
- Folding of immunogenic peptide fragments of proteins in water solutionJournal of Molecular Biology, 1988
- A competing salt-bridge suppresses helix formation by the isolated C-peptide carboxylate of ribonuclease AJournal of Molecular Biology, 1982
- Theory of protein molecule self-organization. II. A comparison of calculated thermodynamic parameters of local secondary structures with experimentsBiopolymers, 1977
- Thermodynamic parameters of helix‐coil transition in polypeptide chains I. Poly‐(L‐glutamic acid)Biopolymers, 1971
- Helix-Coil Stability Constants for the Naturally Occurring Amino Acids in Water. II. Characterization of the Host Polymers and Application of the Host-Guest Technique to Random Poly(hydroxypropylglutamine-co-hydroxybutylglutamine)Macromolecules, 1971
- Solution properties of synthetic polypeptides. VI. Helix-coil transition of poly-N5-(3-hydroxypropyl)-L-glutamineBiopolymers, 1970
- Stability of the helical conformation of randomL-alanine-L-lysine copolymers in aqueous solutionBiopolymers, 1970
- Calorimetric Heat of the Helix-Coil Transition of Poly-L-glutamic Acid1aJournal of the American Chemical Society, 1966
- Conformation changes in the nonionizable water‐soluble synthetic polypeptide poly‐N5‐(3‐hydroxypropyl) ‐L‐glutamineBiopolymers, 1965
- The Charge-Induced Helix-Random Coil Transition in Aqueous Solution1Journal of the American Chemical Society, 1965