Secondary‐structure dependent chemical shifts in proteins
- 15 August 1990
- journal article
- research article
- Published by Wiley in Biopolymers
- Vol. 29 (10-11), 1423-1431
- https://doi.org/10.1002/bip.360291009
Abstract
Chemical shift data have been collected on eight proteins that have the same conformation in solution as in their crystal structures. Ring‐current shifts have been calculated and subtracted from the experimentally measured shifts, to leave shifts that depend only on local conformation. Overall, the shifts show an approximately normal distribution with no appreciable skewness, thus confirming that ring‐current shifts have the overall effect of skewing the distribution to high field. In helices, NH and CαH have a highly significant tendency to resonate to high field, whereas they resonate to low field in β‐sheets. Side‐chain protons resonate slightly to high field in γ‐sheets. Chemical shift distributions are narrowest for side‐chain protons, and widest for amide protons. When only slowly exchanging amide protons are considered, the high field shift for amide protons in helices is more pronounced, but there is only a small difference in sheets. CαH signals at the N‐terminal end of helices tend to resonate to higher field than those at the C‐terminal end, whereas for NH signals it is the C‐terminal end that resonates to higher field. There is no significant effect of position within the helix on side‐chain signals, implying that the helix dipole has little effect on shifts within the helix.This publication has 42 references indexed in Scilit:
- α-Proton chemical shifts and secondary structure in proteinsJournal of Magnetic Resonance (1969), 1989
- Three-dimensional structure of rabbit liver [Cd7]metallothionein-2a in aqueous solution determined by nuclear magnetic resonanceJournal of Molecular Biology, 1988
- Distribution of chemical shifts in 1H nuclear magnetic resonance spectra of proteinsJournal of Magnetic Resonance (1969), 1988
- Structure of ubiquitin refined at 1.8 Å resolutionJournal of Molecular Biology, 1987
- Structure of bovine pancreatic trypsin inhibitorJournal of Molecular Biology, 1984
- Dictionary of protein secondary structure: Pattern recognition of hydrogen‐bonded and geometrical featuresBiopolymers, 1983
- Peptide group shiftsJournal of Magnetic Resonance (1969), 1982
- Refined crystal structure of the potato inhibitor complex of carboxypeptidase A at 2.5 Å resolutionJournal of Molecular Biology, 1982
- 1H‐nmr parameters of the common amino acid residues measured in aqueous solutions of the linear tetrapeptides H‐Gly‐Gly‐X‐L‐Ala‐OHBiopolymers, 1979
- Theoretical studies of magnetic shielding in H2O and (H2O)2The Journal of Chemical Physics, 1976