Empirical Relationships between Isotope-Edited IR Spectra and Helix Geometry in Model Peptides
- 10 February 2004
- journal article
- Published by American Chemical Society (ACS) in Journal of the American Chemical Society
- Vol. 126 (8) , 2339-2345
- https://doi.org/10.1021/ja037863n
Abstract
Infrared spectroscopy (IR) is commonly used to study secondary structure of both peptides and proteins. The amide I band is very sensitive to peptide secondary structure, and the conformation of a peptide can be probed at the residue level by introducing site-specific isotope-labels into the peptide backbone. The replacement of a carbonyl (12)C with a (13)C results in a approximately 40 cm(-1) shift in the amide I' band. The amide I bands of specifically labeled helices should vary systematically as a function of the number and relative spacing of the labeled residues; thus one should be able to describe the conformation of a polypeptide in substantial detail by probing the changes in IR spectra as a function of the number and positioning of isotope labels. In this study, we report IR spectra of a series of differently labeled helical peptides. A series of 25mer peptides were synthesized based on the repeat sequence (AAAAK)(n). We have varied the number and spacing of the labels on each peptide and studied the changes in the (12)C and (13)C amide I' band due to label position. Our results indicate that changing the number of labels changes the frequency and intensity of both the (12)C and the (13)C amide mode. We also found that varying the spacing between labels causes these amide peaks to shift. Isotope labeling, combined with IR spectroscopy and theoretical predictions, may generate a description of peptide backbone conformations at the residue level.Keywords
This publication has 11 references indexed in Scilit:
- Ab initio quantum mechanical models of peptide helices and their vibrational spectraBiopolymers, 2002
- Conformational mapping of the N-terminal segment of surfactant protein B in lipid using13C-enhanced Fourier transform infrared spectroscopyChemical Biology & Drug Design, 2000
- Isotope-Edited Infrared Spectroscopy of Helical PeptidesJournal of the American Chemical Society, 1999
- Characterization of Alanine-Rich Peptides, Ac-(AAKAA)n-GY-NH2(n= 1−4), Using Vibrational Circular Dichroism and Fourier Transform Infrared. Conformational Determination and Thermal UnfoldingBiochemistry, 1997
- The Effects of Chain Length and Thermal Denaturation on Helix-Forming Peptides: A Mode-Specific Analysis Using 2D FT-IRJournal of the American Chemical Society, 1997
- Incorporation of pairwise interactions into the Lifson‐Roig model for helix predictionProtein Science, 1995
- The Use and Misuse of FTIR Spectroscopy in the Determination of Protein StructureCritical Reviews in Biochemistry and Molecular Biology, 1995
- Location of .beta.-sheet-forming sequences in amyloid proteins by FTIRJournal of the American Chemical Society, 1991
- Isotopically enhanced infrared spectroscopy: a novel method for examining secondary structure at specific sites in conformationally heterogeneous peptidesJournal of the American Chemical Society, 1991
- Unusually stable helix formation in short alanine-based peptides.Proceedings of the National Academy of Sciences, 1989