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Updated: Aug 8, 2026

Proton Transfer and Protein Conformation Dynamics in Photosensitive Proteins by Time-resolved Step-scan Fourier-transform Infrared Spectroscopy
Published on: June 27, 2014
The infrared dichroism of transmembrane helical polypeptides
P H Axelsen1, B K Kaufman, R N McElhaney
1Department of Pharmacology, University of Pennsylvania, Philadelphia 19104-6084, USA. axe@pharm.med.upenn.edu
Insights
Infrared spectroscopy accurately determines membrane-bound peptide orientation. New findings revise assumptions about the amide I transition moment in alpha-helices, improving structural analysis.
Area of Science:
- Biophysics
- Spectroscopy
- Membrane Protein Structure
Background:
- Membrane-bound peptides form oriented transmembrane helices.
- Understanding peptide orientation is crucial for membrane protein function.
- Infrared (IR) spectroscopy is a key tool for studying peptide structure.
Purpose of the Study:
- To assess polarized attenuated total internal reflectance (ATR) techniques for determining peptide orientation.
- To verify optical parameters for calculating electric field strengths.
- To re-evaluate assumptions about amide I transition moment orientation and the impact of surface imperfections.
Main Methods:
- Polarized attenuated total internal reflectance (ATR) spectroscopy.
- Analysis of infrared dichroism of the amide I transition moment.
- Studied gramicidin A in phospholipid monolayers and peptide L24 in multibilayers.
Main Results:
- Both gramicidin A and L24 peptides are highly ordered with helical axes perpendicular to the membrane.
- Peptide L24's alpha-helix shows evidence of E1 symmetry contributing to amide I.
- The amide I transition moment in L24 is more aligned with the peptide C=O (< 34°) than previously thought.
Conclusions:
- Polarized ATR IR spectroscopy reliably determines membrane-bound helical peptide orientation.
- Established assumptions regarding amide I transition moment orientation require revision.
- Surface imperfections have minimal impact on the overall molecular disorder assessment.
Abstract:
Polarized attenuated total internal reflectance techniques were applied to study the infrared dichroism of the amide I transition moment in two membrane-bound peptides that are known to form oriented transmembrane helices: gramicidin A in a supported phospholipid monolayer and Ac-Lys2-Leu24-Lys2-amide (L24) in oriented multibilayers. These studies were performed to test the ability of these techniques to determine the orientation of these peptides, to verify the value of optical parameters used to calculate electric field strengths, to examine the common assumptions regarding the amide I transition moment orientation, and to ascertain the effect of surface imperfections on molecular disorder. The two peptides exhibit marked differences in the shape and frequency of their amide I absorption bands. Yet both peptides are highly ordered and oriented with their helical axes perpendicular to the membrane surface. In the alpha-helix formed by L24, there is evidence for a mode with type E1 symmetry contributing to amide I, and the amide I transition moment must be more closely aligned with the peptide C=O (< 34 degrees) than earlier studies have suggested. These results indicate that long-standing assumptions about the orientation of amide I in a peptide require some revision, but that in general, infrared spectroscopy yields reliable information about the orientation of membrane-bound helical peptides.
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