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

Biophysical Journal
|December 1, 1995
PubMed

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.

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