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Assembly and structure of α-helical peptide films on hydrophobic fluorocarbon surfaces
Author(s) -
Tobias Weidner,
Newton T. Samuel,
Keith R. McCrea,
Lara J. Gamble,
Robert S. Ward,
David G. Castner
Publication year - 2010
Publication title -
biointerphases
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.633
H-Index - 45
eISSN - 1934-8630
pISSN - 1559-4106
DOI - 10.1116/1.3317116
Subject(s) - chemistry , x ray photoelectron spectroscopy , peptide , circular dichroism , xanes , crystallography , protein secondary structure , adsorption , fluorocarbon , side chain , molecule , amphiphile , spectroscopy , organic chemistry , polymer , chemical engineering , copolymer , biochemistry , physics , quantum mechanics , engineering
The structure, orientation, and formation of amphiphilic alpha-helix model peptide films on fluorocarbon surfaces has been monitored with sum frequency generation (SFG) vibrational spectroscopy, near-edge x-ray absorption fine structure (NEXAFS) spectroscopy, and x-ray photoelectron spectroscopy (XPS). The alpha-helix peptide is a 14-mer of hydrophilic lysine and hydrophobic leucine residues with a hydrophobic periodicity of 3.5. This periodicity yields a rigid amphiphilic peptide with leucine and lysine side chains located on opposite sides. XPS composition analysis confirms the formation of a peptide film that covers about 75% of the surface. NEXAFS data are consistent with chemically intact adsorption of the peptides. A weak linear dichroism of the amide pi( *) is likely due to the broad distribution of amide bond orientations inherent to the alpha-helical secondary structure. SFG spectra exhibit strong peaks near 2865 and 2935 cm(-1) related to aligned leucine side chains interacting with the hydrophobic surface. Water modes near 3200 and 3400 cm(-1) indicate ordering of water molecules in the adsorbed-peptide fluorocarbon surface interfacial region. Amide I peaks observed near 1655 cm(-1) confirm that the secondary structure is preserved in the adsorbed peptide. A kinetic study of the film formation process using XPS and SFG showed rapid adsorption of the peptides followed by a longer assembly process. Peptide SFG spectra taken at the air-buffer interface showed features related to well-ordered peptide films. Moving samples through the buffer surface led to the transfer of ordered peptide films onto the substrates.

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