Drop-Shape Analysis of Receptor−Ligand Binding at the Oil/Water Interface

Chi-Yang Chao, Daniel Carvajal, Igal Szleifer, and Kenneth R. Shull*
Department of Materials Science and Engineering and Department of Biomedical Engineering, Northwestern University, Evanston, Illinois 60208-3108
Langmuir, 2008, 24 (6), pp 2472–2478
DOI: 10.1021/la702743v
Publication Date (Web): February 6, 2008
Copyright © 2008 American Chemical Society

 Department of Materials Science and Engineering.

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 Department of Biomedical Engineering.

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*

 Corresponding author. E-mail:  k-shull@northwestern.edu.

Abstract

Abstract Image

Drop-shape analysis was used to study the binding of streptavidin to biotin at the interface between water and a pendant chloroform droplet. Polyethylene oxide molecules were synthesized with a hydrophobic tail at one end of the molecule and a hydroxyl or biotin group at the other end. The interfacial tension of the water/chloroform interface was measured before and after addition of these amphiphiles to the chloroform phase and before and after addition of streptavidin to the aqueous phase. The hydroxyl-terminated amphiphiles eliminate nonspecific adsorption of the streptavidin to the interface, while streptavidin binds irreversibly to the biotin-terminated molecules. Molecular interactions within this bound layer were studied by measuring changes in the interfacial pressure as the layer is contracted and expanded by changing the volume of the chloroform droplet. A picture of the interfacial structure was obtained from quantitative comparisons between the experimental results and a molecular theory of protein binding to tethered ligands. These comparisons suggest that protein binding is controlled by the extension of the PEO tethers away from the interface.

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History

  • Published In Issue March 18, 2008
  • Received September 4, 2007
    Revised November 20, 2007

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