• Title of article

    Micropatterning gradients and controlling surface densities of photoactivatable biomolecules on self-assembled monolayers of oligo(ethylene glycol) alkanethiolates Original Research Article

  • Author/Authors

    Curtis B. Herbert، نويسنده , , Terri L. McLernon، نويسنده , , Claire L. Hypolite، نويسنده , , Derek N. Adams، نويسنده , , Lana Pikus، نويسنده , , C.-C. Huang، نويسنده , , Gregg B. Fields، نويسنده , , Paul C. Letourneau، نويسنده , , Mark D. Distefano، نويسنده , , Wei-Shou Hu، نويسنده ,

  • Issue Information
    ماهنامه با شماره پیاپی سال 1997
  • Pages
    7
  • From page
    731
  • To page
    737
  • Abstract
    Background: Bioactive molecules that are covalently immobilized in patterns on surfaces have previously been used to control or study cell behavior such as adhesion, spreading, movement or differentiation. Photoimmobilization techniques can be used, however, to control not only the spatial pattern of molecular immobilization, termed the micropattern, but also the surface density of the molecules — a characteristic that has not been previously exploited. Results: Oligopeptides containing the bioactive Arg-Gly-Asp cell-adhesion sequence were immobilized upon self-assembled monolayers of an oligo(ethylene glycol) alkanethiolate in patterns that were visualized and quantified by autoradiography. The amount and pattern of immobilized peptide were controlled by manipulating the exposure of the sample to a LIV lamp or a laser beam. Patterns of peptides, including a density gradient, were used to control the location and number of adherent cells and also the cell shape. Conclusions: A photo immobilization technique for decorating surfaces with micropatterns that consist of variable densities of bioactive molecules is described. The efficacy of the patterns for controlling cell adhesion and shape has been demonstrated. This technique is useful for the study of cell behavior on micropatterns.
  • Journal title
    Chemistry and Biology
  • Serial Year
    1997
  • Journal title
    Chemistry and Biology
  • Record number

    1157963