• Title of article

    Fluorescence study of protein–lipid complexes with a new symmetric squarylium probe Original Research Article

  • Author/Authors

    Valeriya M. Ioffe، نويسنده , , Galyna P. Gorbenko، نويسنده , , Todor Deligeorgiev، نويسنده , , Nikolai Gadjev، نويسنده , , Aleksey Vasilev، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2007
  • Pages
    12
  • From page
    75
  • To page
    86
  • Abstract
    The novel symmetric squarylium derivative SQ-1 has been synthesized and tested for its sensitivity to the formation of protein–lipid complexes. SQ-1 binding to the model membranes composed of zwitterionic lipid phosphatidylcholine (PC) and its mixtures with anionic lipid cardiolipin (CL) in different molar ratios was found to be controlled mainly by hydrophobic interactions. Lysozyme (Lz) and ribonuclease A (RNase) exerted an influence on the probe association with lipid vesicles resulting presumably from the competition between SQ-1 and the proteins for bilayer free volume and modification of its properties. The magnitude of this effect was much higher for lysozyme which may stem from the amphipathy of protein α-helix involved in the membrane binding. Varying membrane composition provides evidence for the dye sensitivity to both hydrophobic and electrostatic protein–lipid interactions. Fluorescence anisotropy studies uncovered the restriction of SQ-1 rotational mobility in lipid environment in the presence of Lz and RNase being indicative of the incorporation of the proteins into bilayer interior. The results of binding, fluorescence quenching and kinetic experiments suggested lysozyme-induced local lipid demixing upon protein association with negatively charged membranes with threshold concentration of CL for the lipid demixing being 10 mol%.
  • Keywords
    Squarylium dye , lysozyme , Ribonuclease A , Lipid demixing , Protein–lipid interactions
  • Journal title
    Biophysical Chemistry
  • Serial Year
    2007
  • Journal title
    Biophysical Chemistry
  • Record number

    1119883