• Title of article

    Molecular and mesoscale structures in hydrophobically driven aqueous solutions Original Research Article

  • Author/Authors

    J.L. Finney، نويسنده , , D.T. Bowron، نويسنده , , R.M. Daniel، نويسنده , , P.A. Timmins، نويسنده , , M.A. Roberts، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2003
  • Pages
    19
  • From page
    391
  • To page
    409
  • Abstract
    Since Kauzmannʹs seminal 1959 paper, the hydrophobic interaction has dominated thinking on the forces that control protein folding and stability. Despite its wide importance in chemistry and biology, our understanding of this interaction at the molecular level remains poor, with little experimental evidence to support the idea of water ordering close to a non-polar group that is at the centre of the standard model for the source of the entropic driving force. Developments over recent years in neutron techniques now enable us to see directly how a non-polar group actually affects the molecular structure of the water in its immediate neighbourhood. On the basis of such work on aqueous solutions of small alcohols, the generally accepted standard model is found to be wanting, and alternative sources of the entropic driving force are suggested. Moreover, the fact that we can now follow changes in hydrogen bonding as the alcohol concentration is varied gives us the possibility of explaining the concentration dependence of the enthalpy of mixing. Complementary studies of solute association on the mesoscopic scale show a rich concentration and temperature behaviour, which reflects a complex balance of polar and non-polar interactions. Unravelling the detailed nature of this balance in simple aqueous amphiphiles may lead to a better understanding of the forces that control biomolecular structural stability and interactions.
  • Keywords
    protein stability , Hydrophobic interaction , Non-polar interactions , Aqueous solution structure , solution structure , Entropic driving force
  • Journal title
    Biophysical Chemistry
  • Serial Year
    2003
  • Journal title
    Biophysical Chemistry
  • Record number

    1113327