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Complexation of Metal Ions in Langmuir Films Formed with Two Amphiphilic Dioxadithia Crown Ethers

Year: 2008

Journal: J. Phys. Chem. B, 2008, 112 (35), pp 10953–10963, 20111221

Authors: Yohann Corvis, Beata Korchowiec, Jacek Korchowiec, Mounia Badis, Ewa Mironiuk-Puchalska, Izabela Fokt, Waldemar Priebe and Ewa Rogalska

Organizations: Groupe d’Etude des Vecteurs Supramolculaires du Mdicament, Facult des Sciences, BP 239, UMR 7565 CNRS/Nancy Universit, 54506 Vandoeuvre-ls-Nancy cedex, France, Faculty of Chemistry, Department of Physical Chemistry and Electrochemistry, Jagiellonian University, ul. R. Ingardena 3, 30-060 Krakow, Poland, Faculty of Chemistry, Department of Theoretical Chemistry, Jagiellonian University, ul. R. Ingardena 3, 30-060 Krakow, Poland, Faculty of Chemistry, Warsaw University of Technology, ul. Noakowskiego 3, 00-664 Warsaw, Poland, and Department of Experimental Therapeutics, the University of Texas M. D. Anderson Cancer Center, Houston, Texas 77030

The two new crown ethers presented in this study were synthesized in order to investigate two important features of ionophores, namely metal cation complexation and interfacial properties, and the way in which they interrelate. The two derivatives were conceived as analogs of membrane phospholipids with respect to their amphiphilicity and geometry. They contain a hydrophilic 1,1′-dioxo-3,3′-dithio-14-crown ether headgroup and bear two myristoyl or stearoyl lateral chains. The length of the myristoyl and stearoyl derivatives in an extended conformation is comparable with the thickness of the individual leaflets of cell membranes. The membrane-related and complexation properties of the two crown ether derivatives were studied in monomolecular films spread on pure water and on aqueous solutions of mono-, di-, and trivalent metal salts. The properties of the monolayers are described quantitatively using thermodynamic models. The compression isotherms of the monolayers formed on different subphases show a clear-cut differentiation of the monovalent and di- or trivalent cations with both ligands. This differentiation was interpreted in terms of conformational changes occurring in the crown ether derivatives upon complexation. Molecular modeling indicates that the mono- and divalent cations are coordinated differently by the ligands, yielding complexes with different conformations. The differences of the conformations of the mono- and di- or trivalent cation complexes may be important from the point of view of the interactions with lipid membranes and the biological activity of these potential ionophores.