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Evaluation of the new polyurethanes capillary membrane for cell immunoisolation. Results from in vitro studies

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Highly biocompatible and mechanically resistant semipermeable membranes are required for macroencapsulation of cells or tissues. For this purpose two series of aromatic as well as aliphatic polyurethanes were elaborated for the production of hollow fibre membranes by the phase inversion method and the wet spinning technique. The influence of the polyurethane structure, i.e. type of the hard segments and content of the soft segments on the membrane morphology and its transport properties were investigated.
Twórcy
autor
  • Institute of Biocybernetics and Biomedical Engineering, ul. Ks. Trojdena 4, 02-109 Warsaw, Poland
  • Institute of Biocybernetics and Biomedical Engineering, ul. Ks. Trojdena 4, 02-109 Warsaw, Poland
  • Institute of Biocybernetics and Biomedical Engineering, Polish Academy of Sciences, 02-109 Warsaw, ul. Ks. Trojdena 4, Poland
Bibliografia
  • [1] Bergerron M., Leversque S., Guidoin R.: Biomedical Applications of Polyurethanes, In: Vermette P. (Ed), Biomedical Applications of Polyurethanes, Landes Bioscience, Sydney 2001.
  • [2] Hasirici N.: A Comprehensive Guide to Medical and Pharmaceutical Applications, In: M. Szycher (Ed.), High Performance Biomaterials, Technomic Inc, Lancaster 1991, 71.
  • [3] Lamba N.M., Woodhouse K., Cooper S.: Polyurethanes in Biomedical Applications, CRC Press, Boca Raton, 1998.
  • [4] Dumitriu S.: Polymeric Biomaterials, In: Szycher M., Siciliano A., Reed A.(Eds), Polyurethane elastomers in medicine, Marcel Dekker, New York 1994, 233.
  • [5] Zodervan G. J., Hoppen H.J., Pennings A.J., Fritschy W., Wolters G.: Design of polyurethane membrane for the encapsulation of islets of Langerhans. Biomaterials 1992, 13.
  • [6] Dionne E. K., Cain B.C., Li R.H., Bell W.J., Doherty E.J., Rein D.H., Lysaght M.J., Gentile F.T.: Transport Characterization of membranes for immunoisolation, Biomaterials, 1996, 17, 257.
  • [7] Ward R. S., White K. A., Wolcott C.A., Wang A. Y„ Kuhn R. W., Taylor J. E., John J. K.: Development of Hybrid Artificial pancreas with a dense polyurethane membrane, ASAIO J. 1993, M261- M267.
  • [8] Hinrichs W.L.J., Zweep H.P., Satoh S., Feijen J., Wildevuur Ch.R.H.: Supporting, microporous, elastomeric degradable prothesis to improve the arterialization of autologous vein grafts. Biomaterials, 1994,15, 83-86.
  • [9] Adamson A.W.: Physicial Chemistry of Surfaces, John Wiley, New York, 1976, 346.
  • [10] Ward R. S., White K. A., Barrier films that breathe.: Am. Chem. Soc. 1991, 21, 670.
  • [11] Kessler L., Aprahamian M., Keipes M., Damge C., Pinget M., Poinsot D.: Diffusion properties of artificial membrane used for Langerhans islets encapsulation: an in vitro test. Biomaterials, 1992,13, 44.
  • [12] Kesting R. E.: Synthetic polymeric membranes. A Structural Perspective, John Wiley, New York 1985.
  • [13] Ward R.S., White K. A.: Copolymers and non-porous semi-permeable membrane thereof and its use for permeating molecules of predetermined molecular weight range., 1995, US Patent 5, 428, 123.
  • [14] Hong J-L., Lilly a C.P., W. Chien J.C.: Degree of phase separation in polyetherurethane copolymers with different chemical structures of hard segments. 1992, 33, 3247-3351.
  • [15] Ikeda Y, Kohjiya S., Tekesako S., Yamashita S.: Polyurethane elastomer with PEO-PTMO-PEO soft segment for sustained release of drugs. Biomaterials 1990, 11, 553.
  • [16] Reuvers A.J, Van den Berg J.W.A., Smolders C.A.: Formation of membranes by means of immersion precipitation. Part I. A model to describe mass transfer during immersion precipitation. J. Membrane Sci. 1987, 34, 45.
  • [17] Granicka L.H., Kawiak J., Głowacka E., Weryński A.: Encapsulation of OKT3 cells in hollow fibers. ASAIO J. 1996, 42, 863-866.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BPZ1-0011-0012
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