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Template-Assisted Extrusion of Biopolymer Nanofibers Under Physiological Conditions Publisher Pubmed



Raoufi M1, 2, 3 ; Aslankoohi N1, 2, 6 ; Mollenhauer C1, 2 ; Boehm H1, 2, 4 ; Spatz JP1, 2 ; Bruggemann D1, 2, 5
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Authors Affiliations
  1. 1. Department of Biointerphase Science and Technology, Max Planck Institute for Medical Research, Jahnstraße 29, Heidelberg, 69120, Germany
  2. 2. Department of Biophysical Chemistry, University of Heidelberg, INF 253, Heidelberg, D-69120, Germany
  3. 3. Nanotechnology Research Center, Faculty of Pharmacy, Tehran University of Medical Sciences, Tehran, 1417614411, Iran
  4. 4. CSF Biomaterials and Cellular Biophysics, Max Planck Institute for Intelligent Systems, Heisenbergstr. 3, Stuttgart, D-70569, Germany
  5. 5. Institute for Biophysics, University of Bremen, Otto-Hahn-Allee 1, Bremen, 28359, Germany
  6. 6. Helmholtz-Zentrum Geesthacht, Zentrum fur Material- und Kustenforschung GmbH, Max-Planck-Straße 1, Geesthacht, 21502, Germany

Source: Integrative Biology (United Kingdom) Published:2016


Abstract

Biomedical applications ranging from tissue engineering to drug delivery systems require versatile biomaterials based on the scalable and tunable production of biopolymer nanofibers under physiological conditions. These requirements can be successfully met by a novel extrusion process through nanoporous aluminum oxide templates, which is presented in this study. With this simple method we are able to control the nanofiber diameter by chosing the size of the nanopores and the concentration of the biopolymer feed solution. Nanofiber assembly into different hierarchical fiber arrangements can be achieved with a wide variety of different proteins ranging from the intracellular proteins actin, α-actinin and myosin to the extracellular matrix components collagen, fibronectin, fibrinogen, elastin and laminin. The extrusion of nanofibers can even be applied to the polysaccharides hyaluronan, chitosan and chondroitin sulphate. Moreover, blends of different proteins or proteins and polysaccharides can be extruded into composite nanofibers. With these features our template-assisted extrusion process will lead to new avenues in the development of nanofibrous biomaterials. © 2016 The Royal Society of Chemistry.
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