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Preparation and Reinforcement of Dual‐Porous Biocompatible Cellulose Scaffolds for Tissue Engineering
Authors:Nicole Pircher  David Fischhuber  Leticia Carbajal  Christine Strauß  Jean‐Marie Nedelec  Cornelia Kasper  Thomas Rosenau  Falk Liebner
Affiliation:1. Department of Chemistry, Division of Chemistry of Renewables, University of Natural Resources and Life Sciences Vienna, Vienna, Austria;2. Institute of Chemistry of Clermont‐Ferrand, Clermont Université, Ecole Nationale Supérieure de Chimie de Clermont‐Ferrand, Clermont‐Ferrand, France;3. Institute of Chemistry of Clermont‐Ferrand, Centre National de la Recherche Scientifique, Aubière, France;4. Department for Biotechnology, University of Natural Resources and Life Sciences Vienna, Vienna, Austria
Abstract:Biocompatible cellulose‐based aerogels composed of nanoporous struts, which embed interconnected voids of controlled micron‐size, have been prepared employing temporary templates of fused porogens, reinforcement by interpenetrating PMMA networks and supercritical carbon dioxide drying. Different combinations of cellulose solvent (Ca(SCN)2/H2O/LiCl or EMIm]OAc]/DMSO) and anti‐solvent (EtOH), porogen type (paraffin wax or PMMA spheres) and porogen size (various fractions in the range of 100–500 μm) as well as intensity of PMMA reinforcement have been investigated to tailor the materials for cell scaffolding applications. All aerogels exhibited an open and dual porosity (micronporosity >100 μm and nanoporosity extending to the low micrometer range). Mechanical properties of the dual‐porous aerogels under compressive stress were considerably improved by introduction of interpenetrating PMMA networks. The effect of the reinforcing polymer on attachment, spreading, and proliferation of NIH 3T3 fibroblast cells, cultivated on selected dual‐porous aerogels to pre‐evaluate their biocompatibility was similarly positive.mame201500048-gra-0001
Keywords:cellulose aerogels  dual‐porosity  porogens  supercritical anti‐solvent precipitation  tissue engineering
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