Macroporous silicone biomaterials with modified surface chemistry: Production and characterization

Author:

Gencer Zeynep A1,Odabas Sedat1,Sasmazel Hilal T2,Piskin Erhan1

Affiliation:

1. Chemical Engineering Department and Bioengineering Division, Center for Bioengineering–Biyomedtek, Hacettepe University, Beytepe, Ankara, Turkey

2. Department of Metallurgical and Materials Engineering, Atilim University, Ankara, Turkey

Abstract

Porous and bioactive silicone biomaterials were developed for soft and cartilage tissue repair. A protocol, using compression molding, salt extraction, and supercritical carbon dioxide treatments, was used to obtain disk-shaped materials with specific pore sizes and morphologies by changing the process conditions. Highly open/interconnected macroporous silicone matrices, with an average pore size of 250–300 µm and porosities in the range of 60%–70%, were obtained by the extracting the NaCl particles. Subsequent treatment with supercritical carbon dioxide slightly decreased the average pore size but increased the porosity to 80%. The supercritical carbon dioxide treatment effectively removed the entrapped salt crystals from the silicone matrix that improved interconnectivity. The compression modulus decreased, while the compression strength was increased using this technique. The surfaces and pores of the silicone materials were modified by silanization to provide primary amine groups for cell attachment, proliferation, migration, and three-dimensional growth of model L929 fibroblast cells.

Publisher

SAGE Publications

Subject

Materials Chemistry,Polymers and Plastics,Biomaterials,Bioengineering

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