By Roger Narayan, Paolo Colombo, Sujanto Widjaja, Dileep Singh
This publication is a set of papers from the yank Ceramic Society's thirty fifth overseas convention on complicated Ceramics and Composites, held in Daytona seashore, Florida, January 23-28, 2011. This factor comprises papers awarded within the subsequent new release Bioceramics and Porous Ceramics Symposia on subject matters resembling complex Processing of Bioceramics; In Vitro and In Vivo Characterization of Bioceramics; scientific and Dental functions of Bioceramics; Porous Bioceramics; constitution and homes of Porous Ceramics; and Processing equipment of Porous Ceramics.Content:
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Additional resources for Advances in Bioceramics and Porous Ceramics IV: Ceramic Engineering and Science Proceedings, Volume 32
8 H. Tsuchiya, J. M. Macak, L. Müller, J. Kunze, F. Müller, P. Greil, S. Virtanen, and P. Schmuki, Hydroxyapatite Growth on Anodic T1O2 Nanotubes. J. Biomed. Mater. , Part A, 77, 534-40 (2006). 9 T. Akasaka, F. Watari, Y. Sato, and K. Tohji, Apatite Formation on Carbon Nanotubes, Mat. Sci. and Eng. C, 26, 675-8 (2006). 10 R. Boccaccini, F. Chicatun, J. Cho, O. Bretcanu, J. A. Roether, S. Novak, and Q. Z. Chen, Carbon Nanotube Coatings on Bioglass-Based Tissue Engineering, Adv. Funct. Mater, 17,2815-22 (2007).
The strength of the substrate is derived from the fibers and bonds between overlapping and adjoining fibers within the structure. 12 Porosity can, however, adversely affect important mechanical characteristics of a scaffold, for instance it is difficult to achieve a high porosity Advances in Bioceramics and Porous Ceramics IV · 27 Tissue Ingrowth in Resorbable Porous Tissue Scaffolds with high strength. This challenge may be overcome by re-engineering a porous scaffold using fibrous structure. In so doing, it is possible to extend the porosity range at the same time, while maintaining adequate mechanical strength.
Figure 5. ALP activity of hUC-MSCs seeded on different scaffolds and also tissue culture plate (the control) for different culture times. 01) DISCUSSION In the current study, we pioneered producing and using nanocomposite microspheres as raw materials in the SLS process for fabricating three-dimensional osteoconductive bone tissue engineering scaffolds. This strategy is unlike previously reported research by others in which bioceramic particles were dry-blended with polymer granules and the blends were then used directly for SLS to form composite scaffolds.