By Roger Narayan, Paolo Colombo, Sujanto Widjaja, Dileep Singh
This ebook is a suite of papers from the yank Ceramic Society's thirty fifth foreign convention on complicated Ceramics and Composites, held in Daytona seashore, Florida, January 23-28, 2011. This factor comprises papers awarded within the subsequent iteration Bioceramics and Porous Ceramics Symposia on issues similar to complicated Processing of Bioceramics; In Vitro and In Vivo Characterization of Bioceramics; clinical and Dental functions of Bioceramics; Porous Bioceramics; constitution and homes of Porous Ceramics; and Processing tools of Porous Ceramics.Content:
Read Online or Download Advances in Bioceramics and Porous Ceramics IV: Ceramic Engineering and Science Proceedings, Volume 32 PDF
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Extra resources for Advances in Bioceramics and Porous Ceramics IV: Ceramic Engineering and Science Proceedings, Volume 32
12' 13 Another strategy is to immobilize growth factors onto the scaffold surface. The carriers and delivery methods selected for the sustained delivery of growth factors play a vital role in the bone regeneration process. 18·19 For cell sources in bone tissue regeneration, the most widely investigated and used cells are osteoblasts and bone marrow derived mesenchymal stem cells (BM-MSCs). Primary osteoblasts or osteoprogenitor cells isolated from patients themselves do not raise ethical concerns and have no problems of immune rejection.
The porosity of a bioactive glass network not only noticeably increases the total reacting surface of the glass, but also serves as a framework for tissue ingrowth. This type of material may therefore prove useful as scaffolds for tissue engineering applications, for filling bone defects after trauma, infection and surgery. ACKNOWLEDGMENTS We wish to thank contributing team members at ВЮ2 Technologies, including Art O'Dea and Leonard Newton. This work was supported in part by BI02 Technologies and the Department of Veterans Affairs.
Splinter, W. С Allen, and Т. К. , "Bonding Mechanisms at the Interface of Ceramic Prosthetic Materials," J. Biomed. Mater. , 2, 117—41 (1971). A. De Diego, N. J. L. Hench, "Tensile Properties of Bioactive Fibres for Tissue Engineering Applications," J. Biomed. Mater. Res. (Appi. ), 53:199-203 (2000). 22 D. L. Wheeler, K. E. Stokes, R. G. Hoellrich, D. L. Chamberland, and S. W. McLoughlin, "Effect of Bioactive Glass Particle Size on Osseous Regeneration of Cancellous Defects," J. Biomed. Mater. , 41, 527-33 (1998).