Biomedical Engineering Reference
In-Depth Information
[4] Lutolf, M. P. and Hubbell J. A., "Synthetic Biomaterials as Instructive Extracellular
Microenvironments for Morphogenesis in Tissue Engineering," Nat Biotechnol , Vol. 23, No.
1, 2005, pp. 47-55.
[5] Shin, H., Jo S. and Mikos A. G., "Biomimetic Materials for Tissue Engineering,"
Biomaterials , Vol. 24, No. 24, 2003, pp. 4353-64.
[6] Martin, I., Wendt D. and Heberer M., "The Role of Bioreactors in Tissue Engineering,"
Trends Biotechnol , Vol. 22, No. 2, 2004, pp. 80-6.
[7] Nerem, R. M., "Cell-Based Therapies: From Basic Biology to Replacement, Repair, and
Regeneration," Biomaterials , Vol. 28, No. 34, 2007, pp. 5074-7.
[8] Ishaug, S. L. , et al. , "Bone Formation by Three-Dimensional Stromal Osteoblast Culture in
Biodegradable Polymer Scaffolds," J Biomed Mater Res , Vol. 36, No. 1, 1997, pp. 17-28.
[9] Sikavitsas, V. I., Bancroft G. N. and Mikos A. G., "Formation of Three-Dimensional
Cell/Polymer Constructs for Bone Tissue Engineering in a Spinner Flask and a Rotating
Wall Vessel Bioreactor," J Biomed Mater Res , Vol. 62, No. 1, 2002, pp. 136-148.
[10] Botchwey, E. A. , et al. , "Tissue Engineered Bone: Measurement of Nutrient Transport in
Three-Dimensional Matrices," J Biomed Mater Res A , Vol. 67A, No. 1, 2003, pp. 357-367.
[11] Goldstein, A. S. , et al. , "Effect of Convection on Osteoblastic Cell Growth and Function in
Biodegradable Polymer Foam Scaffolds," Biomaterials , Vol. 22, No. 11, 2001, pp. 1279-88.
[12] Gooch, K. J. , et al. , "Effects of Mixing Intensity on Tissue-Engineered Cartilage,"
Biotechnol Bioeng , Vol. 72, No. 4, 2001, pp. 402-7.
[13] Gordana Vunjak-Novakovic, L. E. F., Robert J. Biron, Robert Langer,, "Effects of Mixing
on the Composition and Morphology of Tissue-Engineered Cartilage," AIChE J , Vol. 42,
No. 3, 1996, pp. 850-860.
[14] Sutherland, R. M. , et al. , "Oxygenation and Differentiation in Multicellular Spheroids of
Human Colon Carcinoma," Cancer Res , Vol. 46, No. 10, 1986, pp. 5320-9.
[15] Holy, C. E., Shoichet M. S. and Davies J. E., "Engineering Three-Dimensional Bone Tissue
in Vitro Using Biodegradable Scaffolds: Investigating Initial Cell-Seeding Density and
Culture Period," J Biomed Mater Res , Vol. 51, No. 3, 2000, pp. 376-82.
[16] Kim, B. S. , et al. , "Optimizing Seeding and Culture Methods to Engineer Smooth Muscle
Tissue on Biodegradable Polymer Matrices," Biotechnol Bioeng , Vol. 57, No. 1, 1998, pp.
46-54.
[17] Weinand, C. , et al. , "Conditions Affecting Cell Seeding onto Three-Dimensional Scaffolds
for Cellular-Based Biodegradable Implants," J Biomed Mater Res B: App Biomat , Epub Apr
2009.
[18] Li, Y. , et al. , "Effects of Filtration Seeding on Cell Density, Spatial Distribution, and
Proliferation in Nonwoven Fibrous Matrices," Biotechnol Prog , Vol. 17, No. 5, 2001, pp.
935-44.
[19] Wendt, D. , et al. , "Oscillating Perfusion of Cell Suspensions through Three-Dimensional
Scaffolds Enhances Cell Seeding Efficiency and Uniformity," Biotechnol Bioeng , Vol. 84,
No. 2, 2003, pp. 205-14.
[20] Alvarez-Barreto, J. F. , et al. , "Flow Perfusion Improves Seeding of Tissue Engineering
Scaffolds with Different Architectures," Ann Biomed Eng , Vol. 35, No. 3, 2007, pp. 429-42.
[21] Du, D., Furukawa K. and Ushida T., "Oscillatory Perfusion Seeding and Culturing of
Osteoblast-Like Cells on Porous Beta-Tricalcium Phosphate Scaffolds," J Biomed Mater Res
A , Vol. 86A, No. 3, 2008, pp. 796-803.
[22] Alvarez-Barreto, J. F. and Sikavitsas V. I., "Improved Mesenchymal Stem Cell Seeding on
Rgd-Modified Poly(L-Lactic Acid) Scaffolds Using Flow Perfusion," Macromol Biosci , Vol.
7, No. 5, 2007, pp. 579-88.
Search WWH ::




Custom Search