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Biotechnology and Bioengineering|April 1, 1999
Gas exchange is essential for bioreactor cultivation of tissue engineered cartilageB Obradovic, R L Carrier, G Vunjak-Novakovic, et al.Tissue Engineering|November 3, 2009
Mass transfer studies of tissue engineered cartilageP M Bursac, L E Freed, R J Biron, et al.Experimental Cell Research|December 10, 1999
Mammalian chondrocytes expanded in the presence of fibroblast growth factor 2 maintain the ability to differentiate and regenerate three-dimensional cartilaginous tissueI Martin, G Vunjak-Novakovic, J Yang, et al.Journal of Cellular Biochemistry|November 27, 1998
Collagen in tissue-engineered cartilage: types, structure, and crosslinksJ Riesle, A P Hollander, R Langer, et al.Biotechnology and Bioengineering|March 25, 1994
Composition of cell-polymer cartilage implantsL E Freed, J C Marquis, R Langer, et al.Proceedings of the National Academy of Sciences of the United States of America|February 12, 1998
Tissue engineering of cartilage in spaceL E Freed, R Langer, I Martin, et al.American Journal of Physiology. Heart and Circulatory Physiology|December 21, 2000
Tissue engineering of functional cardiac muscle: molecular, structural, and electrophysiological studiesM Papadaki, N Bursac, R Langer, et al.Journal of Cellular Biochemistry|August 14, 2001
Enhanced cartilage tissue engineering by sequential exposure of chondrocytes to FGF-2 during 2D expansion and BMP-2 during 3D cultivationI Martin, R Suetterlin, W Baschong, et al.Journal of Orthopaedic Research : Official Publication of the Orthopaedic Research Society|January 10, 2002
Integration of engineered cartilageB Obradovic, I Martin, R F Padera, et al.Biotechnology Progress|June 13, 1998
Dynamic cell seeding of polymer scaffolds for cartilage tissue engineeringG Vunjak-Novakovic, B Obradovic, I Martin, et al.Pageof 6