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Tissue Engineering|November 3, 2009
Fabricating tubular devices from polymers of lactic and glycolic Acid for tissue engineeringD J Mooney, C Breuer, K McNamara, et al.American Journal of Ophthalmology|April 28, 1999
Pilomatrix carcinoma of the eyelidM T Cahill, P M Moriarty, D J Mooney, et al.Nature|January 5, 2001
Controlled growth factor release from synthetic extracellular matricesK Y Lee, M C Peters, K W Anderson, et al.Biotechnology and Bioengineering|April 1, 1999
Optimizing seeding and culture methods to engineer smooth muscle tissue on biodegradable polymer matricesB S Kim, A J Putnam, T J Kulik, et al.Molecular Biology of the Cell|September 1, 1994
Integrin binding and cell spreading on extracellular matrix act at different points in the cell cycle to promote hepatocyte growthL K Hansen, D J Mooney, J P Vacanti, et al.Biomaterials|November 9, 2000
Sustained release of vascular endothelial growth factor from mineralized poly(lactide-co-glycolide) scaffolds for tissue engineeringW L Murphy, M C Peters, D H Kohn, et al.Gene Therapy|January 14, 2005
Bone regeneration in a rat cranial defect with delivery of PEI-condensed plasmid DNA encoding for bone morphogenetic protein-4 (BMP-4)Y-C Huang, C Simmons, D Kaigler, et al.Journal of Dental Research|January 5, 2002
Cell-interactive alginate hydrogels for bone tissue engineeringE Alsberg, K W Anderson, A Albeiruti, et al.Biomaterials|August 15, 2000
Porous carriers for biomedical applications based on alginate hydrogelsP Eiselt, J Yeh, R K Latvala, et al.Molecular Biology of the Cell|December 1, 1994
Extracellular matrix controls tubulin monomer levels in hepatocytes by regulating protein turnoverD J Mooney, L K Hansen, R Langer, et al.Pageof 10