Effects of Hydrogel Stiffness and Extracellular Compositions on Modulating Cartilage Regeneration by Mixed Populations of Stem Cells and Chondrocytes In Vivo.
暂无分享,去创建一个
Fan Yang | Fan Yang | J. Lai | Janice H Lai | Tianyi Wang | Tianyi Wang
[1] A. Mikos,et al. Enhanced chondrogenesis in co-cultures with articular chondrocytes and mesenchymal stem cells. , 2012, Biomaterials.
[2] Farshid Guilak,et al. Isolation of adipose-derived stem cells and their induction to a chondrogenic phenotype , 2010, Nature Protocols.
[3] Min Zhu,et al. Human adipose tissue is a source of multipotent stem cells. , 2002, Molecular biology of the cell.
[4] I. Chu,et al. Effect of chondroitin sulphate C on the in vitro and in vivo chondrogenesis of mesenchymal stem cells in crosslinked type II collagen scaffolds , 2013, Journal of tissue engineering and regenerative medicine.
[5] M. Brittberg,et al. Articular Cartilage Engineering with Autologous Chondrocyte Transplantation , 2003 .
[6] J. Turnbull,et al. Fibroblast growth factor receptor signalling is dictated by specific heparan sulphate saccharides , 1999, Current Biology.
[7] Stephanie J Bryant,et al. Encapsulating chondrocytes in degrading PEG hydrogels with high modulus: Engineering gel structural changes to facilitate cartilaginous tissue production , 2004, Biotechnology and bioengineering.
[8] C. Archer,et al. Current strategies for articular cartilage repair. , 2005, European cells & materials.
[9] Liming Bian,et al. The influence of hyaluronic acid hydrogel crosslinking density and macromolecular diffusivity on human MSC chondrogenesis and hypertrophy. , 2013, Biomaterials.
[10] Jason A Burdick,et al. Hydrogel design for cartilage tissue engineering: a case study with hyaluronic acid. , 2011, Biomaterials.
[11] I. Matsuo,et al. Extracellular distribution of diffusible growth factors controlled by heparan sulfate proteoglycans during mammalian embryogenesis , 2014, Philosophical Transactions of the Royal Society B: Biological Sciences.
[12] K. Allen,et al. State of the evidence , 2015, Current opinion in rheumatology.
[13] HanLi-Hsin,et al. Chondrogenic Differentiation of Adipose-Derived Stromal Cells in Combinatorial Hydrogels Containing Cartilage Matrix Proteins with Decoupled Mechanical Stiffness , 2014 .
[14] W. Maloney,et al. Stem cells catalyze cartilage formation by neonatal articular chondrocytes in 3D biomimetic hydrogels , 2013, Scientific Reports.
[15] D. Ornitz,et al. FGFs, heparan sulfate and FGFRs: complex interactions essential for development. , 2000, BioEssays : news and reviews in molecular, cellular and developmental biology.
[16] T. Griffin,et al. The Role of Mechanical Loading in the Onset and Progression of Osteoarthritis , 2005, Exercise and sport sciences reviews.
[17] Shyni Varghese,et al. Multifunctional chondroitin sulphate for cartilage tissue-biomaterial integration. , 2007, Nature materials.
[18] V. Nurcombe,et al. The osteoblast-heparan sulfate axis: control of the bone cell lineage. , 2005, The international journal of biochemistry & cell biology.
[19] Jennifer H Elisseeff,et al. Bioinspired nanofibers support chondrogenesis for articular cartilage repair , 2012, Proceedings of the National Academy of Sciences.
[20] M. Brittberg,et al. Articular cartilage engineering with autologous chondrocyte transplantation. A review of recent developments. , 2003, The Journal of bone and joint surgery. American volume.
[21] Fan Yang,et al. Chondrogenic differentiation of adipose-derived stromal cells in combinatorial hydrogels containing cartilage matrix proteins with decoupled mechanical stiffness. , 2014, Tissue engineering. Part A.
[22] Shyni Varghese,et al. Chondroitin sulfate based niches for chondrogenic differentiation of mesenchymal stem cells. , 2008, Matrix biology : journal of the International Society for Matrix Biology.
[23] S. Bryant,et al. Gel structure has an impact on pericellular and extracellular matrix deposition, which subsequently alters metabolic activities in chondrocyte-laden PEG hydrogels. , 2011, Acta biomaterialia.
[24] Justine J. Roberts,et al. Degradation Improves Tissue Formation in (Un)Loaded Chondrocyte-laden Hydrogels , 2011, Clinical orthopaedics and related research.
[25] Eben Alsberg,et al. Photocrosslinked alginate hydrogels with tunable biodegradation rates and mechanical properties. , 2009, Biomaterials.
[26] Christine E Schmidt,et al. Photocrosslinked hyaluronic acid hydrogels: natural, biodegradable tissue engineering scaffolds. , 2003, Biotechnology and bioengineering.
[27] Yi Yan Yang,et al. Biomimetic hydrogels for chondrogenic differentiation of human mesenchymal stem cells to neocartilage. , 2010, Biomaterials.
[28] P. Gatenholm,et al. Human adipose-derived stem cells contribute to chondrogenesis in coculture with human articular chondrocytes. , 2009, Tissue engineering. Part A.
[29] R. E. Neuman,et al. The determination of hydroxyproline. , 1950, The Journal of biological chemistry.
[30] Christine E Schmidt,et al. Cell-laden hydrogel constructs of hyaluronic acid, collagen, and laminin for neural tissue engineering. , 2010, Tissue engineering. Part A.
[31] Jerry C. Hu,et al. Unlike Bone, Cartilage Regeneration Remains Elusive , 2012, Science.
[32] D. Carson,et al. Heparan sulfate proteoglycans: coordinators of multiple signaling pathways during chondrogenesis. , 2004, Birth defects research. Part C, Embryo today : reviews.
[33] Xian Xu,et al. Hyaluronic Acid-Based Hydrogels: from a Natural Polysaccharide to Complex Networks. , 2012, Soft matter.
[34] H. Lorenz,et al. Multilineage cells from human adipose tissue: implications for cell-based therapies. , 2001, Tissue engineering.
[35] L. Bian,et al. Hydrogels that mimic developmentally relevant matrix and N-cadherin interactions enhance MSC chondrogenesis , 2013, Proceedings of the National Academy of Sciences.
[36] J. I. Izpisúa Belmonte,et al. Activin/BMP2 chimeric ligands direct adipose-derived stem cells to chondrogenic differentiation. , 2013, Stem cell research.
[37] Kristi S Anseth,et al. Encapsulating chondrocytes in copolymer gels: bimodal degradation kinetics influence cell phenotype and extracellular matrix development. , 2004, Journal of biomedical materials research. Part A.
[38] Jason A. Burdick,et al. Hyaluronic Acid Hydrogels for Biomedical Applications , 2011, Advanced materials.
[39] F. O'Brien,et al. Mesenchymal stem cell fate is regulated by the composition and mechanical properties of collagen-glycosaminoglycan scaffolds. , 2012, Journal of the mechanical behavior of biomedical materials.
[40] Farshid Guilak,et al. Chondrogenic differentiation of adipose-derived adult stem cells in agarose, alginate, and gelatin scaffolds. , 2004, Biomaterials.
[41] Farshid Guilak,et al. Chondrogenic potential of adipose tissue-derived stromal cells in vitro and in vivo. , 2002, Biochemical and biophysical research communications.
[42] A. Mobasheri,et al. Chondrocyte and mesenchymal stem cell-based therapies for cartilage repair in osteoarthritis and related orthopaedic conditions. , 2014, Maturitas.