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Chondrogenic differentiation

Bhasin N, Kemick E, Luo X, Seidel HE, Weiss ER, Lauder JM. Differential regulation of chondrogenic differentiation by the serotonin2B receptor and retinoic acid in the embryonic mouse hindlimb. Dev Dyn 2004 230 201-209. [Pg.437]

Wise JK et al (2009) Chondrogenic differentiation of human mesenchymal stem cells on oriented nanofibrous scaffolds engineering the superficial zone of articular cartilage. Tissue Eng A 15(4) 913-921... [Pg.208]

Kramer J, Hegert C, Hargus G, et al. (2005). Mouse ES cell lines show a variable degree of chondrogenic differentiation in vitro. Cell Biol. Int. 29 139-146. [Pg.1330]

Awad, H. A., Wickham, M. Q., Leddy, H. A., Gimble, J. M., GuUak, P. Chondrogenic differentiation of adipose-derived adult stem cells in agarose, alginate, and gelatin scaffolds. Biomaterials. 2004, 25, 3211-3222. [Pg.926]

Varghese, S., Hwang, N. S., Canver, A. C., Theprungsirikul, P., Lin, D. W., Elisseeff, J. Chondroitin sulfate based niches for chondrogenic differentiation of mesenchymal stem cells. Matrix Biology. 2008, 27, 12-21. [Pg.929]

Salinas, C. N., Cole, B. B., Kasko, A. M., Anseth, K. S. Chondrogenic differentiation potential of human mesenchymal stem cells photoencapsulated within poly(ethylene glycol)-arginine-glycine-aspartic acid-serine thiol-methacrylate mixed-mode networks. Tissue Engineering. 2007,13, 1025-1034. [Pg.929]

Hwang, N. S., Kim, M. S., Sampattavanich, S., Baek, J. H., Zhang, Z., Elisseeff, J. Effects of three dimensional culture and growth factors on the chondrogenic differentiation of murine embryonic stem cells. Stem Cells. 2006, 24, 284-291. [Pg.929]

J.H. Cho, S.-H. Kim, K.D. Park, M.C. Jung, W.l. Yang, S.W. Han, et al., Chondrogenic differentiation of human mesenchymal stem cells using a thermosensitive poly (N-isopropylacrylamide) and water-soluble chitosan copolymer. Biomaterials 25 (2004) 5743-5751. [Pg.109]

P.B. Malafaya, J.T. Oliveira, R.L. Reis, The effect of insulin-loaded chitosan particle-aggregated scaffolds in chondrogenic differentiation, Tissue Eng. A 16 (2009) 735-747. [Pg.113]

N. Mahmoudifar, P.M. Doran, Chondrogenic differentiation of human adipose-derived stem cells in polyglycolic acid mesh scaffolds under dynamic culture conditions. Biomaterials 31 (2010) 3858-3867, doi 10.1016/j.biomaterials.2010.01.090. [Pg.179]

M.S. Rahman, T. Tsuchiya, Enhancement of chondrogenic differentiation of human articular chondrocytes by biodegradable polymers. Tissue Eng. 7 (2001) 781-790. [Pg.285]

Na, K., Kim, S., Woo, D. G., Sun, B. K., Yang, H. N., Chung, H. M. Park, K. H. (2007b) Synergistic effect of TGFbeta-3 on chondrogenic differentiation of rabbit chondrocytes in thermo-reversible hydrogel constructs blended with hyaluronic acid by in vivo test. J Biotechnol, 128, 412-22. [Pg.177]

Sahnas, C. N. Anseth, K. S. (2008) The enhancement of chondrogenic differentiation of human mesench3mial stem cells by enzymatically regulated RGD functionahties. [Pg.178]

Yun, K. Moon, H.T. 2008, Inducing chondrogenic differentiation in injectable hydrogels embedded with rabbit chondrocytes and growth factor for neocartilage formation . Journal of Bioscience and Bioengineering, vol. 105, no. 2, pp. 122-126. [Pg.296]

Ho STB, Cool SM, Hui JH, Hutmacher DW (2010) The influence of fibrin based hydrogels on the chondrogenic differentiation of human bone marrow stromal cells. Biomaterials 31 38-47... [Pg.207]

Human MSCs isolated from two different tissues, adipose tissue and placenta, automatically formed 3D spheroids when cultured on chitosan and chitosan-hyaluronan (chitosan-HA) membranes. Cells in these spheroids remained relatively undifferentiated, because sternness marker genes were well maintained, and blocking spheroid formation decreased the expression of these marker genes. Moreover, the formation of 3D cell spheroids may also have higher chondrogenic differentiation capacity upon TGF-p3 induction. [Pg.411]

Effect of Grafted Cationic Polymers on Chondrogenic Differentiation of MSCs... [Pg.587]

MSCs are cultured in PAAm-grafted cell-culture polystyrene plates in chondrogenic differentiation medium. The cells show different behavior on the PAAm-modified surface and cell-culture polystyrene plate surfaee (control). On the cationic PAAm-modified surfaces, the cells adhere to the surfaces and spread immediately after cell seeding. The spread becomes more evident after culture for 3 hours. The cells proliferate with the increase of culture time and reach confluence after 3 days. The cells aggregate and detach from the surfaces to form pellets once the cells become confluent. Therefore, after culture for 3 days, pellets are visible on the surfaces. On the control surface, the MSCs adhere and spread slightly after 30 minutes culture. The spread is... [Pg.587]

The cationic PAAm-modified surface supports cell adhesion, proliferation and chondrogenic differentiation. The cell-culture polystyrene surfaces support cell adhesion and proliferation, but not chondrogenic differentiation. [Pg.589]

Nemeth, C.L., Janebodin, K., Yuan, A.E., Dennis, J.E., Reyes, M., Kim, D.H. Enhanced chondrogenic differentiation of dental pulp stem cells using nanopatterned PEG-GelMA-HA hydrogels. Tissue Engineering Part A 20, 2817-2829 (2014)... [Pg.208]

Since cartilage formation is a predominant feature of early (stages 22-29) in vivo limb development [16], whole limbs were used to study the relationdiip of pADPRS activity to chondrogenic differentiation and are depicted in Fig. 1 A, left panel. The observed... [Pg.390]


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