Long et al., J. Clin. Invest. 95(2): 881-887 (Feb. 1995).* |
Aubin et al., “Isolation of bone cell clones with differences in growth, hormone responses, and extracellular matrix production,” J. of Cell Biol. 92:452-461, 1982. |
Denker et al., “Formation of cartilage-like spheroids by micromass cultures of murine C3H10T1/2 cells upon treatment with transforming growth factor-beta 1,” Differentiation 59:25-34, 1995. |
Hall and Miyake, “Divide, accumulate, differentiate: cell condensation in skeletal development revisited,” International Journal of Developmental Biology 39:881-893, 1995. |
Harris et al., “Effects of transforming growth factor beta on bone nodule formation and expression of bone morphgenetic protein 2, osteocalcin, osteopontin, alkaline phosphatase, and type I collagen mRNA in long-term cultures of fetal rat calvarial osteoblasts,” J. Bone Min. Res., 9(6):855-863, 1994. |
Jayme, “Nutrient optimization for high density biological production applications,” Cytotechnology 5(1):15-30, 1991. |
Kale et al., “Three-dimensional cellular development is essential for ex vivo formation of human bone,” Nat. Biotechnol., 18:954-958, 2000. |
Lawson et al., “Isolation and preliminary characterization of a monoclonal antibody that interacts preferentially with the liver isoenzyme of human alkaline phosphatase,” Clin Chem, 31:381-385, 1985. |
Long, “Expression of human bone-related proteins in the hematopoietic microenvironment,” J Clin. Invest., 86:1387-1395, 1990. |
Long, “Regulation of human bone marrow-derived osteoprogenitor cells by osteogenic growth factors,” J. Clin. Invest., 95:881-887, 1995. |
Malaval et al., “Cellular expression of bone-related proteins during in vitro osteogenesis in rat bone marrow stromal cell cultures,” J. Cell. Phys., 158:555-572, 1994. |
Miyake et al., “Stage-specific onset of condensation and matrix deposition for Meckel's and other first arch cartilages in inbred C57BL/6 mice,” Journal of Craniofacial Genetics & Developmental Biology, 16:32-47, 1996. |
Oberlender and Tuan, “Spatiotemporal profile of N-cadherin expression in the developing limb mesenchyme,” Cell Adhesion & Communication, 2:521-537, 1994. |
Shull et al., “Identification of a vitamin D responsive protein on the surface of human osteosarcoma cells,” Proc. Nat'l Acad. Sci. USA, 86:5405-5410, 1989. |
Siggelkow et al., “Proliferation and Differentiation of human osteoblast—like cell in culture—an in-vivo model of osteoblast development,” J. of Bone and Mineral Res., 8(S1):S300, 1993. |
Turksen et al., “Isolation of monoclonal antibodies recognizing rat bone-associated molecules in vitro and in vivo,” J Histochem Cytochem, 40:1339-1352, 1992. |
Wong and Tuan, “Interactive cellular modulation of chondrogenic differentiation in vitro by subpopulations of chick embryonic calvarial cells,” Developmental Biology (Orlando), 167:130-147, 1995. |
Woodward and Tuan, “N-Cadherin expression and signaling in limb mesenchymal chondrogenesis: stimulation by poly-L-lysine,” Developmental Genetics, 24:178-187, 1999. |
Yoo et al., “The chondrogenic potential of bone-marrow-derived mesenchymal progenitor cells,” J. Bone Join Surg., 80A(12):1745-1757, 1998. |