Chinese Journal of Tissue Engineering Research ›› 2012, Vol. 16 ›› Issue (49): 9306-9310.doi: 10.3969/j.issn.2095-4344.2012.49.033
Xu Sheng-gui, Lin Jian-hua
Received:
2012-02-01
Revised:
2012-04-03
Online:
2012-12-02
Published:
2013-01-16
Contact:
Lin Jian-hua, Chief physician, Professor, Doctoral supervisor, Department of Orthopedics, First Affiliated Hospital of Fujian Medical University, Fuzhou 350005, Fujian Province, China jianhua0918@
126.com
About author:
Xu Sheng-gui★, Master, Department of Orthopedics, First Affiliated Hospital of Fujian Medical University, Fuzhou 350005, Fujian Province, China xshgui@yahoo.com.cn
CLC Number:
Xu Sheng-gui, Lin Jian-hua. Cytokines regulate osteochondral differentiation of stem cells[J]. Chinese Journal of Tissue Engineering Research, 2012, 16(49): 9306-9310.
[1] Riancho JA, Olmos JM, Pineda B, et al. Wnt receptors, bone mass, and fractures: gene-wide association analysis of LRP5 and LRP6 polymorphisms with replication. Eur J Endocrinol. 2011;164(1):123-131. [2] Boyden LM, Mao J, Belsky J, et al. High bone density due to a mutation in LDL-receptor-related protein 5. N Engl J Med. 2002; 346(20):1513-1521.[3] Yadav VK, Ryu JH, Suda N, et al. Lrp5 controls bone formation by inhibiting serotonin synthesis in the duodenum. Cell. 2008;135(5):825-837.[4] Hoang BH, Kubo T, Healey JH, et al. Expression of LDL receptor-related protein 5 (LRP5) as a novel marker for disease progression in high-grade osteosarcoma. Int J Cancer. 2004;109(1):106-111.[5] Day TF, Guo X, Garrett-Beal L, et al. Wnt/beta-catenin signaling in mesenchymal progenitors controls osteoblast and chondrocyte differentiation during vertebrate skeletogenesis. Dev Cell. 2005;8(5):739-750.[6] Hill TP, Später D, Taketo MM, et al. Canonical Wnt/beta-catenin signaling prevents osteoblasts from differentiating into chondrocytes. Dev Cell. 2005;8(5): 727-738.[7] Dong YF, Soung do Y, Schwarz EM, et al. Wnt induction of chondrocyte hypertrophy through the Runx2 transcription factor. J Cell Physiol. 2006;208(1):77-86.[8] Komori T. Regulation of bone development and extracellular matrix protein genes by RUNX2. Cell Tissue Res. 2010;339 (1):189-195.[9] Maruyama T, Mirando AJ, Deng CX, et al. The balance of WNT and FGF signaling influences mesenchymal stem cell fate during skeletal development. Sci Signal. 2010;3(123): ra40.[10] Etheridge SL, Spencer GJ, Heath DJ, et al. Expression profiling and functional analysis of wnt signaling mechanisms in mesenchymal stem cells. Stem Cells. 2004;22(5):849-860.[11] Cho HH, Kim YJ, Kim SJ, et al. Endogenous Wnt signaling promotes proliferation and suppresses osteogenic differentiation in human adipose derived stromal cells. Tissue Eng. 2006;12(1):111-121.[12] Quarto N, Behr B, Longaker MT. Opposite spectrum of activity of canonical Wnt signaling in the osteogenic context of undifferentiated and differentiated mesenchymal cells: implications for tissue engineering. Tissue Eng Part A. 2010; 16(10):3185-3197.[13] Eijken M, Meijer IM, Westbroek I, et al. Wnt signaling acts and is regulated in a human osteoblast differentiation dependent manner. J Cell Biochem. 2008;104(2):568-579.[14] Bennett CN, Longo KA, Wright WS, et al. Regulation of osteoblastogenesis and bone mass by Wnt10b. Proc Natl Acad Sci U S A. 2005;102(9):3324-3329.[15] Kapinas K, Kessler C, Ricks T, et al. miR-29 modulates Wnt signaling in human osteoblasts through a positive feedback loop. J Biol Chem. 2010;285(33):25221-25231.[16] Feng J, Iwama A, Satake M, et al. MicroRNA-27 enhances differentiation of myeloblasts into granulocytes by post-transcriptionally downregulating Runx1. Br J Haematol. 2009;145(3):412-423.[17] McDaneld TG, Smith TP, Doumit ME, et al. MicroRNA transcriptome profiles during swine skeletal muscle development. BMC Genomics. 2009;10:77.[18] Wang T, Xu Z. miR-27 promotes osteoblast differentiation by modulating Wnt signaling. Biochem Biophys Res Commun. 2010;402(2):186-189. [19] Hogan BL. Bone morphogenetic proteins: multifunctional regulators of vertebrate development. Genes Dev. 1996; 10(13):1580-1594.[20] Horner A, Kemp P, Summers C, et al. Expression and distribution of transforming growth factor-beta isoforms and their signaling receptors in growing human bone. Bone. 1998;23(2):95-102.[21] Miyazono K, Kamiya Y, Morikawa M. Bone morphogenetic protein receptors and signal transduction. J Biochem. 2010; 147(1):35-51.[22] 张永刚,卢世璧,王继芳.骨引导与骨诱导[J].中华创伤杂志, 1996,31(1):199-209.[23] Zhao M, Harris SE, Horn D, et al. Bone morphogenetic protein receptor signaling is necessary for normal murine postnatal bone formation. J Cell Biol. 2002;157(6):1049-1060.[24] Denker AE, Haas AR, Nicoll SB, et al. Chondrogenic differentiation of murine C3H10T1/2 multipotential mesenchymal cells: I. Stimulation by bone morphogenetic protein-2 in high-density micromass cultures. Differentiation. 1999;64(2):67-76.[25] Stroschein SL, Wang W, Zhou S, et al. Negative feedback regulation of TGF-beta signaling by the SnoN oncoprotein. Science. 1999;286(5440):771-774.[26] Sekiya I, Larson BL, Vuoristo JT, et al. Comparison of effect of BMP-2, -4, and -6 on in vitro cartilage formation of human adult stem cells from bone marrow stroma. Cell Tissue Res. 2005;320(2):269-276.[27] De Bari C, Dell'Accio F, Tylzanowski P, et al. Multipotent mesenchymal stem cells from adult human synovial membrane. Arthritis Rheum. 2001;44(8):1928-1942.[28] Eyckmans J, Roberts SJ, Schrooten J, et al. A clinically relevant model of osteoinduction: a process requiring calcium phosphate and BMP/Wnt signalling. J Cell Mol Med. 2010; 14(6B):1845-1856.[29] Martin I, Muraglia A, Campanile G, et al. Fibroblast growth factor-2 supports ex vivo expansion and maintenance of osteogenic precursors from human bone marrow. Endocrinology. 1997;138(10):4456-4462.[30] Tokunaga A, Oya T, Ishii Y, et al. PDGF receptor beta is a potent regulator of mesenchymal stromal cell function. J Bone Miner Res. 2008;23(9):1519-1528.[31] Chung R, Foster BK, Zannettino AC, et al. Potential roles of growth factor PDGF-BB in the bony repair of injured growth plate. Bone. 2009;44(5):878-885.[32] Tamama K, Fan VH, Griffith LG, et al. Epidermal growth factor as a candidate for ex vivo expansion of bone marrow-derived mesenchymal stem cells. Stem Cells. 2006;24(3):686-695. |
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