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Altered Gene Expression in Articular Chondrocytes of Smad3ex8/ex8 Mice, Revealed by Gene Profiling Using Microarrays

Hao Wang Jishuai Zhang Qiang Sun Xiao Yang

Hao Wang, Jishuai Zhang, Qiang Sun, Xiao Yang. Altered Gene Expression in Articular Chondrocytes of Smad3ex8/ex8 Mice, Revealed by Gene Profiling Using Microarrays[J]. Journal of Genetics and Genomics, 2007, 34(8): 698-708. doi: 10.1016/S1673-8527(07)60079-4
Citation: Hao Wang, Jishuai Zhang, Qiang Sun, Xiao Yang. Altered Gene Expression in Articular Chondrocytes of Smad3ex8/ex8 Mice, Revealed by Gene Profiling Using Microarrays[J]. Journal of Genetics and Genomics, 2007, 34(8): 698-708. doi: 10.1016/S1673-8527(07)60079-4

doi: 10.1016/S1673-8527(07)60079-4

Altered Gene Expression in Articular Chondrocytes of Smad3ex8/ex8 Mice, Revealed by Gene Profiling Using Microarrays

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  • [1] Hicham, D, Michael, et al. Transcriptional regulation of chondrocyte maturation: Potential involvement of transcription factors in OA pathogenesis Mol Aspects Med, 26 (2005),pp. 169-179
    [2] Henry, MK Developmental regulation of the growth plate Nature, 423 (2003),pp. 332-336
    [3] Gerard, K, Erwin, et al. Reaching a genetic and molecular understanding of skeletal development Dev Cell, 2 (2002),pp. 389-406
    [4] Lefebvre, V, Smits, et al. Transcriptional control of chondrocyte fate and differentiation Birth Defects Res C Embryo Today, 75 (2005),pp. 200-212
    [5] Ballock, RT TGF-β1 prevents hypertrophy of epiphyseal chondrocytes: regulation of gene expression for cartilage matrix proteins and metalloproteases Dev Biol, 158 (1993),pp. 414-429
    [6] Tschan, T Autocrine or paracrine transforming growth factor-beta modulates the phenotype of chick embryo sternal chondrocytes in serumfree agarose culture J Biol Chem, 268 (1993),pp. 5156-5161
    [7] Dieudonne, SC Opposite effects of osteogenic protein and transforming growth factor beta on chondrogenesis in cultured long bone rudiments J Bone Miner Res, 9 (1994),pp. 771-780
    [8] Bohme, K Terminal differentiation of chondrocytes in culture is a spontaneous process and is arrested by transforming growth factor-beta 2 and basic fibroblast growth factor in synergy Exp Cell Res, 216 (1995),pp. 191-198
    [9] Serra, R Expression of a truncated, kinase-defective TGF-β type II receptor in mouse skeletal tissue promotes terminal chondrocyte differentiation and osteoarthritis J Cell Biol, 139 (1997),pp. 541-552
    [10] Dabovic, B Bone abnormalities in latent TGF-β binding protein (Ltbp)-3-null mice indicate a role for Ltbp-3 in modulating TGF-β bioavailability J Cell Biol, 156 (2002),pp. 227-232
    [11] Kizawa, H An aspartic acid repreat polymorphism in asporin inhibits chondrogenesis and increases susceptibility to ostesarthtitis Nature Genet, 37 (2005),pp. 138-144
    [12] Yang, X, Letterio, et al. Targeted disruption of SMAD3 results in impaired mucosal immunity and diminished T cell responsiveness to TGF-β EMBO J, 18 (1999),pp. 1280-1291
    [13] Yang, X, Chen, et al. TGF-β/Smad3 signals repress chondrocyte hypertrophic differentiation and are required for maintaining articular cartilage J Cell Biol, 153 (2001),pp. 35-46
    [14] Yao, JY Eur J Hum Genet, 11 (2003),pp. 714-717
    [15]
    [16]
    [17]
    [18] Li, X, Schwarz, et al. Retinoic acid stimulates chondrocyte differentiation and enhances bone morphogenetic protein effects through induction of Smad1 and Smad5 Endocrinology, 144 (2003),pp. 2514-2523
    [19] Lin, X, Duan, et al. PPM1A functions as a Smad phosphatase to terminate TGF-β signaling Cell, 125 (2006),pp. 915-928
    [20] Cristin, MF, Edward, et al. Smad2 and 3 mediate transforming growth factor-β1-induced inhibition of chondrocyte maturation Endocrinology, 141 (2000),pp. 4728-4735
    [21] Li, TF, Darowish, et al. Deficient chondrocytes have enhanced BMP signaling and accelerated differentiation J Bone Miner Res, 21 (2006),pp. 4-16
    [22] Southam, L, Chapman, et al. Genetic association analysis of BMP5 as a potential osteoarthritis susceptibility gene Rheumatology (Oxford), 42 (2003),pp. 911-912
    [23] Southam, L, Dowling, et al. Microsatellite association mapping of a primary osteoarthritis susceptibility locus on chromosome 6p12.3-q13 Arthritis Rheum, 50 (2004),pp. 3910-3914
    [24] Edlund, S, Landstrom, et al. Transforming growth factor-beta-induced mobilization of actin cytoskeleton requires signaling by small GTPases Cdc42 and RhoA Mol Biol Cell, 13 (2002),pp. 902-914
    [25] Bakin, AV, Rinehart, et al. p38 mitogen-activated protein kinase is required for TGF-β-mediated fibroblastic transdifferentiation and cell migration J Cell Sci, 115 (2002),pp. 3193-3206
    [26] Bhowmick, NA Transforming growth factor-b1 mediates epithelial to mesenchymal transdifferentiation through a RhoA-dependent mechanism Mol Biol Cell, 12 (2001),pp. 27-36
    [27] Derynck, R, Zhang, et al. Smad-dependent and Smad-indepen dent pathways in TGF-β family signaling Nature, 425 (2003),pp. 577-584
    [28] Wang, G, Beier, et al. Rac1/Cdc42 and RhoA GTPases antagonistically regulate chondrocyte proliferation, hypertrophy, and apoptosis J Bone Miner Res, 20 (2005),pp. 1022-1031
    [29] Tsukiyama-Kohara, K, Vidal, et al. Tissue distribution, genomic structure, and chromosome mapping of mouse and human eukaryotic initiation factor 4E-binding proteins 1 and 2 Genomics, 38 (1996),pp. 353-363
    [30] Pause, A, Belsham, et al. Insulin-dependent stimulation of protein synthesis by phosphorylation of a regulator of 5′-cap function Nature, 371 (1994),pp. 762-767
    [31] Lin, TA, Kong, et al. PHAS-I as a link between mitogen-activated protein kinase and translation initiation Science, 266 (1994),pp. 653-656
    [32] Clemens, MJ Translational regulation in cell stress and apoptosis. Roles of the eIF4E binding proteins J Cell Mol Med, 5 (2001),pp. 221-239
    [33] Stockwell, RA Chondrocytes J Clin Path, 12 (1978),pp. 7-13
    [34] Henrotin, YE, Bruckner, et al. The role of reactive oxygen species in homeostasis and degradation of cartilage Osteoarthritis Cartilage, 11 (2003),pp. 747-755
    [35] Hitchon, CA, El-Gabalawy, et al. Oxidation in rheumatoid arthritis Arthritis Res Ther, 6 (2004),pp. 265-278
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出版历程
  • 收稿日期:  2007-03-19
  • 录用日期:  2007-03-30
  • 网络出版日期:  2007-08-21
  • 刊出日期:  2007-08-20

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