Gene expression profile in human induced pluripotent stem cells: Chondrogenic differentiation in vitro, part A
暂无分享,去创建一个
[1] W. Suchorska,et al. Gene expression profile in human induced pluripotent stem cells: Chondrogenic differentiation in vitro, part B , 2017, Molecular medicine reports.
[2] Suwei Wang,et al. Transplantation of ovarian granulosa-like cells derived from human induced pluripotent stem cells for the treatment of murine premature ovarian failure , 2016, Molecular medicine reports.
[3] W. Suchorska,et al. Genetic stability of pluripotent stem cells during anti-cancer therapies , 2016, Experimental and therapeutic medicine.
[4] M. Tomizawa,et al. Involvement of the Wnt signaling pathway in feeder‑free culture of human induced pluripotent stem cells. , 2015, Molecular medicine reports.
[5] W. Suchorska,et al. Bioimaging: An Useful Tool to Monitor Differentiation of Human Embryonic Stem Cells into Chondrocytes , 2015, Annals of Biomedical Engineering.
[6] Zhenhua Li,et al. Effects of cell-cell contact and oxygen tension on chondrogenic differentiation of stem cells. , 2015, Biomaterials.
[7] Dahai Liu,et al. Stem Cell Reports , 2022 .
[8] V. Lefebvre,et al. The transcription factors SOX9 and SOX5/SOX6 cooperate genome-wide through super-enhancers to drive chondrogenesis , 2015, Nucleic acids research.
[9] B. Arumugam,et al. Runx2: Structure, function, and phosphorylation in osteoblast differentiation. , 2015, International journal of biological macromolecules.
[10] Hui-ling Wu,et al. microRNA-375 inhibits osteogenic differentiation by targeting runt-related transcription factor 2. , 2015, Experimental and therapeutic medicine.
[11] Hao Xu,et al. Isolation, identification and differentiation of human embryonic cartilage stem cells , 2015, Cell biology international.
[12] Jian Sun,et al. Role of bone morphogenetic protein-2 in osteogenic differentiation of mesenchymal stem cells , 2015, Molecular medicine reports.
[13] Sakae Tanaka,et al. Hyaline cartilage formation and tumorigenesis of implanted tissues derived from human induced pluripotent stem cells. , 2015, Biomedical research.
[14] W. Maloney,et al. Early induction of a prechondrogenic population allows efficient generation of stable chondrocytes from human induced pluripotent stem cells , 2015, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[15] Q. Zuo,et al. Effects of mesenchymal stem cells on interleukin-1β-treated chondrocytes and cartilage in a rat osteoarthritic model , 2015, Molecular medicine reports.
[16] R. Luginbuehl,et al. Transforming Growth Factor Beta Signaling Is Essential for the Autonomous Formation of Cartilage-Like Tissue by Expanded Chondrocytes , 2015, PloS one.
[17] Jiakuan Ye,et al. Reprogramming rat embryonic fibroblasts into induced pluripotent stem cells using transposon vectors and their chondrogenic differentiation in vitro. , 2015, Molecular medicine reports.
[18] Jiang-hong Zheng,et al. Suppressive effects of induced pluripotent stem cell-conditioned medium on in vitro hypertrophic scarring fibroblast activation , 2014, Molecular medicine reports.
[19] W. Suchorska,et al. The role of growth factors in stem cell-directed chondrogenesis: a real hope for damaged cartilage regeneration , 2015, International Orthopaedics.
[20] Fan Yang,et al. Improved Approach for Chondrogenic Differentiation of Human Induced Pluripotent Stem Cells , 2015, Stem Cell Reviews and Reports.
[21] N. Jing,et al. Inhibition of Transforming Growth Factor β (TGF-β) Signaling can Substitute for Oct4 Protein in Reprogramming and Maintain Pluripotency* , 2014, The Journal of Biological Chemistry.
[22] D. Schlessinger,et al. SOX9 accelerates ESC differentiation to three germ layer lineages by repressing SOX2 expression through P21 (WAF1/CIP1) , 2014, Development.
[23] W. Barczak,et al. Universal Real-Time PCR-Based Assay for Lentiviral Titration , 2014, Molecular Biotechnology.
[24] E. Wachtel,et al. Structure, function, aging and turnover of aggrecan in the intervertebral disc. , 2014, Biochimica et biophysica acta.
[25] W. Suchorska,et al. Directed differentiation of induced pluripotent stem cells into chondrogenic lineages for articular cartilage treatment , 2014, Journal of tissue engineering.
[26] Mark Isalan,et al. β-catenin fluctuates in mouse ESCs and is essential for Nanog-mediated reprogramming of somatic cells to pluripotency. , 2014, Cell reports.
[27] Q. Tan,et al. The application of autologous platelet‑rich plasma gel in cartilage regeneration. , 2014, Molecular medicine reports.
[28] W. Suchorska,et al. Induced Pluripotent and Mesenchymal Stem Cells as a Promising Tool for Articular Cartilage Regeneration , 2014 .
[29] W. Toh,et al. Derivation of Chondrogenic Cells from Human Embryonic Stem Cells for Cartilage Tissue Engineering. , 2014, Methods in molecular biology.
[30] H. Kwon,et al. The role of Nkx3.2 in chondrogenesis , 2014, Frontiers in Biology.
[31] Di Chen,et al. TGF-β signaling and the development of osteoarthritis , 2014, Bone Research.
[32] R. McKay,et al. Directed Differentiation of Human Induced Pluripotent Stem Cells Toward Bone and Cartilage: In Vitro Versus In Vivo Assays , 2014, Stem cells translational medicine.
[33] E. Patsouris,et al. Insulin-like growth factors in embryonic and fetal growth and skeletal development (Review) , 2014, Molecular medicine reports.
[34] K. Lyons,et al. TGFβ signaling in cartilage development and maintenance. , 2014, Birth defects research. Part C, Embryo today : reviews.
[35] J. Blake,et al. Pax genes: regulators of lineage specification and progenitor cell maintenance , 2014, Development.
[36] Xi Liang,et al. Sox9 Potentiates BMP2-Induced Chondrogenic Differentiation and Inhibits BMP2-Induced Osteogenic Differentiation , 2014, PloS one.
[37] D. Eyre,et al. Molecular properties and fibril ultrastructure of types II and XI collagens in cartilage of mice expressing exclusively the α1(IIA) collagen isoform. , 2014, Matrix biology : journal of the International Society for Matrix Biology.
[38] R. Quintanilla,et al. CD44 Is a Negative Cell Surface Marker for Pluripotent Stem Cell Identification during Human Fibroblast Reprogramming , 2014, PloS one.
[39] D. Schlessinger,et al. SOX 9 accelerates ESC differentiation to three germ layer lineages by repressing SOX 2 expression through P 21 ( WAF 1 / CIP 1 ) , 2014 .
[40] C. Rosen,et al. IGF-1 regulation of key signaling pathways in bone. , 2013, BoneKEy reports.
[41] J. Hou,et al. The Ihh signal is essential for regulating proliferation and hypertrophy of cultured chicken chondrocytes. , 2013, Comparative biochemistry and physiology. Part B, Biochemistry & molecular biology.
[42] M. Ansar,et al. Comparison between Chondrogenic Markers of Differentiated Chondrocytes from Adipose Derived Stem Cells and Articular Chondrocytes In Vitro , 2013, Iranian journal of basic medical sciences.
[43] Emma Mooney,et al. Growth differentiation factor-5 enhances in vitro mesenchymal stromal cell chondrogenesis and hypertrophy. , 2013, Stem cells and development.
[44] N. Ishiguro,et al. SURFACE MARKERS AND GENE EXPRESSION TO CHARACTERIZE THE DIFFERENTIATION OF MONOLAYER EXPANDED HUMAN ARTICULAR CHONDROCYTES , 2013, Nagoya journal of medical science.
[45] Han-Sung Jung,et al. Ihh and Runx2/Runx3 Signaling Interact to Coordinate Early Chondrogenesis: A Mouse Model , 2013, PloS one.
[46] J. Kramer,et al. Minor cartilage collagens type IX and XI are expressed during embryonic stem cell-derived in vitro chondrogenesis. , 2013, Annals of anatomy = Anatomischer Anzeiger : official organ of the Anatomische Gesellschaft.
[47] C. Niyibizi,et al. Cells derived from murine induced pluripotent stem cells (iPSC) by treatment with members of TGF-beta family give rise to osteoblasts differentiation and form bone in vivo , 2012, BMC Cell Biology.
[48] Yukun Zhang,et al. Growth differentiation factor 5 modulation of chondrogenesis of self‐assembled constructs involves gap junction‐mediated intercellular communication , 2012, Development, growth & differentiation.
[49] P. Gadue,et al. Generation of human induced pluripotent stem cells from peripheral blood using the STEMCCA lentiviral vector. , 2012, Journal of visualized experiments : JoVE.
[50] T. Alliston,et al. Chondrocyte-intrinsic Smad3 represses Runx2-inducible matrix metalloproteinase 13 expression to maintain articular cartilage and prevent osteoarthritis. , 2012, Arthritis and rheumatism.
[51] Huifang Zhou,et al. Conditioned Medium from Bone Marrow Mesenchymal Stem Cells Transiently Retards Osteoblast Differentiation by Downregulating Runx2 , 2012, Cells Tissues Organs.
[52] J. Schwarzbauer,et al. Fibronectin and stem cell differentiation – lessons from chondrogenesis , 2012, Journal of Cell Science.
[53] Boyoung Lee,et al. Indian Hedgehog signalling triggers Nkx3.2 protein degradation during chondrocyte maturation. , 2012, The Biochemical journal.
[54] H. Yoshikawa,et al. Nkx3.2 Promotes Primary Chondrogenic Differentiation by Upregulating Col2a1 Transcription , 2012, PloS one.
[55] R. Tuan,et al. Cartilage oligomeric matrix protein enhances matrix assembly during chondrogenesis of human mesenchymal stem cells , 2012, Journal of cellular biochemistry.
[56] Russell J. Taylor,et al. Wnt/β-catenin signaling promotes differentiation, not self-renewal, of human embryonic stem cells and is repressed by Oct4 , 2012, Proceedings of the National Academy of Sciences.
[57] Fei Huang,et al. Regulation of TGF-β receptor activity , 2012, Cell & Bioscience.
[58] Fanxin Long,et al. Indian hedgehog requires additional effectors besides Runx2 to induce osteoblast differentiation. , 2012, Developmental biology.
[59] Di Chen,et al. Inhibition of β‐catenin signaling in chondrocytes induces delayed fracture healing in mice , 2012, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[60] C. Deng,et al. TGF-β and BMP Signaling in Osteoblast Differentiation and Bone Formation , 2012, International journal of biological sciences.
[61] E. Dashinimaev,et al. Molecular Mechanisms of Induced Pluripotency , 2012, Acta naturae.
[62] R. O’Keefe,et al. BMP2, but not BMP4, is crucial for chondrocyte proliferation and maturation during endochondral bone development , 2011, Journal of Cell Science.
[63] T. Clemens,et al. IGF‐1R signaling in chondrocytes modulates growth plate development by interacting with the PTHrP/Ihh pathway , 2011, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[64] H. Schöler,et al. Reprogramming fibroblasts into induced pluripotent stem cells with Bmi1 , 2011, Cell Research.
[65] J. Bruun,et al. Comparative Analyses of the Secretome from Dedifferentiated and Redifferentiated Adult Articular Chondrocytes , 2011, Cartilage.
[66] T. Komori,et al. Inhibition of Notch1 signaling by Runx2 during osteoblast differentiation , 2011, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[67] B. Keller,et al. Interaction of TGFβ and BMP Signaling Pathways during Chondrogenesis , 2011, PloS one.
[68] X. Long,et al. The expressions of IGF-1, BMP-2 and TGF-β1 in cartilage of condylar hyperplasia. , 2011, Journal of oral rehabilitation.
[69] Hongmei Zhou,et al. Downregulation of TGF-beta receptor types II and III in oral squamous cell carcinoma and oral carcinoma-associated fibroblasts , 2011, BMC Cancer.
[70] S. Kimber,et al. Directed differentiation of human embryonic stem cells toward chondrocytes , 2010, Nature Biotechnology.
[71] Stephen J. Bruce,et al. Inactivation of Patched1 in the Mouse Limb Has Novel Inhibitory Effects on the Chondrogenic Program* , 2010, The Journal of Biological Chemistry.
[72] Liliana F. Mellor,et al. Induction of CD44 cleavage in articular chondrocytes. , 2010, Arthritis and rheumatism.
[73] X. Tan,et al. Smad3 Prevents β-Catenin Degradation and Facilitates β-Catenin Nuclear Translocation in Chondrocytes* , 2010, The Journal of Biological Chemistry.
[74] T. Inai,et al. Growth Differentiation Factor 5 (GDF-5) Induces Matrix Metalloproteinase 2 (MMP-2) Expression in Periodontal Ligament Cells and Modulates MMP-2 and MMP-13 Activity in Osteoblasts: , 2010 .
[75] B. Min,et al. Changes in surface markers of human mesenchymal stem cells during the chondrogenic differentiation and dedifferentiation processes in vitro. , 2009, Arthritis and rheumatism.
[76] Tsai-Jung Wu,et al. Pluripotency of mouse spermatogonial stem cells maintained by IGF‐1‐dependent pathway , 2009, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[77] D. Ma,et al. BMP-2 enhances TGF-beta3-mediated chondrogenic differentiation of human bone marrow multipotent mesenchymal stromal cells in alginate bead culture. , 2009, Tissue engineering. Part A.
[78] A. Reddi,et al. Cartilage Oligomeric Matrix Protein (COMP): A Biomarker of Arthritis , 2009, Biomarker insights.
[79] K. Miyazono,et al. Roles of TGF-β family signaling in stem cell renewal and differentiation , 2009, Cell Research.
[80] Toshihisa Komori,et al. Regulation of bone development and extracellular matrix protein genes by RUNX2 , 2009, Cell and Tissue Research.
[81] Mario Jolicoeur,et al. Chondrocyte Aggregation in Suspension Culture Is GFOGER-GPP- and β1 Integrin-dependent* , 2008, Journal of Biological Chemistry.
[82] H. Aburatani,et al. BMP2 Regulates Osterix through Msx2 and Runx2 during Osteoblast Differentiation* , 2008, Journal of Biological Chemistry.
[83] R. Tuan,et al. Mesenchymal stem cells in arthritic diseases , 2008, Arthritis research & therapy.
[84] V. Lefebvre,et al. L-Sox5 and Sox6 Drive Expression of the Aggrecan Gene in Cartilage by Securing Binding of Sox9 to a Far-Upstream Enhancer , 2008, Molecular and Cellular Biology.
[85] S. Mackem,et al. Indian hedgehog signals independently of PTHrP to promote chondrocyte hypertrophy , 2008, Development.
[86] E. Puré,et al. Fibroblast migration is mediated by CD44-dependent TGFβ activation , 2008, Journal of Cell Science.
[87] Gerhard Christofori,et al. Neural cell adhesion molecule regulates the cellular response to fibroblast growth factor , 2007, Journal of Cell Science.
[88] K. Midwood,et al. Regulation of fibroblast migration by tenascin-C. , 2007, Biochemical Society transactions.
[89] M. Katoh,et al. Hedgehog signaling pathway and gastrointestinal stem cell signaling network (review). , 2006, International journal of molecular medicine.
[90] P. Roughley,et al. Limitations of using aggrecan and type X collagen as markers of chondrogenesis in mesenchymal stem cell differentiation , 2006, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[91] C. Hartmann,et al. Wnt9a signaling is required for joint integrity and regulation of Ihh during chondrogenesis , 2006, Development.
[92] E. Schwarz,et al. Transforming Growth Factor-β Stimulates Cyclin D1 Expression through Activation of β-Catenin Signaling in Chondrocytes* , 2006, Journal of Biological Chemistry.
[93] W. B. van den Berg,et al. TGF β-induced cartilage repair is maintained but fibrosis is blocked in the presence of Smad7 , 2006, Arthritis research & therapy.
[94] S. Seki,et al. Expression of NCAM in activated portal fibroblasts during regeneration of the rat liver after partial hepatectomy. , 2006, Archives of histology and cytology.
[95] E. Schwarz,et al. Transforming growth factor-beta stimulates cyclin D1 expression through activation of beta-catenin signaling in chondrocytes. , 2006, The Journal of biological chemistry.
[96] R. Tuan,et al. N‐cadherin mediated distribution of β‐catenin alters MAP kinase and BMP‐2 signaling on chondrogenesis‐related gene expression , 2005, Journal of cellular biochemistry.
[97] Takayuki Furumatsu,et al. Smad3 Induces Chondrogenesis through the Activation of SOX9 via CREB-binding Protein/p300 Recruitment*[boxs] , 2005, Journal of Biological Chemistry.
[98] K. Hörmann,et al. Expression of collagen and fiber-associated proteins in human septal cartilage during in vitro dedifferentiation. , 2004, International journal of molecular medicine.
[99] T. Fujita,et al. Runx2 induces osteoblast and chondrocyte differentiation and enhances their migration by coupling with PI3K-Akt signaling , 2004, The Journal of cell biology.
[100] P. McCrea,et al. Interactions between Sox9 and β-catenin control chondrocyte differentiation , 2004 .
[101] P. McCrea,et al. Interactions between Sox9 and beta-catenin control chondrocyte differentiation. , 2004, Genes & development.
[102] Ying E. Zhang,et al. Smad-dependent and Smad-independent pathways in TGF-β family signalling , 2003, Nature.
[103] R. Balling,et al. Pax1 and Pax9 activate Bapx1 to induce chondrogenic differentiation in the sclerotome , 2003, Development.
[104] J. Block,et al. Tenascin‐C expression and distribution in cultured human chondrocytes and chondrosarcoma cells , 2002, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[105] A. Csoka,et al. Hyaluronidases and CD44 undergo differential modulation during chondrogenesis. , 2002, Biochemical and biophysical research communications.
[106] D. Ornitz,et al. Coordination of chondrogenesis and osteogenesis by fibroblast growth factor 18. , 2002, Genes & development.
[107] A. Yee,et al. Structure and function of aggrecan , 2002, Cell Research.
[108] Thomas D. Schmittgen,et al. Analysis of relative gene expression data using real-time quantitative PCR and the 2(-Delta Delta C(T)) Method. , 2001, Methods.
[109] R. Chiquet‐Ehrismann,et al. Tenascin‐C induced stimulation of chondrogenesis is dependent on the presence of the C‐terminal fibrinogen‐like globular domain , 2000, FEBS letters.
[110] E. Vuorio,et al. Expression of type II and IX collagen isoforms during normal and pathological cartilage and eye development , 1998, Histochemistry and Cell Biology.
[111] B. Hall,et al. Differential expression of neural cell adhesion molecule (NCAM) during osteogenesis and secondary chondrogenesis in the embryonic chick. , 1995, The International journal of developmental biology.