Functional module analysis reveals differential osteogenic and stemness potentials in human mesenchymal stem cells from bone marrow and Wharton's jelly of umbilical cord.
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Jui-Yu Hsieh | Shing-Jyh Chang | Yang-Hwei Tsuang | Shing-Jyh Chang | Y. Tsuang | Jui-yu Hsieh | Hsei-Wei Wang | Yu-Show Fu | Hsei-Wei Wang | Yu-Show Fu
[1] Chi-Hung Lin,et al. ArrayFusion: a web application for multi-dimensional analysis of CGH, SNP and microarray data , 2006, Bioinform..
[2] Chun-Chieh Huang,et al. Mesenchymal Stem Cells in the Wharton's Jelly of the Human Umbilical Cord , 2004, Stem cells.
[3] A. Barabasi,et al. Network biology: understanding the cell's functional organization , 2004, Nature Reviews Genetics.
[4] M. Simonato,et al. On the Role of Somatostatin in Seizure Control: Clues from the Hippocampus , 2003, Reviews in the neurosciences.
[5] J. Isner,et al. Stromal Cell–Derived Factor-1 Effects on Ex Vivo Expanded Endothelial Progenitor Cell Recruitment for Ischemic Neovascularization , 2003, Circulation.
[6] M. Soleimani,et al. In vitro cardiomyogenic potential of human umbilical vein-derived mesenchymal stem cells. , 2006, Biochemical and biophysical research communications.
[7] Simon P Hoerstrup,et al. Human umbilical cord cells: a new cell source for cardiovascular tissue engineering. , 2002, The Annals of thoracic surgery.
[8] D. Hanahan,et al. The Hallmarks of Cancer , 2000, Cell.
[9] C. Tseng,et al. Disparate Mesenchyme‐Lineage Tendencies in Mesenchymal Stem Cells from Human Bone Marrow and Umbilical Cord Blood , 2006, Stem cells.
[10] M. Ko,et al. Conversion of Human Umbilical Cord Mesenchymal Stem Cells in Wharton's Jelly to Dopaminergic Neurons In Vitro: Potential Therapeutic Application for Parkinsonism , 2006, Stem cells.
[11] A. Ho,et al. The heterogeneity of human mesenchymal stem cell preparations--evidence from simultaneous analysis of proteomes and transcriptomes. , 2006, Experimental hematology.
[12] Hermann Eichler,et al. Comparative Analysis of Mesenchymal Stem Cells from Bone Marrow, Umbilical Cord Blood, or Adipose Tissue , 2006, Stem cells.
[13] M. Ratajczak,et al. Migration of Bone Marrow and Cord Blood Mesenchymal Stem Cells In Vitro Is Regulated by Stromal‐Derived Factor‐1‐CXCR4 and Hepatocyte Growth Factor‐c‐met Axes and Involves Matrix Metalloproteinases , 2006, Stem cells.
[14] S. Karahuseyinoglu,et al. Biology of Stem Cells in Human Umbilical Cord Stroma: In Situ and In Vitro Surveys , 2007, Stem cells.
[15] P. Kaufmann,et al. Stromal differentiation and architecture of the human umbilical cord. , 1997, Placenta.
[16] Pablo Tamayo,et al. Gene set enrichment analysis: A knowledge-based approach for interpreting genome-wide expression profiles , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[17] R. G. Allen,et al. Relationship between donor age and the replicative lifespan of human cells in culture: a reevaluation. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[18] Xing Wei,et al. Endothelial differentiation of Wharton's jelly-derived mesenchymal stem cells in comparison with bone marrow-derived mesenchymal stem cells. , 2009, Experimental hematology.
[19] Kimberly Van Auken,et al. WormBase: a multi-species resource for nematode biology and genomics , 2004, Nucleic Acids Res..
[20] X. Zhou,et al. Embryonic expression and multifunctional actions of the natriuretic peptides and receptors in the developing nervous system. , 2004, Developmental biology.
[21] S. Teoh,et al. Superior Osteogenic Capacity for Bone Tissue Engineering of Fetal Compared with Perinatal and Adult Mesenchymal Stem Cells , 2009, Stem cells.
[22] Josephine C. Adams,et al. The thrombospondin type 1 repeat (TSR) superfamily: Diverse proteins with related roles in neuronal development , 2000, Developmental dynamics : an official publication of the American Association of Anatomists.
[23] J. Glowacki,et al. Age‐related decline in the osteogenic potential of human bone marrow cells cultured in three‐dimensional collagen sponges , 2001, Journal of cellular biochemistry.
[24] O. Lee,et al. Isolation of multipotent mesenchymal stem cells from umbilical cord blood. , 2004, Blood.
[25] J. Jaubert,et al. Three new allelic mouse mutations that cause skeletal overgrowth involve the natriuretic peptide receptor C gene (Npr3). , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[26] Y. Romanov,et al. Searching for Alternative Sources of Postnatal Human Mesenchymal Stem Cells: Candidate MSC‐Like Cells from Umbilical Cord , 2003, Stem cells.
[27] Saul Tzipori,et al. Biology of , 2021, Evolutionary Biology of Carabus Ground Beetles.
[28] Chi-Hung Lin,et al. Modulation of macrophage differentiation and activation by decoy receptor 3 , 2004, Journal of leukocyte biology.
[29] M. Weiss,et al. Concise Review: Wharton's Jelly‐Derived Cells Are a Primitive Stromal Cell Population , 2008, Stem cells.
[30] R. Yan,et al. Reticulon family members modulate BACE1 activity and amyloid-β peptide generation , 2004, Nature Medicine.
[31] Simon P Hoerstrup,et al. Human umbilical cord cells for cardiovascular tissue engineering: a comparative study. , 2004, European journal of cardio-thoracic surgery : official journal of the European Association for Cardio-thoracic Surgery.
[32] Blagoy Blagoev,et al. Mechanism of Divergent Growth Factor Effects in Mesenchymal Stem Cell Differentiation , 2005, Science.
[33] M. Kern,et al. The Prx1 Homeobox Gene is Critical for Molar Tooth Morphogenesis , 2006, Journal of dental research.
[34] F. Dammacco,et al. Umbilical cord mesenchymal stem cells: role of regulatory genes in their differentiation to osteoblasts. , 2009, Stem cells and development.
[35] Y. Soong,et al. Functional Network Analysis of the Transcriptomes of Mesenchymal Stem Cells Derived from Amniotic Fluid, Amniotic Membrane, Cord Blood, and Bone Marrow , 2007, Stem cells.
[36] M. Ko,et al. Transplantation of Human Umbilical Mesenchymal Stem Cells from Wharton's Jelly after Complete Transection of the Rat Spinal Cord , 2008, PloS one.
[37] Y. Kato,et al. Comprehensive analysis of chemotactic factors for bone marrow mesenchymal stem cells. , 2007, Stem cells and development.
[38] W. Ansorge,et al. Comparative characteristics of mesenchymal stem cells from human bone marrow, adipose tissue, and umbilical cord blood. , 2005, Experimental hematology.
[39] S. Henderson,et al. Kaposi sarcoma herpesvirus–induced cellular reprogramming contributes to the lymphatic endothelial gene expression in Kaposi sarcoma , 2004, Nature Genetics.
[40] H. Nakauchi,et al. Comparison of mesenchymal stem cells derived from arterial, venous, and Wharton’s jelly explants of human umbilical cord , 2009, International journal of hematology.
[41] M. Zago,et al. Comparison of Gene Expression of Umbilical Cord Vein and Bone Marrow–Derived Mesenchymal Stem Cells , 2004, Stem cells.
[42] M. Weiss,et al. Matrix Cells from Wharton's Jelly Form Neurons and Glia , 2003, Stem cells.
[43] Yonghong Xiao,et al. FoxOs Are Lineage-Restricted Redundant Tumor Suppressors and Regulate Endothelial Cell Homeostasis , 2007, Cell.
[44] M. Weiss,et al. A comparison of human bone marrow-derived mesenchymal stem cells and human umbilical cord-derived mesenchymal stromal cells for cartilage tissue engineering. , 2009, Tissue engineering. Part A.
[45] Jukka Partanen,et al. Functional Network Reconstruction Reveals Somatic Stemness Genetic Maps and Dedifferentiation‐Like Transcriptome Reprogramming Induced by GATA2 , 2008, Stem cells.
[46] Gene Ontology Consortium. The Gene Ontology (GO) database and informatics resource , 2003 .
[47] Xing Wei,et al. Differentiation of Wharton's jelly primitive stromal cells into insulin-producing cells in comparison with bone marrow mesenchymal stem cells. , 2009, Tissue engineering. Part A.
[48] Dolores Baksh,et al. Human Umbilical Cord Perivascular (HUCPV) Cells: A Source of Mesenchymal Progenitors , 2005, Stem cells.
[49] R. Serra,et al. C-type natriuretic peptide regulates endochondral bone growth through p38 MAP kinase-dependent and – independent pathways , 2007, BMC Developmental Biology.
[50] Michael B. Yaffe,et al. Data-driven modelling of signal-transduction networks , 2006, Nature Reviews Molecular Cell Biology.
[51] Brad T. Sherman,et al. DAVID: Database for Annotation, Visualization, and Integrated Discovery , 2003, Genome Biology.
[52] M. Weiss,et al. Human Umbilical Cord Matrix Stem Cells: Preliminary Characterization and Effect of Transplantation in a Rodent Model of Parkinson's Disease , 2006, Stem cells.
[53] Paul S Mischel,et al. Analysis of the phosphatidylinositol 3'-kinase signaling pathway in glioblastoma patients in vivo. , 2003, Cancer research.
[54] R. Tuan,et al. Comparison of Proliferative and Multilineage Differentiation Potential of Human Mesenchymal Stem Cells Derived from Umbilical Cord and Bone Marrow , 2007, Stem cells.
[55] Usha Nekanti,et al. Long-term expansion and pluripotent marker array analysis of Wharton's jelly-derived mesenchymal stem cells. , 2010, Stem cells and development.
[56] R. Tuan,et al. Identification and Functional Analysis of Candidate Genes Regulating Mesenchymal Stem Cell Self‐Renewal and Multipotency , 2006, Stem cells.
[57] J. Martín,et al. The paired-like homeo box gene MHox is required for early events of skeletogenesis in multiple lineages. , 1995, Genes & development.
[58] Ann Marie Craig,et al. Neurexins Induce Differentiation of GABA and Glutamate Postsynaptic Specializations via Neuroligins , 2004, Cell.