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Current concepts in stem cell therapy for articular cartilage repair

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Pages 541-548 | Published online: 16 Jan 2013

Bibliography

  • Valdes AM, Hart DJ, Jones KA, Association study of candidate genes for the prevalence and progression of knee osteoarthritis. Arthritis Rheum 2004;50(8):2497-507
  • Valdes AM, Van Oene M, Hart DJ, Reproducible genetic associations between candidate genes and clinical knee osteoarthritis in men and women. Arthritis Rheum 2006;54(2):533-9
  • Richette P, Corvol M, Bardin T. Estrogens, cartilage, and osteoarthritis. Joint Bone Spine 2003;70(4):257-62
  • Malda J, Kreijveld E, Temenoff JS, Expansion of human nasal chondrocytes on macroporous microcarriers enhances redifferentiation. Biomaterials 2003;24(28):5153-61
  • Redman SN, Oldfield SF, Archer CW. Current strategies for articular cartilage repair. Eur Cell Mater 2005;9:23-32; discussion 23-32
  • Koelling S, Kruegel J, Irmer M, Migratory chondrogenic progenitor cells from repair tissue during the later stages of human osteoarthritis. Cell Stem Cell 2009;4(4):324-35
  • Evans MJ, Kaufman MH. Establishment in culture of pluripotential cells from mouse embryos. Nature 1981;292(5819):154-6
  • Martin GR. Isolation of a pluripotent cell line from early mouse embryos cultured in medium conditioned by teratocarcinoma stem cells. Proc Natl Acad Sci USA 1981;78(12):7634-8
  • Thomson JA, Itskovitz-Eldor J, Shapiro SS, Embryonic stem cell lines derived from human blastocysts. Science 1998;282(5391):1145-7
  • Gardner RL, Beddington RS. Multi-lineage 'stem' cells in the mammalian embryo. J Cell Sci Suppl 1988;10:11-27
  • Toh WS, Lee EH, Cao T. Potential of human embryonic stem cells in cartilage tissue engineering and regenerative medicine. Stem Cell Rev 2011;7(3):544-59
  • Heng BC, Cao T, Lee EH. Directing stem cell differentiation into the chondrogenic lineage in vitro. Stem Cells 2004;22(7):1152-67
  • Kawaguchi J, Mee PJ, Smith AG. Osteogenic and chondrogenic differentiation of embryonic stem cells in response to specific growth factors. Bone 2005;36(5):758-69
  • zur Nieden NI, Kempka G, Rancourt DE, Ahr HJ. Induction of chondro-, osteo- and adipogenesis in embryonic stem cells by bone morphogenetic protein-2: effect of cofactors on differentiating lineages. BMC Dev Biol 2005;5:1
  • Yamashita A, Krawetz R, Rancourt DE. Loss of discordant cells during micro-mass differentiation of embryonic stem cells into the chondrocyte lineage. Cell Death Differ 2009;16(2):278-86
  • Toh WS, Yang Z, Liu H, Effects of culture conditions and bone morphogenetic protein 2 on extent of chondrogenesis from human embryonic stem cells. Stem Cells 2007;25(4):950-60
  • Nakagawa T, Lee SY, Reddi AH. Induction of chondrogenesis from human embryonic stem cells without embryoid body formation by bone morphogenetic protein 7 and transforming growth factor beta1. Arthritis Rheum 2009;60(12):3686-92
  • Yang Z, Sui L, Toh WS, Stage-dependent effect of TGF-beta1 on chondrogenic differentiation of human embryonic stem cells. Stem Cells Dev 2009;18(6):929-40
  • Vats A, Bielby RC, Tolley N, Chondrogenic differentiation of human embryonic stem cells: the effect of the micro-environment. Tissue Eng 2006;12(6):1687-97
  • Hwang NS, Varghese S, Elisseeff J. Derivation of chondrogenically-committed cells from human embryonic cells for cartilage tissue regeneration. PLoS ONE 2008;3(6):e2498
  • Bai HY, Chen GA, Mao GH, Three step derivation of cartilage like tissue from human embryonic stem cells by 2D-3D sequential culture in vitro and further implantation in vivo on alginate/PLGA scaffolds. J Biomed Mater Res A 2010;94(2):539-46
  • Hwang NS, Varghese S, Lee HJ, In vivo commitment and functional tissue regeneration using human embryonic stem cell-derived mesenchymal cells. Proc Natl Acad Sci USA 2008;105(52):20641-6
  • Sarugaser R, Lickorish D, Baksh D, Human umbilical cord perivascular (HUCPV) cells: a source of mesenchymal progenitors. Stem Cells 2005;23(2):220-9
  • Wang HS, Hung SC, Peng ST, Mesenchymal stem cells in the Wharton's jelly of the human umbilical cord. Stem Cells 2004;22(7):1330-7
  • Erices A, Conget P, Minguell JJ. Mesenchymal progenitor cells in human umbilical cord blood. Br J Haematol 2000;109(1):235-42
  • Rosada C, Justesen J, Melsvik D, The human umbilical cord blood: a potential source for osteoblast progenitor cells. Calcif Tissue Int 2003;72(2):135-42
  • Gang EJ, Hong SH, Jeong JA, In vitro mesengenic potential of human umbilical cord blood-derived mesenchymal stem cells. Biochem Biophys Res Commun 2004;321(1):102-8
  • Kogler G, Sensken S, Airey JA, A new human somatic stem cell from placental cord blood with intrinsic pluripotent differentiation potential. J Exp Med 2004;200(2):123-35
  • Lee OK, Kuo TK, Chen WM, Isolation of multipotent mesenchymal stem cells from umbilical cord blood. Blood 2004;103(5):1669-75
  • Tondreau T, Meuleman N, Delforge A, Mesenchymal stem cells derived from CD133-positive cells in mobilized peripheral blood and cord blood: proliferation, Oct4 expression, and plasticity. Stem Cells 2005;23(8):1105-12
  • Romanov YA, Svintsitskaya VA, Smirnov VN. Searching for alternative sources of postnatal human mesenchymal stem cells: candidate MSC-like cells from umbilical cord. Stem Cells 2003;21(1):105-10
  • Kim JW, Kim SY, Park SY, Mesenchymal progenitor cells in the human umbilical cord. Ann Hematol 2004;83(12):733-8
  • De Coppi P, Bartsch G Jr, Siddiqui MM, Isolation of amniotic stem cell lines with potential for therapy. Nat Biotechnol 2007;25(1):100-6
  • de Mara CS, Duarte AS, Sartori-Cintra AR, Chondrogenesis from umbilical cord blood cells stimulated with BMP-2 and BMP-6. Rheumatol Int 2012
  • Fong CY, Subramanian A, Gauthaman K, Human umbilical cord Wharton's jelly stem cells undergo enhanced chondrogenic differentiation when grown on nanofibrous scaffolds and in a sequential two-stage culture medium environment. Stem Cell Rev 2012;8(1):195-209
  • Till JE, Mc CE. A direct measurement of the radiation sensitivity of normal mouse bone marrow cells. Radiat Res 1961;14:213-22
  • Wakitani S, Imoto K, Yamamoto T, Human autologous culture expanded bone marrow mesenchymal cell transplantation for repair of cartilage defects in osteoarthritic knees. Osteoarthritis Cartilage 2002;10(3):199-206
  • Kuznetsov SA, Krebsbach PH, Satomura K, Single-colony derived strains of human marrow stromal fibroblasts form bone after transplantation in vivo. J Bone Miner Res 1997;12(9):1335-47
  • Prockop DJ. Marrow stromal cells as stem cells for nonhematopoietic tissues. Science 1997;276(5309):71-4
  • Pereira RF, Halford KW, O'Hara MD, Cultured adherent cells from marrow can serve as long-lasting precursor cells for bone, cartilage, and lung in irradiated mice. Proc Natl Acad Sci USA 1995;92(11):4857-61
  • Caplan AI. Mesenchymal stem cells. J Orthop Res 1991;9(5):641-50
  • Friedenstein AJ. Precursor cells of mechanocytes. Int Rev Cytol 1976;47:327-59
  • Owen M, Friedenstein AJ. Stromal stem cells: marrow-derived osteogenic precursors. Ciba Found Symp 1988;136:42-60
  • Friedenstein AJ, Chailakhyan RK, Gerasimov UV. Bone marrow osteogenic stem cells: in vitro cultivation and transplantation in diffusion chambers. Cell Tissue Kinet 1987;20(3):263-72
  • Ashton BA, Allen TD, Howlett CR, Formation of bone and cartilage by marrow stromal cells in diffusion chambers in vivo. Clin Orthop Relat Res 1980;151):294-307
  • Bab I, Howlett CR, Ashton BA, Owen ME. Ultrastructure of bone and cartilage formed in vivo in diffusion chambers. Clin Orthop Relat Res 1984;187):243-54
  • Haynesworth SE, Goshima J, Goldberg VM, Caplan AI. Characterization of cells with osteogenic potential from human marrow. Bone 1992;13(1):81-8
  • Pittenger MF, Mackay AM, Beck SC, Multilineage potential of adult human mesenchymal stem cells. Science 1999;284(5411):143-7
  • Punwar S, Khan WS. Mesenchymal stem cells and articular cartilage repair: clinical studies and future direction. Open Orthop J 2011;5(Suppl 2):296-301
  • Estes BT, Diekman BO, Gimble JM, Guilak F. Isolation of adipose-derived stem cells and their induction to a chondrogenic phenotype. Nat Protoc 2010;5(7):1294-311
  • Suzuki S, Muneta T, Tsuji K, Properties and usefulness of aggregates of synovial mesenchymal stem cells as a source for cartilage regeneration. Arthritis Res Ther 2012;14(3):R136
  • Sekiya I, Ojima M, Suzuki S, Human mesenchymal stem cells in synovial fluid increase in the knee with degenerated cartilage and osteoarthritis. J Orthop Res 2012;30(6):943-9
  • Johnson K, Zhu S, Tremblay MS, A stem cell-based approach to cartilage repair. Science 2012;336(6082):717-21
  • Schofield R. The relationship between the spleen colony-forming cell and the haemopoietic stem cell. Blood Cells 1978;4(1-2):7-25
  • Ohlstein B, Kai T, Decotto E, Spradling A. The stem cell niche: theme and variations. Curr Opin Cell Biol 2004;16(6):693-9
  • English K, Mahon BP. Allogeneic mesenchymal stem cells: agents of immune modulation. J Cell Biochem 2011;112(8):1963-8
  • Sato M, Uchida K, Nakajima H, Direct transplantation of mesenchymal stem cells into the knee joints of Hartley strain guinea pigs with spontaneous osteoarthritis. Arthritis Res Ther 2012;14(1):R31
  • Drukker M, Benvenisty N. The immunogenicity of human embryonic stem-derived cells. Trends Biotechnol 2004;22(3):136-41
  • Jobanputra P, Corrigall V, Kingsley G, Panayi G. Cellular responses to human chondrocytes: absence of allogeneic responses in the presence of HLA-DR and ICAM-1. Clin Exp Immunol 1992;90(2):336-44
  • Swijnenburg RJ, Tanaka M, Vogel H, Embryonic stem cell immunogenicity increases upon differentiation after transplantation into ischemic myocardium. Circulation 2005;112(9 Suppl):I166-72
  • Lui KO, Waldmann H, Fairchild PJ. Embryonic stem cells: overcoming the immunological barriers to cell replacement therapy. Curr Stem Cell Res Ther 2009;4(1):70-80
  • Amabile G, Meissner A. Induced pluripotent stem cells: current progress and potential for regenerative medicine. Trends Mol Med 2009;15(2):59-68
  • Wu SM, Hochedlinger K. Harnessing the potential of induced pluripotent stem cells for regenerative medicine. Nat Cell Biol 2011;13(5):497-505
  • Sterneckert J, Hoing S, Scholer HR. Concise review: oct4 and more: the reprogramming expressway. Stem Cells 2012;30(1):15-21
  • Takahashi K, Yamanaka S. Induction of pluripotent stem cells from mouse embryonic and adult fibroblast cultures by defined factors. Cell 2006;126(4):663-76
  • Kim MJ, Son MJ, Son MY, Generation of human induced pluripotent stem cells from osteoarthritis patient-derived synovial cells. Arthritis Rheum 2011;63(10):3010-21
  • Hiramatsu K, Sasagawa S, Outani H, Generation of hyaline cartilaginous tissue from mouse adult dermal fibroblast culture by defined factors. J Clin Invest 2011;121(2):640-57
  • Kim K, Doi A, Wen B, Epigenetic memory in induced pluripotent stem cells. Nature 2010;467(7313):285-90
  • Hacein-Bey-Abina S, Von Kalle C, Schmidt M, LMO2-associated clonal T cell proliferation in two patients after gene therapy for SCID-X1. Science 2003;302(5644):415-19
  • Aoi T, Yae K, Nakagawa M, Generation of pluripotent stem cells from adult mouse liver and stomach cells. Science 2008;321(5889):699-702
  • Zhao T, Zhang ZN, Rong Z, Xu Y. Immunogenicity of induced pluripotent stem cells. Nature 2011 Jun 9;474(7350):212-15
  • Okita K, Matsumura Y, Sato Y, A more efficient method to generate integration-free human iPS cells. Nat Methods 2011;8(5):409-12
  • Fusaki N, Ban H, Nishiyama A, Efficient induction of transgene-free human pluripotent stem cells using a vector based on Sendai virus, an RNA virus that does not integrate into the host genome. Proc Jpn Acad Ser B Phys Biol Sci 2009;85(8):348-62
  • Herberts CA, Kwa MS, Hermsen HP. Risk factors in the development of stem cell therapy. J Transl Med 2011;9:29
  • Koelling S, Miosge N. Sex differences of chondrogenic progenitor cells in late stages of osteoarthritis. Arthritis Rheum 2010;62(4):1077-87
  • Tielens S, Wymeersch F, Declercq H, Cornelissen M. Effect of 17beta-estradiol on the in vitro differentiation of murine embryonic stem cells into the osteogenic lineage. In Vitro Cell Dev Biol Anim 2008;44(8-9):368-78
  • Jung EM, Choi KC, Yu FH, Jeung EB. Effects of 17beta-estradiol and xenoestrogens on mouse embryonic stem cells. Toxicol In Vitro 2010;24(6):1538-45
  • Lee MN, Lee SH, Lee MY, Effect of dihydrotestosterone on mouse embryonic stem cells exposed to H2O2-induced oxidative stress. J Vet Sci 2008;9(3):247-56
  • Hong L, Zhang G, Sultana H, The effects of 17-beta estradiol on enhancing proliferation of human bone marrow mesenchymal stromal cells in vitro. Stem Cells Dev 2011;20(5):925-31
  • Goldring SR, Goldring MB. The role of cytokines in cartilage matrix degeneration in osteoarthritis. Clin Orthop Relat Res 2004;427 Suppl):S27-36
  • Sandell LJ. Modern molecular analysis of a traditional disease: progression in osteoarthritis. Arthritis Rheum 2007;56(8):2474-7
  • Tesche F, Miosge N. New aspects of the pathogenesis of osteoarthritis: the role of fibroblast-like chondrocytes in late stages of the disease. Histol Histopathol 2005;20(1):329-37
  • Beane OS, Darling EM. Isolation, characterization, and differentiation of stem cells for cartilage regeneration. Ann Biomed Eng 2012;40(10):2079-97
  • Murphy JM, Dixon K, Beck S, Reduced chondrogenic and adipogenic activity of mesenchymal stem cells from patients with advanced osteoarthritis. Arthritis Rheum 2002;46(3):704-13
  • Davatchi F, Abdollahi BS, Mohyeddin M, Mesenchymal stem cell therapy for knee osteoarthritis. Preliminary report of four patients. Int J Rheum Dis 2011;14(2):211-15

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