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      Recent Advances in Skeletal Muscle Stem Cells for Duchenne Muscular Dystrophy Treatment

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      https://www.riss.kr/link?id=A104499090

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      다국어 초록 (Multilingual Abstract)

      Muscle stem cells, which are known as satellite cells have heterogeneous components of committed myogenic progenitors, non-committed satellite cells, and mesenchymal stem cells. This distinguishing organization of self-renewal and differentiation capa...

      Muscle stem cells, which are known as satellite cells have heterogeneous components of committed myogenic progenitors, non-committed satellite cells, and mesenchymal stem cells. This distinguishing organization of self-renewal and differentiation capacities encourages the remarkable regenerative ability of skeletal muscles. Lately it has been proved that the satellite cell is the derivation of muscle regeneration and with the self-renew function, it roles as a true muscle stem cell. Therefore, stem cell therapy using satellite cells is considered to be ideal therapy for muscular dystrophies, which is deficient in specific muscle protein and causes muscle degeneration. Especially, Duchenne Muscular Dystrophy (DMD), which is caused by mutations at the dystrophin gene, has been targeted by much research. In this article the satellite cell characteristics, regulation of cell function, and stem cell therapy for DMD and the present progressive clinical trials will be reviewed.

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      참고문헌 (Reference)

      1 Ozeki N, "alpha7 integrin expressing human fetal myogenic progenitors have stem cell-like properties and are capable of osteogenic differentiation" 312 : 4162-4180, 2006

      2 Manzur AY, "Update on the management of duchenne muscular dystrophy" 93 : 986-990, 2008

      3 Brack AS, "Tissue-specific stem cells: lessons from the skeletal muscle satellite cell" 10 : 504-514, 2012

      4 Conboy IM, "The regulation of Notch signaling controls satellite cell activation and cell fate determination in postnatal myogenesis" 3 : 397-409, 2002

      5 Jones NC, "The p38alpha/beta MAPK functions as a molecular switch to activate the quiescent satellite cell" 169 : 105-116, 2005

      6 Emery AE., "The muscular dystrophies" 359 : 687-695, 2002

      7 Kuang S, "The emerging biology of satellite cells and their therapeutic potential" 14 : 82-91, 2008

      8 Hollnagel A, "The cell adhesion molecule M-cadherin is not essential for muscle development and regeneration" 22 : 4760-4770, 2002

      9 Cornelison DD, "Syndecan-3 and syndecan-4 specifically mark skeletal muscle satellite cells and are implicated in satellite cell maintenance and muscle regeneration" 239 : 79-94, 2001

      10 Skuk D, "Successful myoblast transplantation in primates depends on appropriate cell delivery and induction of regeneration in the host muscle" 155 : 22-30, 1999

      1 Ozeki N, "alpha7 integrin expressing human fetal myogenic progenitors have stem cell-like properties and are capable of osteogenic differentiation" 312 : 4162-4180, 2006

      2 Manzur AY, "Update on the management of duchenne muscular dystrophy" 93 : 986-990, 2008

      3 Brack AS, "Tissue-specific stem cells: lessons from the skeletal muscle satellite cell" 10 : 504-514, 2012

      4 Conboy IM, "The regulation of Notch signaling controls satellite cell activation and cell fate determination in postnatal myogenesis" 3 : 397-409, 2002

      5 Jones NC, "The p38alpha/beta MAPK functions as a molecular switch to activate the quiescent satellite cell" 169 : 105-116, 2005

      6 Emery AE., "The muscular dystrophies" 359 : 687-695, 2002

      7 Kuang S, "The emerging biology of satellite cells and their therapeutic potential" 14 : 82-91, 2008

      8 Hollnagel A, "The cell adhesion molecule M-cadherin is not essential for muscle development and regeneration" 22 : 4760-4770, 2002

      9 Cornelison DD, "Syndecan-3 and syndecan-4 specifically mark skeletal muscle satellite cells and are implicated in satellite cell maintenance and muscle regeneration" 239 : 79-94, 2001

      10 Skuk D, "Successful myoblast transplantation in primates depends on appropriate cell delivery and induction of regeneration in the host muscle" 155 : 22-30, 1999

      11 Collins CA, "Stem cell function, self-renewal, and behavioral heterogeneity of cells from the adult muscle satellite cell niche" 122 : 289-301, 2005

      12 Peault B, "Stem and progenitor cells in skeletal muscle development, maintenance, and therapy" 15 : 867-877, 2007

      13 Shea KL, "Sprouty1 regulates reversible quiescence of a self-renewing adult muscle stem cell pool during regeneration" 6 : 117-129, 2010

      14 Fuchs E, "Socializing with the neighbors: stem cells and their niche" 116 : 769-778, 2004

      15 Decary S, "Shorter telomeres in dystrophic muscle consistent with extensive regeneration in young children" 10 : 113-120, 2000

      16 Moss FP, "Satellite cells as the source of nuclei in muscles of growing rats" 170 : 421-435, 1971

      17 Church JC., "Satellite cells and myogenesis; a study in the fruit-bat web" 105 : 419-438, 1969

      18 Mauro A., "Satellite cell of skeletal muscle fibers" 9 : 493-495, 1961

      19 Bischoff R., "Regeneration of single skeletal muscle fibers in vitro" 182 : 215-235, 1975

      20 Seale P, "Pax7 is required for the specification of myogenic satellite cells" 102 : 777-786, 2000

      21 McKinnell IW, "Pax7 activates myogenic genes by recruitment of a histone methyltransferase complex" 10 : 77-84, 2008

      22 Kitamoto T, "Notch3 null mutation in mice causes muscle hyperplasia by repetitive muscle regeneration" 28 : 2205-2216, 2010

      23 Bjornson CR, "Notch signaling is necessary to maintain quiescence in adult muscle stem cells" 30 : 232-242, 2012

      24 Wozniak AC, "Nitric oxide-dependence of satellite stem cell activation and quiescence on normal skeletal muscle fibers" 236 : 240-250, 2007

      25 Kuang S, "Niche regulation of muscle satellite cell self-renewal and differentiation" 2 : 22-31, 2008

      26 Cossu G, "New therapies for duchenne muscular dystrophy: challenges, prospects and clinical trials." 13 : 520-526, 2007

      27 McCroskery S, "Myostatin negatively regulates satellite cell activation and self-renewal" 162 : 1135-1147, 2003

      28 Snow MH., "Myogenic cell formation in regenerating rat skeletal muscle injured by mincing. II. An autoradiographic study" 188 : 201-217, 1977

      29 Abou-Khalil R, "Muscle stem cells and reversible quiescence: the role of sprouty" 9 : 2575-2580, 2010

      30 Christov C, "Muscle satellite cells and endothelial cells: close neighbors and privileged partners" 18 : 1397-1409, 2007

      31 Quarta M, "Mimicking the niche: cytokines expand muscle stem cells" 25 : 761-762, 2015

      32 Sampaolesi M, "Mesoangioblast stem cells ameliorate muscle function in dystrophic dogs" 444 : 574-579, 2006

      33 Frock RL, "Lamin A/C and emerin are critical for skeletal muscle satellite cell differentiation" 20 : 486-500, 2006

      34 Brack AS, "Intrinsic changes and extrinsic influences of myogenic stem cell function during aging" 3 : 226-237, 2007

      35 Collins CA, "Integrated functions of Pax3 and Pax7 in the regulation of proliferation, cell size and myogenic differentiation" 4 : e4475-, 2009

      36 Gnocchi VF, "Further characterisation of the molecular signature of quiescent and activated mouse muscle satellite cells" 4 : e5205-, 2009

      37 Pisconti A, "Follistatin induction by nitric oxide through cyclic GMP : a tightly regulated signaling pathway that controls myoblast fusion" 172 : 233-244, 2006

      38 Ratajczak MZ, "Expression of functional CXCR4 by muscle satellite cells and secretion of SDF-1 by muscle-derived fibroblasts is associated with the presence of both muscle progenitors in bone marrow and hematopoietic stem/progenitor cells in muscles" 21 : 363-371, 2003

      39 Beauchamp JR, "Expression of CD34 and Myf5 defines the majority of quiescent adult skeletal muscle satellite cells" 151 : 1221-1234, 2000

      40 Nagata Y, "Entry of muscle satellite cells into the cell cycle requires sphingolipid signaling" 174 : 245-253, 2006

      41 Partridge TA, "Conversion of mdx myofibres from dystrophin-negative to -positive by injection of normal myoblasts" 337 : 176-179, 1989

      42 Guerette B, "Control of inflammatory damage by anti-LFA-1: increase success of myoblast transplantation" 6 : 101-107, 1997

      43 Petersen PH, "Continuing role for mouse numb and numbl in maintaining progenitor cells during cortical neurogenesis" 7 : 803-811, 2004

      44 Charge SB, "Cellular and molecular regulation of muscle regeneration" 84 : 209-238, 2004

      45 Yamaguchi M, "Calcitonin receptor and Odz4 are differently expressed in Pax7-positive cells during skeletal muscle regeneration" 43 : 581-587, 2012

      46 Wozniak AC, "C-Met expression and mechanical activation of satellite cells on cultured muscle fibers" 51 : 1437-1445, 2003

      47 Dezawa M, "Bone marrow stromal cells generate muscle cells and repair muscle degeneration" 309 : 314-317, 2005

      48 Meech R, "Barx2 is expressed in satellite cells and is required for normal muscle growth and regeneration" 30 : 253-265, 2012

      49 Kuang S, "Asymmetric self-renewal and commitment of satellite stem cells in muscle" 129 : 999-1010, 2007

      50 Ieronimakis N, "Absence of CD34 on murine skeletal muscle satellite cells marks a reversible state of activation during acute injury" 5 : e10920-, 2010

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