432
Views
9
CrossRef citations to date
0
Altmetric
Reviews

Cell transplantation for spinal cord injury focusing on iPSCs

, MD PhD, , MD PhD, , MD PhD, , MD PhD & , MD PhD
Pages 811-821 | Published online: 20 Apr 2012

Bibliography

  • Reynolds BA, Weiss S. Generation of neurons and astrocytes from isolated cells of the adult mammalian central nervous system. Science 1992;255:1707-10
  • Davis AA, Temple S. A self-renewing multipotential stem cell in embryonic rat cerebral cortex. Nature 1994;372:263-6
  • Fernandes KJ, McKenzie IA, Mill P, A dermal niche for multipotent adult skin-derived precursor cells. Nat Cell Biol 2004;6:1082-93
  • Kilpatrick TJ, Bartlett PF. Cloning and growth of multipotential neural precursors: requirements for proliferation and differentiation. Neuron 1993;10:255-65
  • Palmer TD, Ray J, Gage FH. FGF-2-responsive neuronal progenitors reside in proliferative and quiescent regions of the adult rodent brain. Mol Cell Neurosci 1995;6:474-86
  • Alvarez-Buylla A, Garcia-Verdugo JM, Tramontin AD. A unified hypothesis on the lineage of neural stem cells. Nat Rev Neurosci 2001;2:287-93
  • Doetsch F, Caille I, Lim DA, Subventricular zone astrocytes are neural stem cells in the adult mammalian brain. Cell 1999;97:703-16
  • Eriksson PS, Perfilieva E, Bjork-Eriksson T, Neurogenesis in the adult human hippocampus. Nat Med 1998;4:1313-17
  • Seri B, Garcia-Verdugo JM, McEwen BS, Alvarez-Buylla A. Astrocytes give rise to new neurons in the adult mammalian hippocampus. J Neurosci 2001;21:7153-60
  • van Praag H, Schinder AF, Christie BR, Functional neurogenesis in the adult hippocampus. Nature 2002;415:1030-4
  • McDonald JW, Liu XZ, Qu Y, Transplanted embryonic stem cells survive, differentiate and promote recovery in injured rat spinal cord. Nat Med 1999;5:1410-12
  • Ogawa Y, Sawamoto K, Miyata T, Transplantation of in vitro-expanded fetal neural progenitor cells results in neurogenesis and functional recovery after spinal cord contusion injury in adult rats. J Neurosci Res 2002;69:925-33
  • Iwanami A, Kaneko S, Nakamura M, Transplantation of human neural stem cells for spinal cord injury in primates. J Neurosci Res 2005;80:182-90
  • Iwanami A, Yamane J, Katoh H, Establishment of graded spinal cord injury model in a nonhuman primate: the common marmoset. J Neurosci Res 2005;80:172-81
  • Takahashi K, Tanabe K, Ohnuki M, Induction of pluripotent stem cells from adult human fibroblasts by defined factors. Cell 2007;131:861-72
  • Takahashi K, Yamanaka S. Induction of pluripotent stem cells from mouse embryonic and adult fibroblast cultures by defined factors. Cell 2006;126:663-76
  • Yu J, Vodyanik MA, Smuga-Otto K, Induced pluripotent stem cell lines derived from human somatic cells. Science 2007;318:1917-20
  • Cao QL, Zhang YP, Howard RM, Pluripotent stem cells engrafted into the normal or lesioned adult rat spinal cord are restricted to a glial lineage. Exp Neurol 2001;167:48-58
  • Okano H, Ogawa Y, Nakamura M, Transplantation of neural stem cells into the spinal cord after injury. Semin Cell Dev Biol 2003;14:191-8
  • Barnabe-Heider F, Frisen J. Stem cells for spinal cord repair. Cell Stem Cell 2008;3:16-24
  • Hitoshi S, Seaberg RM, Koscik C, Primitive neural stem cells from the mammalian epiblast differentiate to definitive neural stem cells under the control of Notch signaling. Genes Dev 2004;18:1806-11
  • Miyata T, Kawaguchi A, Okano H, Asymmetric inheritance of radial glial fibers by cortical neurons. Neuron 2001;31:727-41
  • Noctor SC, Flint AC, Weissman TA, Neurons derived from radial glial cells establish radial units in neocortex. Nature 2001;409:714-20
  • Temple S. The development of neural stem cells. Nature 2001;414:112-17
  • Okada Y, Matsumoto A, Shimazaki T, Spatiotemporal recapitulation of central nervous system development by murine embryonic stem cell-derived neural stem/progenitor cells. Stem Cells 2008;2:3086-98
  • Bibel M, Richter J, Schrenk K, Differentiation of mouse embryonic stem cells into a defined neuronal lineage. Nat Neurosci 2004;7:1003-9
  • Brederlau A, Correia AS, Anisimov SV, Transplantation of human embryonic stem cell-derived cells to a rat model of Parkinson's disease: effect of in vitro differentiation on graft survival and teratoma formation. Stem Cells 2006;24:1433-40
  • Keirstead HS, Nistor G, Bernal G, Human embryonic stem cell-derived oligodendrocyte progenitor cell transplants remyelinate and restore locomotion after spinal cord injury. J Neurosci 2005;25:4694-705
  • Yamada M, Tanemura K, Okada S, Electrical stimulation modulates fate determination of differentiating embryonic stem cells. Stem Cells 2007;25:562-70
  • Kumagai G, Okada Y, Yamane J, Roles of ES cell-derived gliogenic neural stem/progenitor cells in functional recovery after spinal cord injury. PLoS One 2009;4:e7706
  • Miura K, Okada Y, Aoi T, Variation in the safety of induced pluripotent stem cell lines. Nat Biotechnol 2009;27:743-5
  • Tsuji O, Miura K, Okada Y, Therapeutic potential of appropriately evaluated safe-induced pluripotent stem cells for spinal cord injury. Proc Natl Acad Sci USA 2010;107:12704-9
  • Okada S, Ishii K, Yamane J, In vivo imaging of engrafted neural stem cells: its application in evaluating the optimal timing of transplantation for spinal cord injury. FASEB J 2005;19:1839-41
  • Nori S, Okada Y, Yasuda A, Grafted human-induced pluripotent stem-cell–derived neurospheres promote motor functional recovery after spinal cord injury in mice. Proc Natl Acad Sci USA 2011;108:16825-30
  • Park IH, Zhao R, West JA, Reprogramming of human somatic cells to pluripotency with defined factors. Nature 2008;451:141-6
  • Seki T, Yuasa S, Oda M, Generation of induced pluripotent stem cells from human terminally differentiated circulating T Cells. Cell Stem Cell 2010;7:11-14
  • 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;302:415-19
  • Kaji K, Norrby K, Paca A, Virus-free induction of pluripotency and subsequent excision of reprogramming factors. Nature 2009;458:771-5
  • Woltjen K, Michael IP, Mohseni P, piggyBac transposition reprograms fibroblasts to induced pluripotent stem cells. Nature 2009;458:766-70
  • Yu J, Hu K, Smuga-Otto K, Human induced pluripotent stem cells free of vector and transgene sequences. Science 2009;324:797-801
  • Kim D, Kim CH, Moon JI, Generation of human induced pluripotent stem cells by direct delivery of reprogramming proteins. Cell Stem Cell 2009;4:472-6
  • Rhee YH, Ko JY, Chang MY, Protein-based human iPS cells efficiently generate functional dopamine neurons and can treat a rat model of Parkinson disease. J Clin Invest 2011;121:2326-35
  • Zhou H, Wu S, Joo JY, Generation of induced pluripotent stem cells using recombinant proteins. Cell Stem Cell 2009;4:381-4
  • Jia F, Wilson KD, Sun N, A nonviral minicircle vector for deriving human iPS cells. Nat Methods 2010;7:197-9
  • Okita K, Matsumura Y, Sato Y, A more efficient method to generate integration-free human iPS cells. Nat Methods 2010;8:409-12
  • Maekawa M, Yamaguchi K, Nakamura T, Direct reprogramming of somatic cells is promoted by maternal transcription factor Glis1. Nature 2011;474:225-9
  • Hayashi Y, Chan T, Warashina M, Reduction of N-glycolylneuraminic acid in human induced pluripotent stem cells generated or cultured under feeder- and serum-free defined conditions. PLoS One 2010;5(11):e14099

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.