Stem cells and neurological diseases

被引:0
作者
Hess, D. C. [1 ]
Borlongan, C. V. [1 ,2 ]
机构
[1] Med Coll Georgia, Dept Neurol, Augusta, GA 30912 USA
[2] VA Med Ctr, Med Res Serv, Augusta, GA 30912 USA
关键词
MARROW STROMAL CELLS; CENTRAL-NERVOUS-SYSTEM; CORD BLOOD-CELLS; MULTIPOTENT PROGENITOR CELLS; FETAL NIGRAL TRANSPLANTATION; OLFACTORY ENSHEATHING CELLS; FOCAL CEREBRAL-ISCHEMIA; BONE-MARROW; NEUROTROPHIC FACTOR; FUNCTIONAL RECOVERY;
D O I
暂无
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Cells of the central nervous system were once thought to be incapable of regeneration. This dogma has been challenged In the last decade with studies showing new, migrating stem cells in the brain in many rodent injury models and findings of new neurones in the human hippocampus in adults. Moreover, there are reports of bone marrow-derived cells developing neuronal and vascular phenotypes and aiding in repair of injured brain. These findings have fuelled excitement and interest in regenerative medicine for neurological diseases, arguably the most difficult diseases to treat. There are numerous proposed regenerative approaches to neurological diseases. These include cell therapy approaches in which cells are delivered intracerebrally or are infused by an intravenous or intra-arterial route; stem cell mobilization approaches in which endogenous stem and progenitor cells are mobilized by cytokines such as granulocyte colony stimulatory factor (GCSF) or chemokines such as SDF-1; trophic and growth factor support, such as delivering brain-derived neurotrophic factor (BDNF) or glial-derived neurotrophic factor (GDNF) into the brain to support injured neurones; these approaches may be used together to maximize recovery. While initially, it was thought that cell therapy might work by a 'cell replacement' mechanism, a large body of evidence is emerging that cell therapy works by providing trophic or 'chaperone' support to the injured tissue and brain. Anglogenesis and neurogenesis are coupled in the brain. Increasing angiogenesis with adult stem cell approaches in rodent models of stroke leads to preservation of neurones and improved functional outcome. A number of stem and progenitor cell types has been proposed as therapy for neurological disease ranging from neural stem cells to bone marrow derived stem cells to embryonic stem cells. Any cell therapy approach to neurological disease will have to be scalable and easily commercialized if it will have the necessary impact on public health. Currently, bone marrow-derived cell populations such as the marrow stromal cell, multipotential progenitor cells, umbilical cord stem cells and neural stem cells meet these criteria the best. Of great clinical significance, initial evidence suggests these cell types may be delivered by an allogeneic approach, so strict tissue matching may not be necessary. The most immediate impact on patients will be: achieved by making use of the trophic support capability of cell therapy and not by a cell replacement mechanism.
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页码:94 / 114
页数:21
相关论文
共 146 条
  • [1] Human mesenchymal stem cells modulate allogeneic immune cell responses
    Aggarwal, S
    Pittenger, MF
    [J]. BLOOD, 2005, 105 (04) : 1815 - 1822
  • [2] Identification of neural stem cells in the adult vertebrate brain
    Alvarez-Buylla, A
    Seri, B
    Doetsch, F
    [J]. BRAIN RESEARCH BULLETIN, 2002, 57 (06) : 751 - 758
  • [3] Fusion of bone-marrow-derived cells with Purkinje neurons, cardiomyocytes and hepatocytes
    Alvarez-Dolado, M
    Pardal, R
    Garcia-Vardugo, JM
    Fike, JR
    Lee, HO
    Pfeffer, K
    Lois, C
    Morrison, SJ
    Alvarez-Buylla, A
    [J]. NATURE, 2003, 425 (6961) : 968 - 973
  • [4] Neuronal replacement from endogenous precursors in the adult brain after stroke
    Arvidsson, A
    Collin, T
    Kirik, D
    Kokaia, Z
    Lindvall, O
    [J]. NATURE MEDICINE, 2002, 8 (09) : 963 - 970
  • [5] Human CD34+ cells differentiate into microglia and express recombinant therapeutic protein
    Asheuer, M
    Pflumio, FO
    Benhamida, S
    Dubart-Kupperschmitt, A
    Fouquet, F
    Imai, Y
    Aubourg, P
    Cartier, N
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2004, 101 (10) : 3557 - 3562
  • [6] Engraftment and migration of human bone marrow stromal cells implanted in the brains of albino rats - similarities to astrocyte grafts
    Azizi, SA
    Stokes, D
    Augelli, BJ
    DiGirolamo, C
    Prockop, DJ
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1998, 95 (07) : 3908 - 3913
  • [7] Autologous mesenchymal stem cell transplantation in stroke patients
    Bang, OY
    Lee, JS
    Lee, PH
    Lee, G
    [J]. ANNALS OF NEUROLOGY, 2005, 57 (06) : 874 - 882
  • [8] Neural subtype specification of fertilization and nuclear transfer embryonic stem cells and application in parkinsonian mice
    Barberi, T
    Klivenyi, P
    Calingasan, NY
    Lee, H
    Kawamata, H
    Loonam, K
    Perrier, AL
    Bruses, J
    Rubio, ME
    Topf, N
    Tabar, V
    Harrison, NL
    Beal, MF
    Moore, MAS
    Studer, L
    [J]. NATURE BIOTECHNOLOGY, 2003, 21 (10) : 1200 - 1207
  • [9] Identification of astrocyte-expressed factors that modulate neural stem/progenitor cell differentiation
    Barkho, Basam Z.
    Song, Hongjun
    Aimone, James B.
    Smrt, Richard D.
    Kuwabara, Tomoko
    Nakashima, Kinichi
    Gage, Fred H.
    Zhao, Xinyu
    [J]. STEM CELLS AND DEVELOPMENT, 2006, 15 (03) : 407 - 421
  • [10] BATH PM, 2006, COCHRANE DB SYST REV, V3