Oligodendrocyte Fate after Spinal Cord Injury

被引:0
作者
Akshata Almad
F. Rezan Sahinkaya
Dana M. McTigue
机构
[1] Ohio State University,Neuroscience Graduate Studies Program
[2] Ohio State University,Center for Brain and Spinal Cord Repair
[3] Ohio State University,Department of Neuroscience
来源
Neurotherapeutics | 2011年 / 8卷
关键词
Myelin; polydendrocytes; excitotoxicity; inflammation; transplant; macrophage;
D O I
暂无
中图分类号
学科分类号
摘要
Oligodendrocytes (OLs) are particularly susceptible to the toxicity of the acute lesion environment after spinal cord injury (SCI). They undergo both necrosis and apoptosis acutely, with apoptosis continuing at chronic time points. Loss of OLs causes demyelination and impairs axon function and survival. In parallel, a rapid and protracted OL progenitor cell proliferative response occurs, especially at the lesion borders. Proliferating and migrating OL progenitor cells differentiate into myelinating OLs, which remyelinate demyelinated axons starting at 2 weeks post-injury. The progression of OL lineage cells into mature OLs in the adult after injury recapitulates development to some degree, owing to the plethora of factors within the injury milieu. Although robust, this endogenous oligogenic response is insufficient against OL loss and demyelination. First, in this review we analyze the major spatial–temporal mechanisms of OL loss, replacement, and myelination, with the purpose of highlighting potential areas of intervention after SCI. We then discuss studies on OL protection and replacement. Growth factors have been used both to boost the endogenous progenitor response, and in conjunction with progenitor transplantation to facilitate survival and OL fate. Considerable progress has been made with embryonic stem cell-derived cells and adult neural progenitor cells. For therapies targeting oligogenesis to be successful, endogenous responses and the effects of the acute and chronic lesion environment on OL lineage cells must be understood in detail, and in relation, the optimal therapeutic window for such strategies must also be determined.
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页码:262 / 273
页数:11
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共 583 条
[91]  
Kleber S(1998)Insulin-like growth factor I promotes cell proliferation and oligodendroglial commitment in rat glial progenitor cells developing in vitro J Neurosci Res 21 199-209
[92]  
Casaccia-Bonnefil P(1995)Cryogenic spinal cord injury induces astrocytic gene expression of insulin-like growth factor I and insulin-like growth factor binding protein 2 during myelin regeneration J Neurosci Res 40 647-659
[93]  
Carter BD(2001)IGF-I synergizes with FGF-2 to stimulate oligodendrocyte progenitor entry into the cell cycle Dev Biol 232 414-423
[94]  
Dobrowsky RT(1993)CNTF protection of oligodendrocytes against natural and tumor necrosis factor-induced death Science 259 689-692
[95]  
Chao MV(1993)Multiple extracellular signals are required for long-term oligodendrocyte survival Development 118 283-295
[96]  
Kanno H(1997)Changes in expression of ciliary neurotrophic factor (CNTF) and CNTF-receptor alpha after spinal cord injury J Neurobiol 32 251-261
[97]  
Ozawa H(2002)Ciliary neurotrophic factor activates spinal cord astrocytes, stimulating their production and release of fibroblast growth factor-2, to increase motor neuron survival Exp Neurol 173 46-62
[98]  
Sekiguchi A(1999)Ciliary neurotrophic factor induces expression of the IGF type I receptor and FGF receptor 1 mRNAs in adult rat brain oligodendrocytes J Neurosci Res 57 447-457
[99]  
Itoi E(1994)A crucial role for neurotrophin-3 in oligodendrocyte development Nature 367 371-375
[100]  
Sun F(1996)Nerve growth factor and neurotrophin-3 differentially regulate the proliferation and survival of developing rat brain oligodendrocytes J Neurosci 16 6433-6442