Insulin-like growth factor (IGF)-1 suppresses oligodendrocyte caspase-3 activation and increases glial proliferation after ischemia in near-term fetal sheep

被引:113
作者
Cao, Y
Gunn, AJ
Bennet, L
Wu, D
George, S
Gluckman, PD
Shao, XM
Guan, J
机构
[1] Univ Auckland, Liggins Inst, Fac Med & Hlth Sci, Auckland 1, New Zealand
[2] Fudan Univ, Childrens Hosp, Shanghai 200433, Peoples R China
关键词
IGF-1; white matter injury; fetal sheep; glial reaction; caspase-3; proliferation;
D O I
10.1097/01.WCB.0000067720.12805.6F
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Insulin-like growth factor (IGF-1) markedly increases myelination and glial numbers in white matter after ischernia in near-term fetal sheep; however, it is unclear whether this is due to reduced cell loss or increased secondary proliferation. Brain injury was induced in near-term fetal sheep by 30 minutes of bilateral carotid artery occlusion. Ninety minutes after the occlusion, fetuses were given, intracerebroventricularly, either a single dose of IGF-1 (either 3 or 30 mug), or 3 mug followed by 3 mug over 24 hours (3 + 3 mug). White matter was assessed 4 days after reperfusion. Three micrograms, but not 30 mug of IGF-1 prevented loss of oligodendrocytes and myelin basic protein density (P < 0.001) compared to the vehicle-treated ischernia controls. No additional effect was observed in the 3 + 3 mug group. IGF-1 treatment was associated with reduced caspase-3 activation and increased glial proliferation in a similar dose-dependent manner. Caspase-3 was only expressed in oligodendrocytes that showed apoptotic morphology. Proliferating cell nuclear antigen co-localized with both oligodendrocytes and astrocytes and microglia. Thus, increased oligodendrocyte numbers after IGF-I treatment is partly due to suppression of apoptosis, and partly to increased proliferation. In contrast, the increase in reactive glia was related only to proliferation. Speculatively, reactive glia may partly mediate IGF-1 white matter protection.
引用
收藏
页码:739 / 747
页数:9
相关论文
共 49 条
[1]   Selective vulnerability of late oligodendrocyte progenitors to hypoxia-ischemia [J].
Back, SA ;
Han, BH ;
Luo, NL ;
Chricton, CA ;
Xanthoudakis, S ;
Tam, J ;
Arvin, KL ;
Holtzman, DM .
JOURNAL OF NEUROSCIENCE, 2002, 22 (02) :455-463
[2]   CELL-DEATH IN THE OLIGODENDROCYTE LINEAGE [J].
BARRES, BA ;
HART, IK ;
COLES, HSR ;
BURNE, JF ;
VOYVODIC, JT ;
RICHARDSON, WD ;
RAFF, MC .
JOURNAL OF NEUROBIOLOGY, 1992, 23 (09) :1221-1230
[3]   CIRCULATING BINDING-PROTEINS FOR THE INSULIN-LIKE GROWTH-FACTORS [J].
BAXTER, RC .
TRENDS IN ENDOCRINOLOGY AND METABOLISM, 1993, 4 (03) :91-96
[4]   INSULIN-LIKE GROWTH FACTOR-I (IGF-I) PRODUCTION BY ASTROGLIAL CELLS - REGULATION AND IMPORTANCE FOR EPIDERMAL GROWTH FACTOR-INDUCED CELL REPLICATION [J].
CHERNAUSEK, SD .
JOURNAL OF NEUROSCIENCE RESEARCH, 1993, 34 (02) :189-197
[5]   Astrocytes attenuate oligodendrocyte death in vitro through an α6 integrin-laminin-dependent mechanism [J].
Corley, SM ;
Ladiwala, U ;
Besson, A ;
Yong, VW .
GLIA, 2001, 36 (03) :281-294
[6]   Brain-derived neurotrophic factor in astrocytes, oligodendrocytes, and microglia/macrophages after spinal cord injury [J].
Dougherty, KD ;
Dreyfus, CF ;
Black, IB .
NEUROBIOLOGY OF DISEASE, 2000, 7 (06) :574-585
[7]   Apoptosis in the brains of infants suffering intrauterine cerebral injury [J].
Edwards, AD ;
Cox, P ;
Hope, PL ;
Azzopardi, DV ;
Squier, MV ;
Mehmet, H .
PEDIATRIC RESEARCH, 1997, 42 (05) :684-689
[8]  
GALLI C, 1995, J NEUROSCI, V15, P1172
[9]  
GIULIAN D, 1993, J NEUROSCI, V13, P29
[10]  
Goddard DR, 1999, J NEUROSCI RES, V57, P74, DOI 10.1002/(SICI)1097-4547(19990701)57:1<74::AID-JNR8>3.0.CO