Electroacupuncture in the repair of spinal cord injury: inhibiting the Notch signaling pathway and promoting neural stem cell proliferation

被引:43
作者
Geng, Xin [1 ]
Sun, Tao [1 ]
Li, Jing-hui [1 ]
Zhao, Ning [1 ]
Wang, Yong [1 ]
Yu, Hua-lin [1 ]
机构
[1] Kunming Med Univ, Affiliated Hosp 1, Dept Neurosurg 2, Kunming, Yunnan Province, Peoples R China
关键词
nerve regeneration; spinal cord; electroacupuncture therapy; neural stem cells; notch signaling pathway; astrocytes; inflammation; survival curve; proliferation; differentiation; real-time quantitative PCR; western blot assay; neural regeneration; OLIGODENDROCYTE LINEAGE CELLS; FUNCTIONAL RECOVERY; ANGIOGENESIS; MUSCLE; MOUSE; RAT; SUBPOPULATION; NEUROGENESIS; DEGENERATION; INFLAMMATION;
D O I
10.4103/1673-5374.153687
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Electroacupuncture for the treatment of spinal cord injury has a good clinical curative effect, but the underlying mechanism is unclear. In our experiments, the spinal cord of adult Sprague-Dawley rats was clamped for 60 seconds. Dazhui (GV14) and Mingmen (GV4) acupoints of rats were subjected to electroacupuncture: Enzyme-linked immunosorbent assay revealed that the expression of serum inflammatory factors was apparently downregulated in rat models of spinal cord injury after electroacupuncture. Hematoxylin-eosin staining and immunohistochemistry results demonstrated that electroacupuncture contributed to the proliferation of neural stem cells in rat injured spinal cord, and suppressed their differentiation into astrocytes. Real-time quantitative PCR and western blot assays showed that electroacupuncture inhibited activation of the Notch signaling pathway induced by spinal cord injury. These findings indicate that electroacupuncture repaired the injured spinal cord by suppressing the Notch signaling pathway and promoting the proliferation of endogenous neural stem cells.
引用
收藏
页码:394 / 403
页数:10
相关论文
共 40 条
[1]   Re-evaluation of nestin as a marker of oligodendrocyte lineage cells [J].
Almazán, G ;
Vela, JM ;
Molina-Holgado, E ;
Guaza, C .
MICROSCOPY RESEARCH AND TECHNIQUE, 2001, 52 (06) :753-765
[2]   Neuronal replacement from endogenous precursors in the adult brain after stroke [J].
Arvidsson, A ;
Collin, T ;
Kirik, D ;
Kokaia, Z ;
Lindvall, O .
NATURE MEDICINE, 2002, 8 (09) :963-970
[3]   A SENSITIVE AND RELIABLE LOCOMOTOR RATING-SCALE FOR OPEN-FIELD TESTING IN RATS [J].
BASSO, DM ;
BEATTIE, MS ;
BRESNAHAN, JC .
JOURNAL OF NEUROTRAUMA, 1995, 12 (01) :1-21
[4]   The Notch Ligands Dll4 and Jagged1 Have Opposing Effects on Angiogenesis [J].
Benedito, Rui ;
Roca, Cristina ;
Soerensen, Inga ;
Adams, Susanne ;
Gossler, Achim ;
Fruttiger, Marcus ;
Adams, Ralf H. .
CELL, 2009, 137 (06) :1124-1135
[5]   Griffonia simplicifolia isolectin B4 identifies a specific subpopulation of angiogenic blood vessels following contusive spinal cord injury in the adult mouse [J].
Benton, Richard L. ;
Maddie, Melissa A. ;
Minnillo, Danielle R. ;
Hagg, Theo ;
Whittemore, Scott R. .
JOURNAL OF COMPARATIVE NEUROLOGY, 2008, 507 (01) :1031-1052
[6]   MUSCLE AFTER SPINAL CORD INJURY [J].
Biering-Sorensen, Bo ;
Kristensen, Ida Brulin ;
Kjaer, Michael ;
Biering-Sorensen, Fin .
MUSCLE & NERVE, 2009, 40 (04) :499-519
[7]   GFAP-positive progenitor cells produce neurons and oligodendrocytes throughout the CNS [J].
Casper, KB ;
McCarthy, KD .
MOLECULAR AND CELLULAR NEUROSCIENCE, 2006, 31 (04) :676-684
[8]   Notch receptor-ligand binding and activation: Insights from molecular studies [J].
Chillakuri, Chandramouli R. ;
Sheppard, Devon ;
Lea, Susan M. ;
Handford, Penny A. .
SEMINARS IN CELL & DEVELOPMENTAL BIOLOGY, 2012, 23 (04) :421-428
[9]   Secondary pathology following contusion, dislocation, and distraction spinal cord injuries [J].
Choo, Anthony M. ;
Liu, Jie ;
Dvorak, Marcel ;
Tetzlaff, Wolfram ;
Oxland, Thomas R. .
EXPERIMENTAL NEUROLOGY, 2008, 212 (02) :490-506
[10]   Notch-mediated restoration of regenerative potential to aged muscle [J].
Conboy, IM ;
Conboy, MJ ;
Smythe, GM ;
Rando, TA .
SCIENCE, 2003, 302 (5650) :1575-1577