Voluntary exercise following traumatic brain injury: Brain-derived neurotrophic factor upregulation and recovery of function

被引:358
作者
Griesbach, GS
Hovda, DA
Molteni, R
Wu, A
Gomez-Pinilla, F
机构
[1] Univ Calif Los Angeles, Med Ctr, David Geffen Sch Med, Div Neurosurg, Los Angeles, CA 90095 USA
[2] Univ Calif Los Angeles, Dept Mol & Med Pharmacol, Los Angeles, CA 90095 USA
[3] Univ Calif Los Angeles, Dept Physiol Sci, Los Angeles, CA 90095 USA
关键词
fluid-percussion injury; synapsin; 1; CREB; plasticity; rehabilitation; vulnerability;
D O I
10.1016/j.neuroscience.2004.01.030
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Voluntary exercise leads to an upregulation of brain-derived neurotrophic factor (BDNF) and associated proteins involved in synaptic function. Activity-induced enhancement of neuroplasticity may be considered for the treatment of traumatic brain injury (TBI). Given that during the first postinjury week the brain is undergoing dynamic restorative processes and energetic changes that may influence the outcome of exercise, we evaluated the effects of acute and delayed exercise following experimental TBI. Male Sprague-Dawley rats underwent either sham or lateral fluid-percussion injury (FPI) and were housed with or without access to a running wheel (RW) from postinjury days 0-6 (acute) or 14-20 (delayed). FPI alone resulted in significantly elevated levels of hippocampal phosphorylated synapsin I and phosphorylated cyclic AMP response element-binding-protein (CREB) at postinjury day 7, of which phosphorylated CREB remained elevated at postinjury day 21. Sham and delayed FPI-RW rats showed increased levels of BDNF, following exercise. Exercise also increased phosphorylated synapsin I and CREB in sham rats. In contrast to shams, the acutely exercised FPI rats failed to show activity-dependent BDNF upregulation and had significant decreases of phosphorylated synapsin I and total CREB. Additional rats were cognitively assessed (learning acquisition and memory) by utilizing the Morris water maze after acute or delayed RW exposure. Shams and delayed FPI-RW animals benefited from exercise, as indicated by a significant decrease in the number of trials to criterion (ability to locate the platform in 7 s or less for four consecutive trials), compared with the delayed FPI-sedentary rats. In contrast, cognitive performance in the acute FPI-RW rats was significantly impaired compared with all the other groups. These results suggest that voluntary exercise can endogenously upregulate BDNF and enhance recovery when it is delayed after TBI. However, when exercise is administered to soon after TBI, the molecular response to exercise is disrupted and recovery may be delayed. (C) 2004 IBRO. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:129 / 139
页数:11
相关论文
共 61 条
[1]   Positive and negative regulatory mechanisms that mediate long-term memory storage [J].
Abel, T ;
Kandel, E .
BRAIN RESEARCH REVIEWS, 1998, 26 (2-3) :360-378
[2]   Models of brain injury and alterations in synaptic plasticity [J].
Albensi, BC .
JOURNAL OF NEUROSCIENCE RESEARCH, 2001, 65 (04) :279-283
[3]   BDNF protects against spatial memory deficits following neonatal hypoxia-ischemia [J].
Almli, CR ;
Levy, TJ ;
Han, BH ;
Shah, AR ;
Gidday, JM ;
Holtzman, DM .
EXPERIMENTAL NEUROLOGY, 2000, 166 (01) :99-114
[4]   TROPHIC FACTORS AND NEURONAL SURVIVAL [J].
BARDE, YA .
NEURON, 1989, 2 (06) :1525-1534
[5]   DNase I disinhibition is predominantly associated with actin hyperpolymerization after traumatic brain injury [J].
Bareyre, FM ;
Raghupathi, R ;
Saatman, KE ;
McIntosh, TK .
JOURNAL OF NEUROCHEMISTRY, 2001, 77 (01) :173-181
[6]   Cerebral hyperglycolysis following severe traumatic brain injury in humans: A positron emission tomography study [J].
Bergsneider, M ;
Hovda, DA ;
Shalmon, E ;
Kelly, DF ;
Vespa, PM ;
Martin, NA ;
Phelps, ME ;
McArthur, DL ;
Caron, MJ ;
Kraus, JF ;
Becker, DP .
JOURNAL OF NEUROSURGERY, 1997, 86 (02) :241-251
[7]   Brain-derived neurotrophic factor administration after traumatic brain injury in the rat does not protect against behavioral or histological deficits [J].
Blaha, GR ;
Raghupathi, R ;
Saatman, KE ;
Mcintosh, TK .
NEUROSCIENCE, 2000, 99 (03) :483-493
[8]   Waging war on physical inactivity: using modern molecular ammunition against an ancient enemy [J].
Booth, FW ;
Chakravarthy, MV ;
Gordon, SE ;
Spangenburg, EE .
JOURNAL OF APPLIED PHYSIOLOGY, 2002, 93 (01) :3-30
[9]   Reorganization of the hand somatosensory cortex following perinatal unilateral brain injury [J].
Chu, D ;
Huttenlocher, PR ;
Levin, DN ;
Towle, VL .
NEUROPEDIATRICS, 2000, 31 (02) :63-69
[10]   Sustained activation of hippocampal pyramidal cells by 'space clamping' in a running wheel [J].
Czurkó, A ;
Hirase, H ;
Csicsvari, J ;
Buzsáki, G .
EUROPEAN JOURNAL OF NEUROSCIENCE, 1999, 11 (01) :344-352