Regenerating and sprouting axons differ in their requirements for growth after injury

被引:26
作者
BernsteinGoral, H
Diener, PS
Bregman, BS
机构
[1] Georgetown Univ. School of Medicine, Department of Cell Biology, Division of Neurobiology, Washington, DC 20007, 3900 Reservoir Road, N.W.
[2] Department of Physical Therapy, Marymount University, Arlington
关键词
D O I
10.1006/exnr.1997.6632
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
After spinal cord injury at birth, axotomized brainstem-spinal and corticospinal neurons are capable of permanent regenerative axonal growth into and through a fetal spinal cord transplant placed into the site of either a spinal cord hemisection or transection. In contrast, if fetal tissue which is not a normal target of the axotomized neurons (embryonic hippocampus or cortex) is placed into a neonatal spinal cord hemisection, brainstem-spinal serotonergic axons transiently innervate the transplant, but subsequently withdraw. The first set of experiments was designed to test the hypothesis that after spinal cord transection, serotonergic axons would cross the nontarget transplant, reach normal spinal cord targets caudal to the transection, and gain access to requisite target-derived cues, permitting permanent maintenance. Surprisingly, after a complete spinal cord transection, brainstem-spinal axons failed to grow into an inappropriate target even transiently. These observations suggest that the transient axonal ingrowth into nontarget transplants may represent lesion-induced axonal sprouting by contralateral uninjured axons. We have used double-labeling with fluorescent dyes, to test directly whether axonal sprouting of neurons which maintain collaterals to uninjured spinal cord targets (1) provide the transient ingrowth of brainstem-spinal axons into a nontarget transplant and (2) contribute to permanent ingrowth into target-specific transplants. Uninjured red nucleus, raphe nucleus, and locus coeruleus neurons extend axons into the nontarget transplant while maintaining collaterals to the host spinal cord caudal to the transplant. The lesion-induced sprouting by uninjured axons was also observed with a target-specific transplant. Taken together, these studies suggest that sprouting and regenerating axons may differ in their requirements for growth after injury. (C) 1997 Academic Press.
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页码:51 / 72
页数:22
相关论文
共 86 条
[11]  
Bregman B. S., 1994, FUNCTIONAL NEURAL TR, P489
[12]   INFANT LESION EFFECT .3. ANATOMICAL CORRELATES OF SPARING AND RECOVERY OF FUNCTION AFTER SPINAL-CORD DAMAGE IN NEWBORN AND ADULT CATS [J].
BREGMAN, BS ;
GOLDBERGER, ME .
DEVELOPMENTAL BRAIN RESEARCH, 1983, 9 (02) :137-154
[13]   BOTH REGENERATING AND LATE-DEVELOPING PATHWAYS CONTRIBUTE TO TRANSPLANT-INDUCED ANATOMICAL PLASTICITY AFTER SPINAL-CORD LESIONS AT BIRTH [J].
BREGMAN, BS ;
BERNSTEINGORAL, H .
EXPERIMENTAL NEUROLOGY, 1991, 112 (01) :49-63
[14]   EXTENSION OF THE CRITICAL PERIOD FOR DEVELOPMENTAL PLASTICITY OF THE CORTICOSPINAL PATHWAY [J].
BREGMAN, BS ;
KUNKELBAGDEN, E ;
MCATEE, M ;
ONEILL, A .
JOURNAL OF COMPARATIVE NEUROLOGY, 1989, 282 (03) :355-370
[15]   RECOVERY FROM SPINAL-CORD INJURY MEDIATED BY ANTIBODIES TO NEURITE GROWTH-INHIBITORS [J].
BREGMAN, BS ;
KUNKELBAGDEN, E ;
SCHNELL, L ;
DAI, HN ;
GAO, D ;
SCHWAB, ME .
NATURE, 1995, 378 (6556) :498-501
[16]   NEURAL TISSUE-TRANSPLANTS RESCUE AXOTOMIZED RUBROSPINAL CELLS FROM RETROGRADE DEATH [J].
BREGMAN, BS ;
REIER, PJ .
JOURNAL OF COMPARATIVE NEUROLOGY, 1986, 244 (01) :86-95
[17]  
BREGMAN BS, 1988, PROG BRAIN RES, V78, P205
[18]  
BREGMAN BS, 1991, RESTOR NEUROL NEUROS, V2, P327, DOI 10.3233/RNN-1991-245622
[19]   ANATOMICAL PLASTICITY AND SPARING OF FUNCTION AFTER SPINAL-CORD DAMAGE IN NEONATAL CATS [J].
BREGMAN, BS ;
GOLDBERGER, ME .
SCIENCE, 1982, 217 (4559) :553-555
[20]   DEVELOPMENT OF SEROTONIN IMMUNOREACTIVITY IN THE RAT SPINAL-CORD AND ITS PLASTICITY AFTER NEONATAL SPINAL-CORD LESIONS [J].
BREGMAN, BS .
DEVELOPMENTAL BRAIN RESEARCH, 1987, 34 (02) :245-263