Intraspinal transplantation of fetal central nervous system (CNS) tissue or segments of peripheral nerve (PNS grafts) has demonstrated the ability of these implants to sustain axonal growth from CNS and PNS neurons following acute injury. The chronically injured spinal cord is a second lesion model with obvious clinical relevance, yet it is not known if neurons associated with longstanding CNS lesions retain the capacity for axonal growth or whether the encapsulating glial scar characteristics of a chronic lesion site impedes the course of regrowing axons. Since our previous studies have shown that fetal spinal cord (FSC) tissue survives transplantation into chronic lesion cavities, the exciting possibility that a neural tissue transplantation approach could provide an appropriate model system to study the regenerative potential of neurons in the chronically injured spinal cord can now be addressed. The proposed research will use quantitative morphometric techniques, immunocytochemistry and electron microscopy to test the hypothesis that implanted FSC tissue has the ability (1) to modify the encapsulating glial scar associated with a chronic lesion cavity and (2) to prevent the reformation of a partitioning glial scar following re-injury of the spinal cord (Specific Aim I). Experiments using immunocytochemical and neuroanatomical tracing techniques will map the pattern and extent of graft-host axonal integration to determine if chronically injured neurons retain the potential for axonal growth and if this potential can be enhanced by grafts of fetal CNS or PNS tissue (Specific Aim II) or by a conditioning lesion and removal of glial scar tissue prior to transplantation (Specific Aim III). The importance of this research is at least threefold: (1) it will establish whether the dense glial scarring that results after CNS injury can be modified to facilitate apposition and integration of graft and host tissues; (2) it will help define the substratum requirements necessary for the initiation and maintenance of axonal growth across an extensive lesion site; and (3) it will indicate the ability of neurons in the chronically injured spinal cord to regrow their axons and determine if this capacity for growth can be stimulated by transplantation paradigms involving either fetal CNS or PNS tissues. The experiments outlined in this proposal will define the potential for axonal regeneration and structural repair of the chronically injured spinal cord, thus forming the basis for future experiments related to the long term goal of re-establishing structural and functional continuity across a longstanding lesion in the spinal cord by the use of neural tissue transplantation techniques.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Research Project (R01)
Project #
5R01NS026380-03
Application #
3412192
Study Section
Neurology B Subcommittee 2 (NEUB)
Project Start
1988-08-01
Project End
1991-07-31
Budget Start
1990-08-01
Budget End
1991-07-31
Support Year
3
Fiscal Year
1990
Total Cost
Indirect Cost
Name
University of Arkansas for Medical Sciences
Department
Type
Schools of Medicine
DUNS #
City
Little Rock
State
AR
Country
United States
Zip Code
72205
Sandrow-Feinberg, Harra R; Houlé, John D (2015) Exercise after spinal cord injury as an agent for neuroprotection, regeneration and rehabilitation. Brain Res 1619:12-21
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Detloff, Megan Ryan; Wade Jr, Rodel E; Houlé, John D (2013) Chronic at- and below-level pain after moderate unilateral cervical spinal cord contusion in rats. J Neurotrauma 30:884-90
Houle, John D; Cote, Marie-Pascale (2013) Axon regeneration and exercise-dependent plasticity after spinal cord injury. Ann N Y Acad Sci 1279:154-63
Tom, Veronica J; Sandrow-Feinberg, Harra R; Miller, Kassi et al. (2013) Exogenous BDNF enhances the integration of chronically injured axons that regenerate through a peripheral nerve grafted into a chondroitinase-treated spinal cord injury site. Exp Neurol 239:91-100
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Cote, Marie-Pascale; Amin, Arthi A; Tom, Veronica J et al. (2011) Peripheral nerve grafts support regeneration after spinal cord injury. Neurotherapeutics 8:294-303
Sandrow-Feinberg, Harra R; Zhukareva, Victoria; Santi, Lauren et al. (2010) PEGylated interferon-beta modulates the acute inflammatory response and recovery when combined with forced exercise following cervical spinal contusion injury. Exp Neurol 223:439-51
Houle, John D; Amin, Arthi; Cote, Marie-Pascale et al. (2009) Combining peripheral nerve grafting and matrix modulation to repair the injured rat spinal cord. J Vis Exp :
Tom, Veronica J; Kadakia, Rachel; Santi, Lauren et al. (2009) Administration of chondroitinase ABC rostral or caudal to a spinal cord injury site promotes anatomical but not functional plasticity. J Neurotrauma 26:2323-33

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