Brain‐derived neurotrophic factor applied to the motor cortex promotes sprouting of corticospinal fibers but not regeneration into a peripheral nerve transplant
- 30 May 2002
- journal article
- research article
- Published by Wiley in Journal of Neuroscience Research
- Vol. 69 (2) , 160-168
- https://doi.org/10.1002/jnr.10275
Abstract
Previous experiments from our laboratory have shown that application of brain-derived neurotrophic factor (BDNF) to the red nucleus or the motor cortex stimulates an increase in the expression of regeneration-associated genes in rubrospinal and corticospinal neurons. Furthermore, we have previously shown that BDNF application stimulates regeneration of rubrospinal axons into a peripheral graft after a thoracic injury. The current study investigates whether application of BDNF to the motor cortex will facilitate regeneration of corticospinal neurons into a peripheral nerve graft placed into the thoracic spinal cord. In adult Sprague Dawley rats, the dorsal columns and the corticospinal tract between T9 and T10 were ablated by suction, and a 5-mm-long segment of predegenerated tibial nerve was autograft implanted into the lesion. With an osmotic pump, BDNF was infused directly into the parenchyma of the motor cortex for 14 days. Growth of the corticospinal tract into the nerve graft was then evaluated by transport of an anterograde tracer. Anterogradely labeled corticospinal fibers were not observed in the peripheral nerve graft in animals treated with saline or BDNF. Serotinergic and noradrenergic fibers, as well as peripheral sensory afferents, were observed to penetrate the graft, indicating the viability of the peripheral nerve graft as a permissive growth substrate for these specific fiber types. Although treatment of the corticospinal fibers with BDNF failed to produce regeneration into the graft, there was a distinct increase in the number of axonal sprouts rostral to the injury site. This indicates that treatment of corticospinal neurons with neurotrophins, e.g., BDNF, can be used to enhance sprouting of corticospinal axons within the spinal cord. Whether such sprouting leads to functional recovery after spinal cord injury is currently under investigation.Keywords
This publication has 56 references indexed in Scilit:
- Intercostal Nerve Implants Transduced with an Adenoviral Vector Encoding Neurotrophin-3 Promote Regrowth of Injured Rat Corticospinal Tract Fibers and Improve Hindlimb FunctionExperimental Neurology, 2000
- Influence of the axotomy to cell body distance in rat rubrospinal and spinal motoneurons: Differential regulation of GAP-43, tubulins, and neurofilament-MJournal of Comparative Neurology, 1999
- Engines, Accelerators, and Brakes on Functional Spinal Cord RepairaAnnals of the New York Academy of Sciences, 1998
- Neurotrophic Factors Increase Axonal Growth after Spinal Cord Injury and Transplantation in the Adult RatExperimental Neurology, 1997
- The Ability of Human Schwann Cell Grafts to Promote Regeneration in the Transected Nude Rat Spinal CordExperimental Neurology, 1997
- Glial cell extracellular matrix: boundaries for axon growth in development and regenerationCell and tissue research, 1997
- The Influence of Predegeneration on Regeneration through Peripheral Nerve Grafts in the RatExperimental Neurology, 1993
- Peripheral injury enhances central regeneration of primary sensory neuronesNature, 1984
- Regeneration of long spinal axons in the ratJournal of Neurocytology, 1984
- Axonal Elongation into Peripheral Nervous System "Bridges" After Central Nervous System Injury in Adult RatsScience, 1981