Axonal regeneration after crush injury of rat central nervous system fibres innervating peripheral nerve grafts
- 1 February 1985
- journal article
- research article
- Published by Springer Nature in Journal of Neurocytology
- Vol. 14 (1) , 1-12
- https://doi.org/10.1007/bf01150259
Abstract
Recent experimental studies in adult rodents indicate that neurons in many regions of the brain and spinal cord are capable of extensive axonal growth along peripheral nerve grafts inserted into the C.N.S. To explore further the capacity of damaged intrinsic C.N.S. neurons to initiate and sustain fibre growth we have studied the regenerative response of brain stem and spinal neurons to the crushing of their axons after such axons had already grown across peripheral nerve ‘bridges’ linking both these levels of the neuraxis. In adult rats, an autologous segment of sciatic nerve approximately 4 cm long was used to connect the medulla oblongata and the lower cervical spinal cord. After 6–42 weeks, when C.N.S. axons are known to have regenerated across these ‘bridges’, the nerve grafts were crushed near both their rostral and caudal insertions into the C.N.S. Axonal regeneration beyond the sites of injury was investigated 4–11 weeks after crush by retrogradely labelling C.N.S. neurons with horseradish peroxidase (HRP) applied 1 cm away from the injured site, along the assumed course of the C.N.S. fibres regrowing across the graft. The number and distribution of HRP-labelled neurons was found to be similar to that in rats with uncrushed grafts. To prove that such axonal regrowth from spinal and brain stem nerve cells did originate from injury of central nerve fibres innervating the graft and not by sprouting from undamaged C.N.S. neurons at both ends of the ‘bridge’, we first labelled with the fluorescent dye Fast Blue (FB) the cells whose axons were interrupted by the crush and, after two weeks, applied a second dye, Nuclear Yellow (NY) 1 cm beyond the site of injury. The presence of FB and NY double-labelled C.N.S. neurons in these animals, together with the results of the HRP-labelling experiments, suggest that central neurons whose axons innervate peripheral nerve grafts are capable of renewed growth after axonal injury. Under such experimental conditions these intrinsic C.N.S. neurons respond to axonal interruption in a manner that resembles the responses of cells that normally project along peripheral nerves. We believe this to be an additional indication of the powerful role in regeneration of interactions between neurons and the axonal environment.This publication has 22 references indexed in Scilit:
- Peripheral injury enhances central regeneration of primary sensory neuronesNature, 1984
- Regeneration of long spinal axons in the ratJournal of Neurocytology, 1984
- Nerve Fiber Growth on Defined Hydrogel SubstratesScience, 1982
- Axonal Elongation into Peripheral Nervous System "Bridges" After Central Nervous System Injury in Adult RatsScience, 1981
- Evidence that the early postnatal restriction of the cells of origin of the callosal projection is due to the elimination of axonal collaterals rather than to the death of neuronsDevelopmental Brain Research, 1981
- Axonally transported proteins associated with axon growth in rabbit central and peripheral nervous systemsThe Journal of cell biology, 1981
- Trophic activities for dorsal root and sympathetic ganglionic neurons in media conditioned by Schwann and other peripheral cellsDevelopmental Brain Research, 1981
- Characterization of the turning response of dorsal root neurites toward nerve growth factor.The Journal of cell biology, 1980
- The segmental origin of preganglionic axons in the upper thoracic rami of the catNeuroscience Letters, 1980
- Ensheathment and myelination of regenerating PNS fibres by transplanted optic nerve gliaNeuroscience Letters, 1978