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Impact of acute inflammation on spinal motoneuron synaptic plasticity following ventral root avulsion
Roberta Barbizan1, Alexandre L R Oliveira
1Department of Anatomy, Cell Biology, Physiology and Biophysics, Institute of Biology, University of Campinas (UNICAMP), Campinas, SP, Brazil.
Background:
Ventral root avulsion is a proximal nerve root lesion in which ventral motor nerve rootlets are torn from surface of the spinal cord, resulting in extensive death of motoneurons. It has been previously shown that if such lesioning is performed in an animal with experimental autoimmune encephalomyelitis (EAE), a significant number of motoneurons can be rescued despite an intense inflammatory reaction. This rescue effect has been attributed to production of a number of neurotrophic factors by invading T cells. Synaptological changes may be involved in neuronal degeneration, and a better understanding of the role of these changes may be of importance for developing new strategies to promote neuronal survival. The objective of the present work was to evaluate neuronal survival, astroglial reaction and synaptic input changes in spinal cord anterior horn motor nuclei after ventral root avulsion in animals with EAE, both during peak disease and after remission.
Methods:
Lewis rats were subjected to unilateral avulsion of lumbar ventral roots (VRA) and divided into three groups: VRA control, VRA at peak of EAE, and VRA during EAE remission. The animals were sacrificed and their lumbar spinal cords processed for immunohistochemistry, transmission electron microscopy, and motoneuron counting.
Results:
The results indicate a reduction in astroglial reaction, a maintenance of microglial reactivity, and increases in synaptic covering of, and survival of, motoneurons in the VRA+EAE group as compared to VRA alone.
Conclusion:
The present findings indicate that CNS inflammation may directly influence synaptic plasticity as well as the stability of neuronal networks, positively influencing the survival of lesioned neurons.
Insights
Experimental autoimmune encephalomyelitis (EAE) enhances motoneuron survival following ventral root avulsion (VRA) by modulating synaptic inputs and reducing glial scarring. This suggests CNS inflammation can promote neuronal repair.
Area of Science:
- Neuroscience
- Immunology
- Spinal Cord Injury Research
Background:
- Ventral root avulsion (VRA) causes motoneuron death.
- Experimental autoimmune encephalomyelitis (EAE) can rescue motoneurons post-VRA.
- Neurotrophic factors from T cells are implicated in this rescue.
Purpose of the Study:
- Evaluate neuronal survival after VRA in EAE.
- Assess astroglial reaction and synaptic input changes.
- Investigate effects during peak EAE and remission.
Main Methods:
- Lewis rats underwent unilateral VRA.
- Groups included VRA control, VRA during EAE peak, and VRA during EAE remission.
- Analysis involved immunohistochemistry, electron microscopy, and motoneuron counts.
Main Results:
- VRA+EAE group showed reduced astroglial reaction.
- Microglial reactivity was maintained in VRA+EAE.
- Increased synaptic covering and motoneuron survival were observed in VRA+EAE.
Conclusions:
- Central nervous system inflammation positively impacts lesioned neuron survival.
- Inflammation may directly influence synaptic plasticity.
- This suggests potential for new therapeutic strategies for neuronal network stability.
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