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Exercise training after spinal cord injury selectively alters synaptic properties in neurons in adult mouse spinal cord

journal contribution
posted on 2024-11-01, 22:48 authored by Jamie Flynn, Lynda Dunn, Mary Galea, Robin Callister, Robert Callister, Michelle Rank
Following spinal cord injury (SCI), anatomical changes such as axonal sprouting occur within weeks in the vicinity of the injury. Exercise training enhances axon sprouting; however, the exact mechanisms that mediate exercised-induced plasticity are unknown. We studied the effects of exercise training after SCI on the intrinsic and synaptic properties of spinal neurons in the immediate vicinity (< 2 segments) of the SCI. Male mice (C57BL/6, 9-10 weeks old) received a spinal hemisection (T10) and after 1 week of recovery, they were randomized to trained (treadmill exercise for 3 weeks) and untrained (no exercise) groups. After 3 weeks, mice were killed and horizontal spinal cord slices (T6-L1, 250 μm thick) were prepared for visually guided whole cell patch clamp recording. Intrinsic properties, including resting membrane potential, input resistance, rheobase current, action potential (AP) threshold and after-hyperpolarization (AHP) amplitude were similar in neurons from trained and untrained mice (n=67 and 70 neurons, respectively). Neurons could be grouped into four categories based on their AP discharge during depolarizing current injection; the proportions of tonic firing, initial bursting, single spiking, and delayed firing neurons were similar in trained and untrained mice. The properties of spontaneous excitatory synaptic currents (sEPSCs) did not differ in trained and untrained animals. In contrast, evoked excitatory synaptic currents recorded after dorsal column stimulation were markedly increased in trained animals (peak amplitude 78.9±17.5 vs. 42.2±6.8 pA; charge 1054±376 vs. 348±75 pA·ms). These data suggest that 3 weeks of treadmill exercise does not affect the intrinsic properties of spinal neurons after SCI; however, excitatory synaptic drive from dorsal column pathways, such as the corticospinal tract, is enhanced.

Funding

Connectivity of regenerating axons following spinal cord injury

National Health and Medical Research Council

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History

Related Materials

  1. 1.
    DOI - Is published in 10.1089/neu.2012.2714
  2. 2.
    ISSN - Is published in 08977151

Journal

Journal of Neurotrauma

Volume

30

Issue

10

Start page

891

End page

896

Total pages

6

Publisher

Mary Ann Liebert

Place published

United States

Language

English

Copyright

© Copyright 2013, Mary Ann Liebert, Inc. 2013.

Former Identifier

2006058821

Esploro creation date

2020-06-22

Fedora creation date

2016-02-25

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