ArticleInternational journal of molecular sciences2023
Impact of Endurance Training on Regeneration of Axons, Glial Cells, and Inhibitory Neurons after Spinal Cord Injury: A Link between Functional Outcome and Regeneration Potential within the Lesion Site and in Adjacent Spinal Cord Tissue.
Article in International journal of molecular sciences, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers.
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Who cites it
8 citing papers in PubMed, 8 citations in OpenAlex.
- Restoration of gamma-aminobutyric acid homeostasis: A novel approach to alleviating central nervous system injury-associated immunodepression syndrome.Neural regeneration research · 2026Article
- Exercise training promotes nerve cell repair and regeneration after spinal cord injury.Neural regeneration research · 2026Article
- Mapping the Ischemic Continuum: Dynamic Multi-Omic Biomarker and AI for Personalized Stroke Care.International journal of molecular sciences · 2026Review
- Spinal Cord Injury Remyelination: Pathways to Therapies.International journal of molecular sciences · 2025Review
- Body weight-supported treadmill training reduces glial scar overgrowth in SCI rats by decreasing the reactivity of astrocytes during the subacute phase.BMC neuroscience · 2025Article
- Effect of high-intensity exercise training on functional recovery after spinal cord injury.Frontiers in neurology · 2025Review
- NeuroAiDBiomedicines · 2024Article
- The interplay between BDNF and PGC-1 alpha in maintaining brain health: role of exercise.Frontiers in endocrinology · 2024Review
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Authors and funding
8 authors at 1 institution in 1 country.
Funding
Abstract
Endurance training prior to spinal cord injury (SCI) has a beneficial effect on the activation of signaling pathways responsible for survival, neuroplasticity, and neuroregeneration. It is, however, unclear which training-induced cell populations are essential for the functional outcome after SCI. Adult Wistar rats were divided into four groups: control, six weeks of endurance training, Th9 compression (40 g/15 min), and pretraining + Th9 compression. The animals survived six weeks. Training alone increased the gene expression and protein level of immature CNP-ase oligodendrocytes (~16%) at Th10, and caused rearrangements in neurotrophic regulation of inhibitory GABA/glycinergic neurons at the Th10 and L2 levels, known to contain the interneurons with rhythmogenic potential. Training + SCI upregulated markers for immature and mature (CNP-ase, PLP1) oligodendrocytes by ~13% at the lesion site and caudally, and increased the number of GABA/glycinergic neurons in specific spinal cord regions. In the pretrained SCI group, the functional outcome of hindlimbs positively correlated with the protein levels of CNP-ase, PLP1, and neurofilaments (NF-l), but not with the outgrowing axons (Gap-43) at the lesion site and caudally. These results indicate that endurance training applied before SCI potentiates the repair in damaged spinal cord, and creates a suitable environment for neurological outcome.
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Registered trials
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