Spinal cord injury: What are the lesion effects on transplanted cells in an autograft model?
Delarue, Q.; Brodier, M.; Neveu, P.; Moncomble, L.; Hugede, A.; Blondin, A.; Robac, A.; Raimond, C.; Lecras, P.; Riou, G.; Guerout, N.
Show abstract
AbstractSpinal cord injury (SCI) is a serious pathology of the central nervous system that results in loss of motor, sensory and autonomic functions below the level of the lesion and for which, unfortunately, there is currently no cure. In addition to the loss of function, SCI induces a systemic inflammation that is not confined to the spinal cord and whose effects are increasingly well characterized. In particular, SCI causes cerebral inflammation, which is responsible for the impairment of hippocampal and bulbar neurogenesis. Many therapies have been tested as potential treatments for SCI. In animal models, cell therapies have shown interesting effects such as spinal scar reduction, anti-inflammatory properties, axonal regrowth or neuronal survival, allowing better functional recovery. However, in human studies, their therapeutic capacities are less significant. Beyond obvious differences in pathophysiology and cell culture procedures, a key paradigm of cell transplantation differs between humans and animals. In animal models, transplanted cells are systematically taken from healthy individuals, whereas in humans the immune incompatibility leads to the realization of autologous transplantation. Therefore, we were interested in the lesion effects on the neuro-repairing potential of olfactory ensheathing cells (OECs) harvested from olfactory bulbs. Using functional sensory-motor studies, histological and gene expression analyses, we were able to demonstrate for the first time that the lesion negatively affects the therapeutic properties of cells used to treat SCI. These innovative results shed new light on the future use of cell transplantation in autologous transplantation after SCI.
Matching journals
The top 9 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Unveiling Distinct Neuroimmune Responses in Mouse Models of Cervical Spinal Cord Injury: Hemisection versus Hemicontusion 97%
- Astrocyte-selective AAV-ADAMTS4 gene therapy combined with hindlimb rehabilitation promotes functional recovery after spinal cord injury 96%
- Sex-dependent effects of peptidylarginine deiminases on neutrophil function and long-term outcomes after spinal cord injury 95%
Similar papers in this journal
- Deletion or inhibition of astrocytic transglutaminase 2 promotes functional recovery after spinal cord injury 97%
- Combined Transplantation of Mesenchymal Progenitor and Neural Stem Cells to repair cervical spinal cord injury. 97%
- Stem cell factor and granulocyte colony-stimulating factor promote remyelination in the chronic phase of severe traumatic brain injury 95%
Similar papers in this journal
- Functional recovery by transplantation of human iPSC-derived A2B5 positive neural progenitor cell after spinal cord injury in mice 97%
- Dynamics of central remyelination and treatment evolution in a model of Multiple Sclerosis with Optic Coherence Tomography 93%
- Hematopoietic growth factors Regulate Entry of Monocytes into the Adult Brain via Chemokine Receptor CCR5 92%
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.