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Investigating Functional Regeneration in Organotypic Spinal Cord Co-cultures Grown on Multi-electrode Arrays
Published on: September 23, 2015
Circuit Reconstruction after Traumatic Spinal Cord Injury by Cellular and Pharmacological Approaches
Seyed Mojtaba Hosseini1,2, Katinka Stecina1, Shiva Nemati1,2
1Department of Physiology and Pathophysiology, Spinal Cord Research Centre, Rady Faculty of Health Sciences, University of Manitoba Winnipeg, Winnipeg, Manitoba R3E0J9, Canada.
Abstract:
Extensive neuronal loss, progressive neurodegeneration, and circuit impairment are the key pathological features of spinal cord injury (SCI). The intrinsic capacity of the injured spinal cord to replenish damaged neurons and reassemble the disrupted spinal circuitry is restricted. Transplantation of exogenous neural precursor cells (NPCs) has shown promise to structurally repair the injured spinal network. However, proper maturation and integration of newly generated neurons from NPC graft within the zhost spinal circuit has remained challenging. Here, in adult female Sprague Dawley rats, we demonstrate that blockade of CSPG/LAR/PTP-σ axis in combination with neuromodulation by activation of 5-HT1/2/7 receptors augment the generation of spinal cord-specific neurons by NPC grafts and supports the maturity and functional connectivity of NPC-derived neurons with the host local spinal network as well as major descending motor pathways that culminate in recovery of locomotion and sensorimotor integration. Taken together, this novel cellular and pharmacological approach facilitates functional restoration of neural networks within the damaged spinal circuitry that addresses a critical gap in cell-based repair strategies for SCI.

