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Updated: Sep 1, 2025

Author Spotlight: Long-Term Spinal Cord Slice Culture for Advancing Spinal Cord Regeneration Therapies
Published on: April 12, 2024
Recent Advances in Cell and Functional Biomaterial Treatment for Spinal Cord Injury
Tianyi Liu1, Wenhao Zhu1, Xiaoyu Zhang1
1Department of Neurosurgery, First Hospital of Jilin University, Changchun 130021, China.
Abstract:
Spinal cord injury (SCI) is a devastating central nervous system disease caused by accidental events, resulting in loss of sensory and motor function. Considering the multiple effects of primary and secondary injuries after spinal cord injury, including oxidative stress, tissue apoptosis, inflammatory response, and neuronal autophagy, it is crucial to understand the underlying pathophysiological mechanisms, local microenvironment changes, and neural tissue functional recovery for preparing novel treatment strategies. Treatment based on cell transplantation has become the forefront of spinal cord injury therapy. The transplanted cells provide physical and nutritional support for the damaged tissue. At the same time, the implantation of biomaterials with specific biological functions at the site of the SCI has also been proved to improve the local inhibitory microenvironment and promote axonal regeneration, etc. The combined transplantation of cells and functional biomaterials for SCI treatment can result in greater neuroprotective and regenerative effects by regulating cell differentiation, enhancing cell survival, and providing physical and directional support for axon regeneration and neural circuit remodeling. This article reviews the pathophysiology of the spinal cord, changes in the microenvironment after injury, and the mechanisms and strategies for spinal cord regeneration and repair. The article will focus on summarizing and discussing the latest intervention models based on cell and functional biomaterial transplantation and the latest progress in combinational therapies in SCI repair. Finally, we propose the future prospects and challenges of current treatment regimens for SCI repair, to provide references for scientists and clinicians to seek better SCI repair strategies in the future.
Insights
Spinal cord injury (SCI) treatment is advancing with cell and biomaterial transplantation. Combining these therapies offers enhanced neuroprotection and regeneration for improved functional recovery after central nervous system injury.
Area of Science:
- Neuroscience
- Regenerative Medicine
- Biomaterials Science
Background:
- Spinal cord injury (SCI) causes significant sensory and motor function loss due to primary and secondary injury effects.
- Pathophysiological mechanisms include oxidative stress, apoptosis, inflammation, and autophagy, necessitating a deeper understanding for effective treatments.
Purpose of the Study:
- To review the pathophysiology of spinal cord injury and microenvironment changes.
- To summarize novel treatment strategies focusing on cell and functional biomaterial transplantation for SCI repair.
- To discuss the latest progress and future prospects in combinational therapies for SCI.
Main Methods:
- Review of current literature on SCI pathophysiology and regenerative strategies.
- Analysis of cell transplantation and functional biomaterial implantation in SCI models.
- Discussion of combined cell and biomaterial therapies for enhanced neuroprotection and regeneration.
Main Results:
- Cell transplantation offers physical and nutritional support to damaged spinal cord tissue.
- Functional biomaterials can improve the inhibitory microenvironment and promote axonal regeneration.
- Combined cell and biomaterial transplantation demonstrates synergistic neuroprotective and regenerative effects.
Conclusions:
- Combined cell and biomaterial transplantation represents a promising therapeutic approach for SCI.
- These strategies enhance cell survival, regulate differentiation, and support neural circuit remodeling.
- Further research is needed to address challenges and optimize treatment regimens for SCI repair.

