Stem cell-laden rigid-flexible bioscaffold for neural regeneration and functional recovery after spinal cord injury

Spinal cord injury (SCI) remains a major clinical challenge due to limited neural regeneration and complex neuroimmune responses. To address these barriers, this study engineered a rigid-flexible composite bioscaffold (Poly_NT3_gel) integrating a multi-channel conduit made of aligned electrospun polycaprolactone (PCL) nanofibers, neurotrophin-3 (NT3)-encapsulated collagen particles, and a chitosan self-healing hydrogel containing bone marrow-derived mesenchymal stem cells (BMSCs). The multi-channel PCL conduit directed axonal growth, while gradient collagen particles enabled sustained NT3 release. The self-healing hydrogel provided tunable mechanics supporting BMSCs proliferation. In a rat complete SCI model, Poly_NT3_gel reduced lesion volume and fibrosis and improved neural bridging, locomotor function, and urinary recovery. Single-nucleus RNA sequencing highlighted bioscaffold-mediated restoration of transcriptional profile, as well as a microenvironment that suppressed post-injury fibroblast proliferation while modulating immune responses. This work established a multicomponent tissue engineering system that synergized physical, biochemical, and cellular cues to overcome key challenges in SCI repair, offering a promising strategy for neural regeneration and functional recovery after SCI. Spinal cord injury remains a major challenge owing to restricted neural regeneration and complex neuroimmune responses. Here, the authors developed a multifunctional bio scaffold that promotes nerve regeneration, modulates immune responses, and improves recovery after spinal cord injury.

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Publication Details

Journal
Communications Materials
Published
2026-10-09
DOI
https://doi.org/10.1038/s43246-026-01381-w
Primary Topic
Spinal Cord Injury Research
Type
article
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article

Stem cell-laden rigid-flexible bioscaffold for neural regeneration and functional recovery after spinal cord injury

Jiajia Xue, Jiliang Zhai, Lifei Huang, Yu Zhao et al.
Communications Materials
Spinal Cord Injury Research
article

Stem cell-laden rigid-flexible bioscaffold for neural regeneration and functional recovery after spinal cord injury

Jiajia Xue, Jiliang Zhai, Lifei Huang, Yu Zhao, Yilei Mao, Chengao Gao, Guo Wen, Bo Hou, Feng Xiong, Jiangang Zhang, Junchen Wang, Yonglai Lu, Xindan Zhang, Junhao Yan, Xing Wang, Tao Lu, Huiyu Yang, Huayu Yang
article en

Abstract

Spinal cord injury (SCI) remains a major clinical challenge due to limited neural regeneration and complex neuroimmune responses. To address these barriers, this study engineered a rigid-flexible composite bioscaffold (Poly_NT3_gel) integrating a multi-channel conduit made of aligned electrospun polycaprolactone (PCL) nanofibers, neurotrophin-3 (NT3)-encapsulated collagen particles, and a chitosan self-healing hydrogel containing bone marrow-derived mesenchymal stem cells (BMSCs). The multi-channel PCL conduit directed axonal growth, while gradient collagen particles enabled sustained NT3 release. The self-healing hydrogel provided tunable mechanics supporting BMSCs proliferation. In a rat complete SCI model, Poly_NT3_gel reduced lesion volume and fibrosis and improved neural bridging, locomotor function, and urinary recovery. Single-nucleus RNA sequencing highlighted bioscaffold-mediated restoration of transcriptional profile, as well as a microenvironment that suppressed post-injury fibroblast proliferation while modulating immune responses. This work established a multicomponent tissue engineering system that synergized physical, biochemical, and cellular cues to overcome key challenges in SCI repair, offering a promising strategy for neural regeneration and functional recovery after SCI. Spinal cord injury remains a major challenge owing to restricted neural regeneration and complex neuroimmune responses. Here, the authors developed a multifunctional bio scaffold that promotes nerve regeneration, modulates immune responses, and improves recovery after spinal cord injury.

Communications Materials
Chinese Academy of Medical Sciences & Peking Union Medical College (CN), Peking University (CN), Peking Union Medical College Hospital (CN), Xuan Wu Hospital of the Capital Medical University (CN), Cancer Hospital of Chinese Academy of Medical Sciences (CN), State Key Laboratory of Organic-Inorganic Composite Materials (CN), Beijing University of Chemical Technology (CN)
Openalex Percentile: Top 12%
Spinal Cord Injury Research
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