|
Spinal Cord Tissue Engineering Using Human Primary Neural Progenitor Cells and Astrocytes
Chen Jin,Yayu Wu,Haipeng Zhang,Bai Xu,Wenbin Liu,Chunnan Ji,Panpan Li,Zhenni Chen,Bing Chen,Jiayin Li,Xianming Wu,Peipei Jiang,Yali Hu,Zhifeng Xiao,Yannan Zhao,Jianwu Dai
Bioengineering & Translational Medicine
Abstract
Neural progenitor cell (NPC) transplantation is a promising approach for repairing spinal cord injury (SCI). However, cell survival, maturation and integration after transplantation are still major challenges. Here, we produced a novel centimeter-scale human spinal cord neural tissue (hscNT) construct with human spinal cord neural progenitor cells (hscNPCs) and human spinal cord astrocytes (hscAS) on a linearly ordered collagen scaffold (LOCS). The hscAS promoted hscNPC adhesion, survival and neurite outgrowth on the LOCS, to form a linearly ordered spinal cord-like structure consisting of mature neurons and glia cells. When transplanted into rats with SCI, the hscNT created a favorable microenvironment by inhibiting inflammation and glial scar formation, and promoted neural and vascular regeneration. Notably, the hscNT promoted neural circuit reconstruction and motor functional recovery. Engineered human spinal cord implants containing astrocytes and neurons assembled on axon guidance scaffolds may therefore have potential in the treatment of SCI.
|
论文编号: |
DOI:10.1002/btm2.10448 |
论文题目: |
Spinal Cord Tissue Engineering Using Human Primary Neural Progenitor Cells and Astrocytes |
英文论文题目: |
Spinal Cord Tissue Engineering Using Human Primary Neural Progenitor Cells and Astrocytes |
第一作者: |
Chen Jin,Yayu Wu,Haipeng Zhang,Bai Xu,Wenbin Liu,Chunnan Ji,Panpan Li,Zhenni Chen,Bing Chen,Jiayin Li,Xianming Wu,Peipei Jiang,Yali Hu,Zhifeng Xiao,Yannan Zhao,Jianwu Dai |
英文第一作者: |
Chen Jin,Yayu Wu,Haipeng Zhang,Bai Xu,Wenbin Liu,Chunnan Ji,Panpan Li,Zhenni Chen,Bing Chen,Jiayin Li,Xianming Wu,Peipei Jiang,Yali Hu,Zhifeng Xiao,Yannan Zhao,Jianwu Dai |
联系作者: |
|
英文联系作者: |
|
外单位作者单位: |
|
英文外单位作者单位: |
|
发表年度: |
2022-11-18 |
卷: |
|
期: |
|
页码: |
|
摘要: |
Neural progenitor cell (NPC) transplantation is a promising approach for repairing spinal cord injury (SCI). However, cell survival, maturation and integration after transplantation are still major challenges. Here, we produced a novel centimeter-scale human spinal cord neural tissue (hscNT) construct with human spinal cord neural progenitor cells (hscNPCs) and human spinal cord astrocytes (hscAS) on a linearly ordered collagen scaffold (LOCS). The hscAS promoted hscNPC adhesion, survival and neurite outgrowth on the LOCS, to form a linearly ordered spinal cord-like structure consisting of mature neurons and glia cells. When transplanted into rats with SCI, the hscNT created a favorable microenvironment by inhibiting inflammation and glial scar formation, and promoted neural and vascular regeneration. Notably, the hscNT promoted neural circuit reconstruction and motor functional recovery. Engineered human spinal cord implants containing astrocytes and neurons assembled on axon guidance scaffolds may therefore have potential in the treatment of SCI. |
英文摘要: |
Neural progenitor cell (NPC) transplantation is a promising approach for repairing spinal cord injury (SCI). However, cell survival, maturation and integration after transplantation are still major challenges. Here, we produced a novel centimeter-scale human spinal cord neural tissue (hscNT) construct with human spinal cord neural progenitor cells (hscNPCs) and human spinal cord astrocytes (hscAS) on a linearly ordered collagen scaffold (LOCS). The hscAS promoted hscNPC adhesion, survival and neurite outgrowth on the LOCS, to form a linearly ordered spinal cord-like structure consisting of mature neurons and glia cells. When transplanted into rats with SCI, the hscNT created a favorable microenvironment by inhibiting inflammation and glial scar formation, and promoted neural and vascular regeneration. Notably, the hscNT promoted neural circuit reconstruction and motor functional recovery. Engineered human spinal cord implants containing astrocytes and neurons assembled on axon guidance scaffolds may therefore have potential in the treatment of SCI. |
刊物名称: |
Bioengineering & Translational Medicine |
英文刊物名称: |
Bioengineering & Translational Medicine |
论文全文: |
|
英文论文全文: |
|
全文链接: |
|
其它备注: |
|
英文其它备注: |
|
学科: |
|
英文学科: |
|
影响因子: |
|
第一作者所在部门: |
|
英文第一作者所在部门: |
|
论文出处: |
|
英文论文出处: |
|
论文类别: |
|
英文论文类别: |
|
参与作者: |
|
英文参与作者: |
|
|