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Human umbilical cord mesenchymal stem cell-derived exosomes loaded into a composite conduit promote functional recovery after peripheral nerve injury in rats

摘要Complete transverse injury of peripheral nerves is challenging to treat. Exosomes secreted by human umbilical cord mesenchymal stem cells are considered to play an important role in intercellular communication and regulate tissue regeneration. In previous studies, a collagen/hyaluronic acid sponge was shown to provide a suitable regeneration environment for Schwann cell proliferation and to promote axonal regeneration. This three-dimensional (3D) composite conduit contains a collagen/hyaluronic acid inner sponge enclosed in an electrospun hollow poly (lactic-co-glycolic acid) tube. However, whether there is a synergy between the 3D composite conduit and exosomes in the repair of peripheral nerve injury remains unknown. In this study, we tested a comprehensive strategy for repairing long-gap (10 mm) peripheral nerve injury that combined the 3D composite conduit with human umbilical cord mesenchymal stem cell-derived exosomes. Repair effectiveness was evaluated by sciatic functional index, sciatic nerve compound muscle action potential recording, recovery of muscle mass,measuring the cross-sectional area of the muscle fiber, Masson trichrome staining, and transmission electron microscopy of the regenerated nerve in rats.The results showed that transplantation of the 3D composite conduit loaded with human umbilical cord mesenchymal stem cell-derived exosomes promoted peripheral nerve regeneration and restoration of motor function, similar to autograft transplantation. More CD31-positive endothelial cells were observed in the regenerated nerve after transplantation of the loaded conduit than after transplantation of the conduit without exosomes, which may have contributed to the observed increase in axon regeneration and distal nerve reconnection. Therefore, the use of a 3D composite conduit loaded with human umbilical cord mesenchymal stem cell-derived exosomes represents a promising cell-free therapeutic option for the treatment of peripheral nerve injury.

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作者 Haoshuai Tang [1] Junjin Li [1] Hongda Wang [1] Jie Ren [1] Han Ding [1] Jun Shang [1] Min Wang [2] Zhijian Wei [3] Shiqing Feng [3] 学术成果认领
作者单位 Department of Othopaedics,Tianjin Medical University General Hospital,Tianjin,China;International Science and Technology Cooperation Base of Spinal Cord Injury,Tianjin Key Laboratory of Spine and Spinal Cord Injury,Department of Orthopedics,Tianjin Medical University General Hospital,Tianjin,China [1] Tianjin Key Laboratory of Lung Cancer Metastasis and Tumor Microenvironment,Tianjin Lung Cancer Institute,Tianjin Medical University General Hospital,Tianjin,China [2] Department of Othopaedics,Tianjin Medical University General Hospital,Tianjin,China;International Science and Technology Cooperation Base of Spinal Cord Injury,Tianjin Key Laboratory of Spine and Spinal Cord Injury,Department of Orthopedics,Tianjin Medical University General Hospital,Tianjin,China;Department of Othopaedics,Qilu Hospital of Shandong University,Shandong University Centre for Othopedics,Advanced Medical Research Institute,Shandong University,Jinan,Shandong Province,China;Orthopedic Research Center of Shandong University & Advanced Medical Research Institute,Cheeloo College of Medicine,Shandong University,Jinan,Shandong Province,China [3]
栏目名称 Peripheral Nerve Injury and Neural Regeneration
DOI 10.4103/1673-5374.380911
发布时间 2024-01-03
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中国神经再生研究(英文版)

中国神经再生研究(英文版)

2024年19卷4期

900-907页

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