神经再支配
材料科学
生物医学工程
骨骼肌
周围神经
周围神经损伤
神经假体
神经肌肉接头
再生医学
再生(生物学)
组织工程
体内
外围设备
解剖
医学
神经科学
生物
干细胞
细胞生物学
内科学
生物技术
作者
Jinju Kwon,Seongsu Eom,Jeong Sik Kong,Dong‐Woo Cho,Dong Sung Kim,Junesun Kim
标识
DOI:10.1002/adma.202406652
摘要
A regenerative peripheral nerve interface (RPNI) offers a therapeutic solution for nerve injury through reconstruction of the target muscle. However, implanting a transected peripheral nerve into an autologous skeletal muscle graft in RPNI causes donor-site morbidity, highlighting the need for tissue-engineered skeletal muscle constructs. Here, an engineered regenerative isolated peripheral nerve interface (eRIPEN) is developed using 3D skeletal cell printing combined with direct electrospinning to create a nanofiber membrane envelop for host nerve implantation. In this in vivo study, after over 8 months of RPNI surgery, the eRIPEN exhibits a minimum Feret diameter of 15-20 µm with a cross-sectional area of 100-500 µm2, representing the largest distribution of myofibers. Furthermore, neuromuscular junction formation and muscle contraction with a force of ≈28 N are observed. Notably, the decreased hypersensitivity to mechanical/thermal stimuli and an improved tibial functional index from -77 to -56 are found in the eRIPEN group. The present novel concept of eRIPEN paves the way for the utilization and application of tissue-engineered constructs in RPNI, ultimately realizing neuroprosthesis control through synaptic connections.
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