外膜
去细胞化
神经导管
坐骨神经
神经外膜修复
生物相容性
生物医学工程
止血器
材料科学
医学
解剖
外科
组织工程
冶金
作者
Xiao Li,Xiaoyan Mao,Meihan Tao,Liang Fang,Xiaohong Tian,Jun Fan,Xiaohong Wang,Tianhao Yu,Qiang Ao
出处
期刊:Biomaterials advances
日期:2024-05-01
卷期号:159: 213803-213803
被引量:1
标识
DOI:10.1016/j.bioadv.2024.213803
摘要
Autologous nerve grafts have been considered the gold standard for peripheral nerve grafts. However, due to drawbacks such as functional loss in the donor area and a shortage of donor sources, nerve conduits are increasingly being considered as an alternative approach. Polymer materials have been widely studied as nerve repair materials due to their excellent processing performance. However, their limited biocompatibility has restricted further clinical applications. The epineurium is a natural extra-neural wrapping structure. After undergoing decellularization, the epineurium not only reduces immune rejection but also retains certain bioactive components. In this study, decellularized epineurium (DEP) derived from the sciatic nerve of mammals was prepared, and a bilayer nerve conduit was created by electrospinning a poly (l-lactide-co-ε-caprolactone) (PLCL) membrane layer onto the outer surface of the DEP. Components of the DEP were examined; the physical properties and biosafety of the bilayer nerve conduit were evaluated; and the functionality of the nerve conduit was evaluated in rats. The results demonstrate that the developed bilayer nerve conduit exhibits excellent biocompatibility and mechanical properties. Furthermore, this bilayer nerve conduit shows significantly superior therapeutic effects for sciatic nerve defects in rats compared to the pure PLCL nerve conduit. In conclusion, this research provides a novel strategy for the design of nerve regeneration materials and holds promising potential for further clinical translation.
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