首页> 外文期刊>BioMed research international >Outer Electrospun Polycaprolactone Shell Induces Massive Foreign Body Reaction and Impairs Axonal Regeneration through 3D Multichannel Chitosan Nerve Guides
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Outer Electrospun Polycaprolactone Shell Induces Massive Foreign Body Reaction and Impairs Axonal Regeneration through 3D Multichannel Chitosan Nerve Guides

机译:外电纺聚己内酯壳通过3D多通道壳聚糖神经导管诱导大量异物反应并损害轴突再生

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We report on the performance of composite nerve grafts with an inner 3D multichannel porous chitosan core and an outer electrospun polycaprolactone shell. The inner chitosan core provided multiple guidance channels for regrowing axons. To analyze the in vivo properties of the bare chitosan cores, we separately implanted them into an epineural sheath. The effects of both graft types on structural and functional regeneration across a 10 mm rat sciatic nerve gap were compared to autologous nerve transplantation (ANT). The mechanical biomaterial properties and the immunological impact of the grafts were assessed with histological techniques before and after transplantation in vivo. Furthermore during a 13-week examination period functional tests and electrophysiological recordings were performed and supplemented by nerve morphometry. The sheathing of the chitosan core with a polycaprolactone shell induced massive foreign body reaction and impairment of nerve regeneration. Although the isolated novel chitosan core did allow regeneration of axons in a similar size distribution as the ANT, the ANT was superior in terms of functional regeneration. We conclude that an outer polycaprolactone shell should not be used for the purpose of bioartificial nerve grafting, while 3D multichannel porous chitosan cores could be candidate scaffolds for structured nerve grafts.
机译:我们报告了具有内部3D多通道多孔壳聚糖核心和外部电纺聚己内酯外壳的复合神经移植物的性能。壳聚糖内部核心为轴突生长提供了多个引导通道。为了分析裸露的壳聚糖核心的体内特性,我们将它们分别植入了神经外膜鞘中。将两种移植物对跨越10 mm大鼠坐骨神经间隙的结构和功能再生的影响与自体神经移植(ANT)进行了比较。在体内移植之前和之后,使用组织学技术评估了移植物的机械生物材料特性和免疫学影响。此外,在13周的检查期内,进行了功能测试和电生理记录,并通过神经形态学进行了补充。用聚己内酯壳包裹壳聚糖核可引起大量异物反应并损害神经再生。尽管分离的新型壳聚糖核心确实允许轴突再生,其大小分布与ANT相似,但在功能再生方面,ANT却更为出色。我们得出的结论是,聚己内酯外壳不应该用于生物人工神经移植的目的,而3D多通道多孔壳聚糖核心可能是结构化神经移植的候选支架。

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