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Engineering Bi-Layer Nanofibrous Conduits for Peripheral Nerve Regeneration

机译:工程性双层纳米纤维导管用于周围神经再生

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摘要

Trauma injuries often cause peripheral nerve damage and disability. A goal in neural tissue engineering is to develop synthetic nerve conduits for peripheral nerve regeneration having therapeutic efficacy comparable to that of autografts. Nanofibrous conduits with aligned nanofibers have been shown to promote nerve regeneration, but current fabrication methods rely on rolling a fibrous sheet into the shape of a conduit, which results in a graft with inconsistent size and a discontinuous joint or seam. In addition, the long-term effects of nanofibrous nerve conduits, in comparison with autografts, are still unknown. Here we developed a novel one-step electrospinning process and, for the first time, fabricated a seamless bi-layer nanofibrous nerve conduit: the luminal layer having longitudinally aligned nanofibers to promote nerve regeneration, and the outer layer having randomly organized nanofibers for mechanical support. Long-term in vivo studies demonstrated that bi-layer aligned nanofibrous nerve conduits were superior to random nanofibrous conduits and had comparable therapeutic effects to autografts for nerve regeneration. In summary, we showed that the engineered nanostructure had a significant impact on neural tissue regeneration in situ. The results from this study will also lead to the scalable fabrication of engineered nanofibrous nerve conduits with designed nanostructure. This technology platform can be combined with drug delivery and cell therapies for tissue engineering.
机译:外伤经常会导致周围神经损伤和残疾。神经组织工程学的目标是开发具有与自体移植相当的治疗功效的用于周围神经再生的合成神经导管。具有对齐的纳米纤维的纳米纤维导管已显示出促进神经再生的作用,但是当前的制造方法依赖于将纤维片卷绕成导管的形状,这导致移植物的尺寸不一致且接头或接缝不连续。另外,与自体移植相比,纳米纤维神经导管的长期作用仍是未知的。在这里,我们开发了一种新颖的一步静电纺丝工艺,并首次制造了无缝的双层纳米纤维神经导管:腔层具有纵向排列的纳米纤维以促进神经再生,而外层具有随机组织的纳米纤维以进行机械支撑。长期的体内研究表明,双层排列的纳米纤维神经导管优于随机的纳米纤维导管,并具有与自体神经再生相当的治疗效果。总而言之,我们表明工程纳米结构对神经组织的原位再生有重要影响。这项研究的结果还将导致具有设计纳米结构的工程化纳米纤维神经导管的可扩展制造。该技术平台可以与用于组织工程的药物输送和细胞疗法相结合。

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