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Electrospun silk-polyaniline conduits for functional nerve regeneration in rat sciatic nerve injury model

机译:电动纺丝丝聚酰胺导管用于大鼠坐骨神经损伤模型的功能神经再生

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摘要

The present study describes the fabrication of polyaniline-silk fibroin (PASF) nanocomposite-based nerve conduits and their subsequent implantation in a rat sciatic nerve injury model for peripheral nerve regeneration. This is the first in vivo study of polyaniline-based nerve conduits describing the safety and efficacy of the conduits in treating peripheral nerve injuries. The nanocomposite was synthesized by electrospinning a mixture of silk fibroin protein and polyaniline wherein the silk nanofibers were observed to be uniformly coated with polyaniline nanoparticles. Tubular shaped nerve conduits were subsequently formed by multiple rolling of the electrospun sheet over a stainless steel mandrel. The conduits were characterized in vitro for their physico-chemical properties as well as their compatibility with rat Schwann cells. Upon implantation in a 10mmsciatic nerve injury model, the conduits were evaluated for their neuro-regenerative potential through extensive electrophysiological studies and monitoring of gait pattern over a course of 12 months. Gross examination, histological and ultra-structure analyses of the conduits and the regenerated nerve were also performed to evaluate morphological regeneration of transected nerve. PASF nanocomposite conduits seeded with Schwann cell (cell seeded PASF) exhibited excellent nerve conduction velocity (NCV) (50 ms(-1)), compound muscle action potential (CMAP) (12.8 mV), motor unit potential (MUP) (124 mu V), growth of healthy tissue along the nerve gap and thick myelination of axons 12 months after implantation indicating enhanced neuro-regeneration. The excellent functional recovery achieved by animals implanted with cell seeded PASF conduits (86.2% NCV; 80.00% CMAP; 76.07% MUP) are superior to outcomes achieved previously with similar electrically conductive conduits. Webelieve that the present study would encourage further research in developing electrically active neural implants using synthetic conducting polymers and the in vivo applications of the same.
机译:本研究描述了聚苯胺 - 丝素蛋白(PASF)纳米复合材料的神经导管的制备及其随后植入外周神经再生的大鼠坐骨神经损伤模型。这是第一个体内研究的基于聚苯胺的神经导管,描述了导管治疗外周神经损伤的安全性和功效。通过静电纺丝丝素蛋白和聚苯胺的混合物来合成纳米复合材料,其中观察到丝纳米纤维纤维素均匀涂覆有聚苯胺纳米颗粒。随后通过在不锈钢心轴上通过多辊轧制电纺片来形成管状神经导管。导管在体外表征它们的物理化学性质以及与大鼠施曼细胞的相容性。在植入10mmsciat神经损伤模型时,通过广泛的电生理学研究和在12个月的过程中进行广泛的电生理学研究和对步态模式的监测来评估导管的神经再生潜力。还进行了导管和再生神经的总检验,组织学和超结构分析,以评估肺染术的形态再生。施瓦氏细胞(细胞种子PASF)接种的PASF纳米复合导管表现出优异的神经传导速度(NCV)(50ms(-1)),复合肌动作电位(CMAP)(12.8mV),电机单元电位(MUP)(124亩) v),在植入后12个月的神经间隙沿着神经间隙的健康组织生长,表明增强神经再生。通过植入细胞种子丙烯酸的动物实现的优异功能恢复(86.2%NCV; 80.00%CMAP; 76.07%MUP)优于先前具有类似导电管道的结果。 WebElieve认为,本研究将促进使用合成导电聚合物和相同的体内应用开发电活性神经植入物的进一步研究。

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