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A magnetically responsive nanocomposite scaffold combined with Schwann cells promotes sciatic nerve regeneration upon exposure to magnetic field

机译:磁性反应纳米复合支架与雪旺氏细胞结合后在磁场下可促进坐骨神经再生

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摘要

Peripheral nerve repair is still challenging for surgeons. Autologous nerve transplantation is the acknowledged therapy; however, its application is limited by the scarcity of available donor nerves, donor area morbidity, and neuroma formation. Biomaterials for engineering artificial nerves, particularly materials combined with supportive cells, display remarkable promising prospects. Schwann cells (SCs) are the absorbing seeding cells in peripheral nerve engineering repair; however, the attenuated biologic activity restricts their application. In this study, a magnetic nanocomposite scaffold fabricated from magnetic nanoparticles and a biodegradable chitosan–glycerophosphate polymer was made. Its structure was evaluated and characterized. The combined effects of magnetic scaffold (MG) with an applied magnetic field (MF) on the viability of SCs and peripheral nerve injury repair were investigated. The magnetic nanocomposite scaffold showed tunable magnetization and degradation rate. The MGs synergized with the applied MF to enhance the viability of SCs after transplantation. Furthermore, nerve regeneration and functional recovery were promoted by the synergism of SCs-loaded MGs and MF. Based on the current findings, the combined application of MGs and SCs with applied MF is a promising therapy for the engineering of peripheral nerve regeneration.
机译:对于外科医生而言,周围神经修复仍然具有挑战性。自体神经移植是公认的治疗方法。但是,其应用受到可用供体神经稀缺,供体区域发病率和神经瘤形成的限制。用于工程化人工神经的生物材料,特别是与支持细胞结合的材料,显示出令人瞩目的前景。雪旺细胞(SCs)是周围神经工程修复中的吸收性播种细胞。然而,减弱的生物活性限制了它们的应用。在这项研究中,制备了由磁性纳米颗粒和可生物降解的壳聚糖-甘油磷酸盐聚合物制成的磁性纳米复合材料支架。对它的结构进行了评估和表征。研究了磁性支架(MG)与施加的磁场(MF)共同作用对SC的生存能力和周围神经损伤的修复作用。磁性纳米复合材料支架显示出可调的磁化强度和降解速率。 MG与所应用的MF协同作用,以增强移植后SC的生存能力。此外,SCs加载的MGs和MF的协同作用促进了神经再生和功能恢复。基于目前的发现,MG和SC与MF的联合应用对于外周神经再生工程是一种有前途的疗法。

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