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Transplantation of Nanostructured Composite Scaffolds Results in the Regeneration of Chronically Injured Spinal Cords

机译:纳米结构复合支架的移植导致慢性损伤脊髓的再生。

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The destruction and hollowing of entire tissue segments represent an insurmountable barrier to axonal regeneration and therapeutics in chronic spinal cord injury. To circumvent this problem, we engineered neural prosthetics, by assembling electrospun nanofibers and self-assembling peptides into composite guidance channels and transplanted them into the cysts of a postcontusive, chronic spinal cord injury rat model, also providing delivery of proregenerative cytokines. Six months later conspicuous cord reconstruction was observed. The cyst was replaced by newly formed tissue comprising neural and stromal cells. Nerve fibers were interspersed between and inside the guidance channels, spanning the lesion, amidst a well-developed vascular network, basal lamina, and myelin. This was accompanied by a significant improvement in the activity of ascending and descending motor pathways and the global locomotion score. Thus by engineering nanostructured matrices into neuroprosthetics, it is possible to recreate an anatomical, structural, and histological framework, which leads to the replacement of large, hollow tissue gaps in the chronically injured spinal cord, fostering axonal regeneration and neurological recovery.
机译:整个组织节段的破坏和空心化代表了慢性脊髓损伤中轴突再生和治疗的不可逾越的障碍。为了解决这个问题,我们通过将电纺纳米纤维和自组装肽组装到复合引导通道中,并把它们移植到挫伤后慢性脊髓损伤大鼠模型的囊肿中,设计了神经修复术,还提供了再生细胞因子。六个月后,观察到明显的脊髓重建。囊肿被新形成的包括神经细胞和基质细胞的组织所代替。神经纤维散布在引导通道之间和内部,横跨病变,位于发达的血管网络,基底层和髓鞘中。这伴随着运动路径的上升和下降以及整体运动评分的显着改善。因此,通过将纳米结构的基质工程化为神经假体,可以重建解剖,结构和组织学框架,从而替代慢性受伤的脊髓中较大的中空组织间隙,从而促进轴突再生和神经功能恢复。

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