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Templated Agarose Scaffolds for the Support of Motor Axon Regeneration Into Sites of Complete Spinal Cord Transection

机译:模板支架琼脂糖完全脊髓横断电机轴突再生进入网站的支持

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摘要

Bioengineered scaffolds have the potential to support and guide injured axons after spinal cord injury, contributing to neural repair. In previous studies we have reported that templated agarose scaffolds can be fabricated into precise linear arrays and implanted into the partially injured spinal cord, organizing growth and enhancing the distance over which local spinal cord axons and ascending sensory axons extend into a lesion site. However, most human injuries are severe, sparing only thin rims of spinal cord tissue in the margins of a lesion site. Accordingly, in the present study we examined whether template agarose scaffolds seeded with bone marrow stromal cells secreting Brain-Derived Neurotrophic Factor (BDNF) would support regeneration into severe, complete spinal cord transection sites. Moreover, we tested responses of motor axon populations originating from the brainstem. We find that templated agarose scaffolds support motor axon regeneration into a severe spinal cord injury model and organize axons into fascicles of highly linear configuration. BDNF significantly enhances axonal growth. Collectively, these findings support the feasibility of scaffold implantation for enhancing central regeneration after even severe central nervous system injury.
机译:生物工程支架具有支撑和引导脊髓损伤后受伤的轴突的潜力,有助于神经修复。在以前的研究中,我们报道了模板化的琼脂糖支架可以制成精确的线性阵列,并植入部分受伤的脊髓中,从而组织生长并增加局部脊髓轴突和上行感觉轴突延伸到病变部位的距离。然而,大多数人的伤害是严重的,仅在病变部位的边缘保留了薄薄的脊髓组织边缘。因此,在本研究中,我们检查了植入有分泌脑源性神经营养因子(BDNF)的骨髓基质细胞的模板琼脂糖支架是否将支持再生为严重,完整的脊髓横断部位。此外,我们测试了源自脑干的运动轴突种群的反应。我们发现模板化的琼脂糖支架支持电机轴突再生成严重的脊髓损伤模型,并将轴突组织成高度线性构型的束。 BDNF显着增强轴突生长。总的来说,这些发现支持了支架植入在严重中枢神经系统损伤后增强中枢再生的可行性。

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