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Functional recovery following traumatic spinal cord injury mediated by a unique polymer scaffold seeded with neural stem cells

机译:植入神经干细胞的独特聚合物支架介导的脊髓损伤后的功能恢复

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摘要

To better direct repair following spinal cord injury (SCI), we designed an implant modeled after the intact spinal cord consisting of a multicomponent polymer scaffold seeded with neural stem cells. Implantation of the scaffold–neural stem cells unit into an adult rat hemisection model of SCI promoted long-term improvement in function (persistent for 1 year in some animals) relative to a lesion-control group. At 70 days postinjury, animals implanted with scaffold-plus-cells exhibited coordinated, weight-bearing hindlimb stepping. Histology and immunocytochemical analysis suggested that this recovery might be attributable partly to a reduction in tissue loss from secondary injury processes as well as in diminished glial scarring. Tract tracing demonstrated corticospinal tract fibers passing through the injury epicenter to the caudal cord, a phenomenon not present in untreated groups. Together with evidence of enhanced local GAP-43 expression not seen in controls, these findings suggest a possible regeneration component. These results may suggest a new approach to SCI and, more broadly, may serve as a prototype for multidisciplinary strategies against complex neurological problems.
机译:为了更好地指导脊髓损伤(SCI)后的直接修复,我们设计了一种以完整的脊髓为模型的植入物,该植入物由植入神经干细胞的多组分聚合物支架组成。相对于病变对照组,将支架-神经干细胞单位植入成年大鼠SCI的半切模型可促进功能的长期改善(某些动物持续1年)。受伤后70天,植入支架+细胞的动物表现出协调的,负重的后肢踩踏。组织学和免疫细胞化学分析表明,这种恢复可能部分归因于继发性损伤过程中组织损失的减少以及神经胶质瘢痕形成的减少。轨迹追踪显示皮质脊髓束纤维穿过损伤震中到达尾线,这种现象在未经治疗的组中不存在。连同对照中未见的增强的局部GAP-43表达的证据一起,这些发现表明可能是再生成分。这些结果可能暗示了一种SCI的新方法,并且更广泛地,它可以作为针对复杂神经系统问题的多学科策略的原型。

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