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Reducing Pericyte-Derived Scarring Promotes Recovery after Spinal Cord Injury

机译:减少脊髓损伤后促进恢复的细胞衍生的瘢痕疙瘩

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摘要

CNS injury often severs axons. Scar tissue that forms locally at the lesion site is thought to block axonal regeneration, resulting in permanent functional deficits. We report that inhibiting the generation of progeny by a subclass of pericytes led to decreased fibrosis and extracellular matrix deposition after spinal cord injury in mice. Regeneration of raphespinal and corticospinal tract axons was enhanced and sensorimotor function recovery improved following spinal cord injury in animals with attenuated pericyte-derived scarring. Using optogenetic stimulation, we demonstrate that regenerated corticospinal tract axons integrated into the local spinal cord circuitry below the lesion site. The number of regenerated axons correlated with improved sensorimotor function recovery. In conclusion, attenuation of pericyte-derived fibrosis represents a promising therapeutic approach to facilitate recovery following CNS injury.
机译:CNS损伤通常始终有轴承。 在病变部位局部形成的瘢痕组织被认为阻断轴突再生,导致永久的功能性缺陷。 我们报告说,通过细胞的子类抑制后代的生成导致小鼠脊髓损伤后的纤维化和细胞外基质沉积降低。 Rapheshing和皮质脊髓轴突的再生增强,并且传感器函数恢复在具有减毒的细胞衍生的瘢痕形成的动物中脊髓损伤改善。 使用致敏刺激,我们证明了再生皮质脊髓轴突集成到病变位点下方的局部脊髓电路中。 再生轴突的数量与改进的传感器函数恢复相关。 总之,周刊源性纤维化的衰减是一种有前途的治疗方法,可促进CNS损伤后的恢复。

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  • 来源
    《Cell》 |2018年第1期|共35页
  • 作者单位

    Karolinska Inst Dept Cell &

    Mol Biol SE-17177 Stockholm Sweden;

    Karolinska Inst Dept Neurosci SE-17177 Stockholm Sweden;

    Karolinska Inst Dept Cell &

    Mol Biol SE-17177 Stockholm Sweden;

    Karolinska Inst Sci Life Lab Sci Pk SE-17165 Stockholm Sweden;

    Karolinska Inst Sci Life Lab Sci Pk SE-17165 Stockholm Sweden;

    Karolinska Inst Dept Neurosci SE-17177 Stockholm Sweden;

    Karolinska Inst Dept Cell &

    Mol Biol SE-17177 Stockholm Sweden;

    Karolinska Inst Dept Cell &

    Mol Biol SE-17177 Stockholm Sweden;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 细胞生物学;
  • 关键词

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