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Neural stem cell-derived exosomes facilitate spinal cord functional recovery after injury by promoting angiogenesis

机译:神经干细胞衍生的外泌体通过促进血管生成,促进损伤后的脊髓功能恢复

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摘要

Acute traumatic spinal cord injury is a devastating event without effective therapeutic approach. The feeble plasticity of spinal cord microvascular endothelial cells (SCMECs) after trauma is one of the major causes for the exacerbation of spinal cord injury. Therefore, improving the plasticity and regeneration of SCMECs is crucial to promote recovery after spinal cord injury. For the present study, we explored the influence of exosomes derived from neural stem cells (NSCs-Exos) on the spinal cord microvascular regeneration after spinal cord injury and determined the underlying mechanisms. After the primary NSCs and SCMECs were extracted, exosomes were isolated from NSCs conditioned medium and used to co-incubated with the SCMECs in vitro, and then the effect of exosomes on the angiogenic activities of SCMECs was measured. The candidate molecules involved in the NSCs-Exos-mediated angiogenesis were screened using Western blotting. The effect of NSCs-Exos on angiogenesis and spinal cord functional recovery after injury in vivo was analyzed. The results demonstrated that NSCs-Exos could enhance the angiogenic activities of SCMECs, and were highly enriched in VEGF-A. The level of VEGF-A was downregulated in NSCsshVEGF-A-Exos and the pro-angiogenic effects on cocultured SCMECs were inhibited. Furthermore, NSCs-Exos significantly accelerated the microvascular regeneration, reduced the spinal cord cavity, and improved the Basso mouse scale scores in spinal cord injury mice. This work provides the evidence of the underlying mechanism of NSCs-Exos-mediated angiogenesis and suggests a novel therapeutic target for spinal cord injury. Impact statement The feeble plasticity of SCMECs after trauma is one of the major causes for the exacerbation of SCI. Therefore, improving the regeneration ability of SCMECs is crucial to promote spinal cord functional recovery after injury. Our current study uncovered that NSCs-Exos could promote SCMECs migration, tube formation and proliferation in vitro, and further identified that exosomal VEGF-A mediated the pro-angiogenic effect. Furthermore, we observed a remarkable microvascular density increase, spinal cord cavity shrinkage, and motor function recovery in SCI mice treated with NSCs-Exos, which confirmed the therapeutic effects of NSCs-Exos to alleviate SCI. Downregulating VEGF-A partially abolished these effects of NSCs-Exos. This is the first study to reveal that NSCs-Exos has the pro-angiogenic effect on SCMECs by transferring VEGF-A and promote microvascular regeneration and tissue healing, indicating that NSCs-Exos can become a promising therapeutic bioagent for facilitating the functional recovery of SCI.
机译:急性创伤性脊髓损伤是一个毁灭性的事件,没有有效的治疗方法。创伤后脊髓微血管内皮细胞(SCMEC)的虚弱可塑性是脊髓损伤加剧的主要原因之一。因此,改善ScMecs的可塑性和再生至关重要,以促进脊髓损伤后的恢复至关重要。对于本研究,我们探讨了脊髓损伤后神经干细胞(NSCS-EXOS)源自神经干细胞(NSCS-EXOS)的影响并确定了潜在机制。提取初级NSCs和SCMEC后,从NSC的条件培养基中分离出外泌体,并用体外与SCMEC共孵育,然后测量外来对SCMECs血管生成活性的影响。使用Western印迹筛选参与NSCS-EXOS介导的血管生成的候选分子。分析了NSCS-EXOS对体内损伤后血管生成和脊髓功能恢复的影响。结果表明,NSCS-EXOS可以增强SCMEC的血管生成活性,并且在VEGF-A中高度富集。 VEGF-A的水平在NSCSSHVEGF-A-EXOS中下调,抑制了对与可携带的SCMEC的促血管生成作用。此外,NSCS-EXOS显着加速了微血管再生,降低了脊髓腔,并改善了脊髓损伤小鼠中的贝莫小鼠尺度评分。这项工作提供了NSCS-EXOS介导的血管生成的潜在机制的证据,并表明了脊髓损伤的新疗法靶标。冲击陈述创伤后Scmecs的虚弱可塑性是SCI加剧的主要原因之一。因此,改善Scmecs的再生能力至关重要,以促进损伤后脊髓柔性功能恢复。我们目前的研究发现,NSCS-EXOS可以在体外促进SCMECS迁移,管形成和增殖,并进一步确定外泌体VEGF-A介导的促血管生成效果。此外,我们观察到使用NSC-EXOS处理的SCI小鼠的显着微血管密度增加,脊髓腔收缩和电动功能恢复,这证实了NSCS-EXOS缓解SCI的治疗效果。下调VEGF-A部分地废除了NSCS-EXOS的这些作用。这是第一次揭示NSCS-EXOS通过转移VEGF-A和促进微血管再生和组织愈合具有对SCMEC的促血管生成作用的研究,表明NSCS-EXOS可以成为促进SCI功能恢复的有前途的治疗生物制造。

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