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活体评估细胞对导电聚合物涂覆碳纤维微纤维修复脊髓损伤的反应。

Intravital Assessment of Cells Responses to Conducting Polymer-Coated Carbon Microfibres for Bridging Spinal Cord Injury.

机构信息

Institut des Neurosciences de la Timone (UMR7289), Aix-Marseille Université and Centre National de la Recherche Scientifique, 13005 Marseille, France.

Centre Européen de Recherche en Imagerie Médicale, Aix-Marseille Université, 13005 Marseille, France.

出版信息

Cells. 2021 Jan 5;10(1):73. doi: 10.3390/cells10010073.

Abstract

The extension of the lesion following spinal cord injury (SCI) poses a major challenge for regenerating axons, which must grow across several centimetres of damaged tissue in the absence of ordered guidance cues. Biofunctionalized electroconducting microfibres (MFs) that provide biochemical signals, as well as electrical and mechanical cues, offer a promising therapeutic approach to help axons overcome this blind journey. We used poly(3,4-ethylenedioxythiophene)-coated carbon MFs functionalized with cell adhesion molecules and growth factors to bridge the spinal cord after a partial unilateral dorsal quadrant lesion (PUDQL) in mice and followed cellular responses by intravital two-photon (2P) imaging through a spinal glass window. Thy1-CFP//LysM-EGFP//CD11c-EYFP triple transgenic reporter animals allowed real time simultaneous monitoring of axons, myeloid cells and microglial cells in the vicinity of the implanted MFs. MF biocompatibility was confirmed by the absence of inflammatory storm after implantation. We found that the sprouting of sensory axons was significantly accelerated by the implantation of functionalized MFs after PUDQL. Their implantation produced better axon alignment compared to random and misrouted axon regeneration that occurred in the absence of MF, with a most striking effect occurring two months after injury. Importantly, we observed differences in the intensity and composition of the innate immune response in comparison to PUDQL-only animals. A significant decrease of immune cell density was found in MF-implanted mice one month after lesion along with a higher ratio of monocyte-derived dendritic cells whose differentiation was accelerated. Therefore, functionalized carbon MFs promote the beneficial immune responses required for neural tissue repair, providing an encouraging strategy for SCI management.

摘要

脊髓损伤(SCI)后的病变延伸对再生轴突构成了重大挑战,因为在缺乏有序导向线索的情况下,轴突必须穿过几厘米长的受损组织。生物功能化的导电微纤维(MFs)提供生化信号以及电和机械线索,为帮助轴突克服这种盲目旅程提供了一种很有前途的治疗方法。我们使用聚(3,4-亚乙基二氧噻吩)涂覆的碳 MFs 功能化细胞粘附分子和生长因子,以桥接小鼠部分单侧背象限损伤(PUDQL)后的脊髓,并通过脊髓玻璃窗口进行体内双光子(2P)成像来跟踪细胞反应。Thy1-CFP//LysM-EGFP//CD11c-EYFP 三重转基因报告动物允许实时同时监测植入 MFs 附近的轴突、髓样细胞和小胶质细胞。植入后没有炎症风暴证实了 MF 的生物相容性。我们发现,PUDQL 后植入功能化 MF 可显著加速感觉轴突的发芽。与没有 MF 时发生的随机和错误导向的轴突再生相比,MF 的植入产生了更好的轴突对齐,在损伤后两个月效果最为显著。重要的是,与仅 PUDQL 动物相比,我们观察到固有免疫反应的强度和组成存在差异。与损伤后一个月的 PUDQL 动物相比,在植入 MF 的小鼠中发现免疫细胞密度显著降低,单核细胞衍生的树突状细胞的比例更高,其分化得到加速。因此,功能化碳 MFs 促进了神经组织修复所需的有益免疫反应,为 SCI 管理提供了令人鼓舞的策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7ab6/7824803/2fad3c04eb5a/cells-10-00073-g001.jpg

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