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Application of bioactive hydrogels combined with dental pulp stem cells for the repair of large gap peripheral nerve injuries

机译:生物活性水凝胶结合牙髓干细胞的应用,修复大间隙周围神经损伤

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Due to the limitations in autogenous nerve grafting or Schwann cell transplantation, large gap peripheral nerve injuries require a bridging strategy supported by nerve conduit. Cell based therapies provide a novel treatment for peripheral nerve injuries. In this study, we first experimented an optimal scaffold material synthesis protocol, from where we selected the 10% GFD formula (10% GelMA hydrogel, recombinant human basic fibroblast growth factor and dental pulp stem cells (DPSCs)) to fill a cellulose/soy protein isolate composite membrane (CSM) tube to construct a third generation of nerve regeneration conduit, CSM-GFD. Then this CSM-GFD conduit was applied to repair a 15-mm long defect of sciatic nerve in a rat model. After 12 week post implant surgery, at histologic level, we found CSM-GFD conduit could regenerate nerve tissue like neuron and Schwann like nerve cells and myelinated nerve fibers. At physical level, CSM-GFD achieved functional recovery assessed by a sciatic functional index study. In both levels, CSM-GFD performed like what gold standard, the nerve autograft, could do. Further, we unveiled that almost all newly formed nerve tissue at defect site was originated from the direct differentiation of exogeneous DPSCs in CSM-GFD. In conclusion, we claimed that this third-generation nerve regeneration conduit, CSM-GFD, could be a promising tissue engineering approach to replace the conventional nerve autograft to treat the large gap defect in peripheral nerve injuries.
机译:由于自身神经移植或施万细胞移植的局限性,大型间隙周围神经损伤需要神经管道支撑的桥接策略。基于细胞的疗法为周围神经损伤提供了一种新颖的治疗方法。在这项研究中,我们首先尝试了一种最佳的支架材料合成方案,从我们选择10%GFD公式(10%GELMA水凝胶,重组人类碱性成纤维细胞生长因子和牙髓干细胞(DPSC))以填充纤维素/大豆蛋白质分离物复合膜(CSM)管构建第三代神经再生导管,CSM-GFD。然后应用该CSM-GFD导管来修复大鼠模型中的坐骨神经的15毫米长的缺陷。在12周后植入物手术后,在组织学水平下,我们发现CSM-GFD导管可以再生神经组织,如神经细胞和肌肉神经纤维等神经细胞。在物理水平下,CSM-GFD实现了通过坐骨功能指数研究评估的功能恢复。在两个级别中,CSM-GFD如金标准,神经自动移植物可以做。此外,我们推出了几乎所有新形成的缺陷部位的神经组织源自CSM-GFD中的异质DPSC的直接分化。总之,我们声称,这一第三代神经再生导管CSM-GFD可能是一种有前途的组织工程方法,以取代常规神经自体移植以治疗周围神经损伤中的大间隙缺陷。

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