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Human dental pulp-derived stem cells promote locomotor recovery after complete transection of the rat spinal cord by multiple neuro-regenerative mechanisms

机译:人牙髓来源的干细胞通过多种神经再生机制促进大鼠脊髓完全横断后的运动恢复

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摘要

Spinal cord injury (SCI) often leads to persistent functional deficits due to loss of neurons and glia and to limited axonal regeneration after injury. Here we report that transplantation of human dental pulp stem cells into the completely transected adult rat spinal cord resulted in marked recovery of hind limb locomotor functions. Transplantation of human bone marrow stromal cells or skin-derived fibroblasts led to substantially less recovery of locomotor function. The human dental pulp stem cells exhibited three major neuroregenerative activities. First, they inhibited the SCI-induced apoptosis of neurons, astrocytes, and oligodendrocytes, which improved the preservation of neuronal filaments and myelin sheaths. Second, they promoted the regeneration of transected axons by directly inhibiting multiple axon growth inhibitors, including chondroitin sulfate proteoglycan and myelin-associated glycoprotein, via paracrine mechanisms. Last, they replaced lost cells by differentiating into mature oligodendrocytes under the extreme conditions of SCI. Our data demonstrate that tooth-derived stem cells may provide therapeutic benefits for treating SCI through both cell-autonomous and paracrine neuroregenerative activities.
机译:脊髓损伤(SCI)通常会由于神经元和神经胶质的丧失而导致持续的功能缺陷,并导致损伤后轴突再生受限。在这里我们报告人类牙髓干细胞移植到完全横断的成年大鼠脊髓中导致后肢运动功能的明显恢复。人骨髓基质细胞或皮肤来源的成纤维细胞的移植导致运动功能的恢复显着降低。人牙髓干细胞表现出三种主要的神经再生活性。首先,它们抑制了SCI诱导的神经元,星形胶质细胞和少突胶质细胞的凋亡,从而改善了神经元细丝和髓鞘的保存。其次,他们通过旁分泌机制直接抑制多种轴突生长抑制剂,包括硫酸软骨素蛋白聚糖和髓磷脂相关糖蛋白,从而促进了横突轴突的再生。最后,他们通过在SCI的极端条件下分化为成熟的少突胶质细胞来替换丢失的细胞。我们的数据表明,牙齿干细胞可通过细胞自主和旁分泌神经再生活性为治疗SCI提供治疗益处。

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