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脊髓损伤的多模态治疗:神经调节作用下的神经再生之剑。

Multimodal treatment for spinal cord injury: a sword of neuroregeneration upon neuromodulation.

作者信息

Zheng Ya, Mao Ye-Ran, Yuan Ti-Fei, Xu Dong-Sheng, Cheng Li-Ming

机构信息

Rehabilitation Section, Spine Surgery Division of Department of Orthopedics, Tongji Hospital Affiliated to Tongji University School of Medicine, Shanghai, China.

Shanghai Key Laboratory of Psychotic Disorders, Shanghai Mental Health Center, Shanghai Jiao Tong University School of Medicine, Shanghai; Co-innovation Center of Neuroregeneration, Nantong University, Nantong, Jiangsu Province, China.

出版信息

Neural Regen Res. 2020 Aug;15(8):1437-1450. doi: 10.4103/1673-5374.274332.

Abstract

Spinal cord injury is linked to the interruption of neural pathways, which results in irreversible neural dysfunction. Neural repair and neuroregeneration are critical goals and issues for rehabilitation in spinal cord injury, which require neural stem cell repair and multimodal neuromodulation techniques involving personalized rehabilitation strategies. Besides the involvement of endogenous stem cells in neurogenesis and neural repair, exogenous neural stem cell transplantation is an emerging effective method for repairing and replacing damaged tissues in central nervous system diseases. However, to ensure that endogenous or exogenous neural stem cells truly participate in neural repair following spinal cord injury, appropriate interventional measures (e.g., neuromodulation) should be adopted. Neuromodulation techniques, such as noninvasive magnetic stimulation and electrical stimulation, have been safely applied in many neuropsychiatric diseases. There is increasing evidence to suggest that neuromagnetic/electrical modulation promotes neuroregeneration and neural repair by affecting signaling in the nervous system; namely, by exciting, inhibiting, or regulating neuronal and neural network activities to improve motor function and motor learning following spinal cord injury. Several studies have indicated that fine motor skill rehabilitation training makes use of residual nerve fibers for collateral growth, encourages the formation of new synaptic connections to promote neural plasticity, and improves motor function recovery in patients with spinal cord injury. With the development of biomaterial technology and biomechanical engineering, several emerging treatments have been developed, such as robots, brain-computer interfaces, and nanomaterials. These treatments have the potential to help millions of patients suffering from motor dysfunction caused by spinal cord injury. However, large-scale clinical trials need to be conducted to validate their efficacy. This review evaluated the efficacy of neural stem cells and magnetic or electrical stimulation combined with rehabilitation training and intelligent therapies for spinal cord injury according to existing evidence, to build up a multimodal treatment strategy of spinal cord injury to enhance nerve repair and regeneration.

摘要

脊髓损伤与神经通路的中断有关,这会导致不可逆的神经功能障碍。神经修复和神经再生是脊髓损伤康复的关键目标和问题,这需要神经干细胞修复以及涉及个性化康复策略的多模式神经调节技术。除了内源性干细胞参与神经发生和神经修复外,外源性神经干细胞移植是修复和替换中枢神经系统疾病中受损组织的一种新兴有效方法。然而,为确保内源性或外源性神经干细胞在脊髓损伤后真正参与神经修复,应采取适当的干预措施(如神经调节)。非侵入性磁刺激和电刺激等神经调节技术已安全应用于许多神经精神疾病。越来越多的证据表明,神经磁/电调节通过影响神经系统中的信号传导来促进神经再生和神经修复;也就是说,通过兴奋、抑制或调节神经元和神经网络活动来改善脊髓损伤后的运动功能和运动学习。几项研究表明,精细运动技能康复训练利用残留神经纤维进行侧支生长,促进新突触连接的形成以促进神经可塑性,并改善脊髓损伤患者的运动功能恢复。随着生物材料技术和生物力学工程的发展,已经开发出几种新兴治疗方法,如机器人、脑机接口和纳米材料。这些治疗方法有可能帮助数百万患有脊髓损伤所致运动功能障碍的患者。然而,需要进行大规模临床试验来验证其疗效。本综述根据现有证据评估了神经干细胞以及磁刺激或电刺激联合康复训练和智能疗法对脊髓损伤的疗效,以建立脊髓损伤的多模式治疗策略,增强神经修复和再生。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bcf4/7059565/d3a93fca8e63/NRR-15-1437-g001.jpg

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