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本文引用的文献

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Neural activity promotes long-distance, target-specific regeneration of adult retinal axons.神经活动促进成年视网膜轴突的长距离、靶向特异性再生。
Nat Neurosci. 2016 Aug;19(8):1073-84. doi: 10.1038/nn.4340. Epub 2016 Jul 11.
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Competition with Primary Sensory Afferents Drives Remodeling of Corticospinal Axons in Mature Spinal Motor Circuits.与初级感觉传入神经的竞争驱动成熟脊髓运动回路中皮质脊髓轴突的重塑。
J Neurosci. 2016 Jan 6;36(1):193-203. doi: 10.1523/JNEUROSCI.3441-15.2016.
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Neuronal activity regulates remyelination via glutamate signalling to oligodendrocyte progenitors.神经元活动通过谷氨酸信号传导至少突胶质前体细胞来调节髓鞘再生。
Nat Commun. 2015 Oct 6;6:8518. doi: 10.1038/ncomms9518.
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Limited Functional Effects of Subacute Syngeneic Bone Marrow Stromal Cell Transplantation After Rat Spinal Cord Contusion Injury.大鼠脊髓挫伤损伤后亚急性同基因骨髓基质细胞移植的有限功能作用
Cell Transplant. 2016;25(1):125-39. doi: 10.3727/096368915X687679. Epub 2015 Mar 25.
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Muscle spindle feedback directs locomotor recovery and circuit reorganization after spinal cord injury.肌梭反馈指导脊髓损伤后的运动恢复和回路重组。
Cell. 2014 Dec 18;159(7):1626-39. doi: 10.1016/j.cell.2014.11.019.
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Restoring walking after spinal cord injury: operant conditioning of spinal reflexes can help.脊髓损伤后恢复行走能力:脊髓反射的操作性条件反射可能会有所帮助。
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Effect of combined treadmill training and magnetic stimulation on spasticity and gait impairments after cervical spinal cord injury.跑步机训练与磁刺激相结合对颈脊髓损伤后痉挛和步态障碍的影响。
J Neurotrauma. 2014 Jun 15;31(12):1088-106. doi: 10.1089/neu.2013.3096. Epub 2014 Apr 30.
8
PI3K-GSK3 signalling regulates mammalian axon regeneration by inducing the expression of Smad1.PI3K-GSK3 信号通路通过诱导 Smad1 的表达来调节哺乳动物轴突再生。
Nat Commun. 2013;4:2690. doi: 10.1038/ncomms3690.
9
Differential effects of activity dependent treatments on axonal regeneration and neuropathic pain after peripheral nerve injury.活动依赖性治疗对外周神经损伤后轴突再生和神经病理性疼痛的差异影响。
Exp Neurol. 2013 Feb;240:157-67. doi: 10.1016/j.expneurol.2012.11.023. Epub 2012 Nov 30.
10
Optimization of adult sensory neuron electroporation to study mechanisms of neurite growth.优化成年感觉神经元电穿孔技术以研究轴突生长的机制。
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去极化和电刺激可增强脊髓损伤后的体外和体内感觉轴突生长。

Depolarization and electrical stimulation enhance in vitro and in vivo sensory axon growth after spinal cord injury.

机构信息

Spinal Cord Injury Center, Heidelberg University Hospital, Schlierbacher Landstr. 200A, 69118 Heidelberg, Germany.

Neuroscience and Mental Health Institute, Faculty of Medicine and Dentistry and Department of Physical Therapy, Faculty of Rehabilitation Medicine, University of Alberta, 3-87 Corbett Hall, Edmonton, Alberta T6G 2G4, Canada.

出版信息

Exp Neurol. 2018 Feb;300:247-258. doi: 10.1016/j.expneurol.2017.11.011. Epub 2017 Nov 26.

DOI:10.1016/j.expneurol.2017.11.011
PMID:29183676
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5752127/
Abstract

Activity dependent plasticity is a key mechanism for the central nervous system (CNS) to adapt to its environment. Whether neuronal activity also influences axonal regeneration in the injured CNS, and whether electrical stimulation (ES) can activate regenerative programs in the injured CNS remains incompletely understood. Using KCl-induced depolarization, in vivo ES followed by ex-vivo neurite growth assays and ES after spinal cord lesions and cell grafting, we aimed to identify parameters important for ES-enhanced neurite growth and axonal regeneration. Using cultures of sensory neurons, neurite growth was analyzed after KCl-induced depolarization for 1-72h. Increased neurite growth was detected after short-term stimulation and after longer stimulation if a sufficient delay between stimulation and growth measurements was provided. After in vivo ES (20Hz, 2× motor threshold, 0.2ms, 1h) of the intact sciatic nerve in adult Fischer344 rats, sensory neurons showed a 2-fold increase in in vitro neurite length one week later compared to sham animals, an effect not observed one day after ES. Longer ES (7h) and repeated ES (7days, 1h each) also increased growth by 56-67% one week later, but provided no additional benefit. In vivo growth of dorsal column sensory axons into a graft of bone marrow stromal cells 4weeks after a cervical spinal cord lesion was also enhanced with a single post-injury 1h ES of the intact sciatic nerve and was also observed after repeated ES without inducing pain-like behavior. While ES did not result in sensory functional recovery, our data indicate that ES has time-dependent influences on the regenerative capacity of sensory neurons and might further enhance axonal regeneration in combinatorial approaches after SCI.

摘要

活动依赖性可塑性是中枢神经系统(CNS)适应其环境的关键机制。神经元活动是否也会影响损伤的中枢神经系统中的轴突再生,以及电刺激(ES)是否可以激活损伤的中枢神经系统中的再生程序,目前仍不完全清楚。我们使用 KCl 诱导的去极化,在体内进行 ES 后进行体外神经突生长测定,以及在脊髓损伤和细胞移植后进行 ES,旨在确定对 ES 增强神经突生长和轴突再生重要的参数。使用感觉神经元培养物,在 KCl 诱导的去极化后 1-72 小时分析神经突生长。在短期刺激后检测到神经突生长增加,如果在刺激和生长测量之间提供足够的延迟,则在较长时间的刺激后也会检测到神经突生长增加。在成年 Fischer344 大鼠完整坐骨神经的体内 ES(20Hz,2×运动阈值,0.2ms,1h)后,与假手术动物相比,一周后感觉神经元的体外神经突长度增加了 2 倍,而在 ES 后一天则未观察到这种效果。较长的 ES(7h)和重复 ES(7 天,每次 1h)也使一周后的生长增加了 56-67%,但没有提供额外的益处。在颈椎脊髓损伤后 4 周,背柱感觉轴突在骨髓基质细胞移植中生长也通过单次损伤后 1h 的完整坐骨神经 ES 得到增强,并且在不引起痛觉行为的情况下重复 ES 后也观察到了这种情况。虽然 ES 没有导致感觉功能恢复,但我们的数据表明 ES 对感觉神经元的再生能力有时间依赖性影响,并且可能在 SCI 后的组合方法中进一步增强轴突再生。