Nerve root magnetic stimulation regulates the synaptic plasticity of injured spinal cord by ascending sensory pathway.

IF 5.9 2区 医学 Q2 CELL BIOLOGY
Neural Regeneration Research Pub Date : 2025-12-01 Epub Date: 2025-01-13 DOI:10.4103/NRR.NRR-D-24-00628
Ya Zheng, Lingyun Cao, Dan Zhao, Qi Yang, Chunya Gu, Yeran Mao, Guangyue Zhu, Yulian Zhu, Jing Zhao, Dongsheng Xu
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引用次数: 0

Abstract

JOURNAL/nrgr/04.03/01300535-202512000-00026/figure1/v/2025-01-31T122243Z/r/image-tiff Promoting synaptic plasticity and inducing functional reorganization of residual nerve fibers hold clinical significance for restoring motor function following spinal cord injury. Neuromagnetic stimulation targeting the nerve roots has been shown to improve motor function by enhancing nerve conduction in the injured spinal cord and restoring the synaptic ultrastructure of both the sensory and motor cortex. However, our understanding of the neurophysiological mechanisms by which nerve root magnetic stimulation facilitates motor function recovery in the spinal cord is limited, and its role in neuroplasticity remains unclear. In this study, we established a model of spinal cord injury in adult male Sprague-Dawley rats by applying moderate compression at the T10 vertebra. We then performed magnetic stimulation on the L5 nerve root for 3 weeks, beginning on day 3 post-injury. At day 22 post-injury, we observed that nerve root magnetic stimulation downregulated the level of interleukin-6 in the injured spinal cord tissue of rats. Additionally, this treatment reduced neuronal damage and glial scar formation, and increased the number of neurons in the injured spinal cord. Furthermore, nerve root magnetic stimulation decreased the levels of acetylcholine, norepinephrine, and dopamine, and increased the expression of synaptic plasticity-related mRNA and proteins PSD95, GAP43, and Synapsin II. Taken together, these results showed that nerve root magnetic stimulation alleviated neuronal damage in the injured spinal cord, regulated synaptic plasticity, and suppressed inflammatory responses. These findings provide laboratory evidence for the clinical application of nerve root magnetic stimulation in the treatment of spinal cord injury.

神经根磁刺激通过上行感觉通路调节损伤脊髓突触可塑性。
促进突触可塑性,诱导残神经纤维功能重组,对脊髓损伤后运动功能恢复具有临床意义。针对神经根的神经磁刺激已被证明可以通过增强损伤脊髓的神经传导和恢复感觉和运动皮层的突触超微结构来改善运动功能。然而,我们对神经根磁刺激促进脊髓运动功能恢复的神经生理机制的理解有限,其在神经可塑性中的作用仍不清楚。在这项研究中,我们建立了成年雄性Sprague-Dawley大鼠的脊髓损伤模型,在T10椎体处施加适度压迫。然后,从损伤后第3天开始,我们对L5神经根进行了3周的磁刺激。在损伤后第22天,我们观察到神经根磁刺激可下调损伤大鼠脊髓组织中白细胞介素-6的水平。此外,这种治疗减少了神经元损伤和胶质瘢痕的形成,并增加了受损脊髓中的神经元数量。此外,神经根磁刺激降低了乙酰胆碱、去甲肾上腺素和多巴胺的水平,增加了突触可塑性相关mRNA和蛋白PSD95、GAP43和Synapsin II的表达。综上所述,神经根磁刺激可减轻脊髓损伤神经元损伤,调节突触可塑性,抑制炎症反应。这些结果为神经根磁刺激治疗脊髓损伤的临床应用提供了实验依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Neural Regeneration Research
Neural Regeneration Research CELL BIOLOGY-NEUROSCIENCES
CiteScore
8.00
自引率
9.80%
发文量
515
审稿时长
1.0 months
期刊介绍: Neural Regeneration Research (NRR) is the Open Access journal specializing in neural regeneration and indexed by SCI-E and PubMed. The journal is committed to publishing articles on basic pathobiology of injury, repair and protection to the nervous system, while considering preclinical and clinical trials targeted at improving traumatically injuried patients and patients with neurodegenerative diseases.
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