The effect of repetitive magnetic stimulation on neuronal apoptosis and PI3K/Akt protein expression in rats with incomplete spinal cord injury.

IF 2.1 3区 医学 Q3 NEUROSCIENCES Journal of neurophysiology Pub Date : 2024-10-01 Epub Date: 2024-08-28 DOI:10.1152/jn.00210.2024
Junhong Su, Fujian Zhou, Mengxuan Hu, Qingqin Xu, Ying Huang, Shi Chen, Hongwei Zhou, Hemu Chen
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Abstract

The pathological and physiological process of spinal cord injury is complex, and there is currently no effective treatment method. Magnetic stimulation is an emerging electromagnetic therapy method in recent years, and studies have shown its potential to reduce cell apoptosis. This study used an improved Allen's method to replicate an incomplete spinal cord injury rat model, and repetitive magnetic stimulation (rMS) intervention was performed on the rats for 21 days. The research plan consists of two parts. The first part aims to observe the effects of rMS on motor function and neuronal cell apoptosis in rats. The Basso-Beattie-Bresnahan (BBB) score results indicate that rMS promotes the recovery of motor function in rats; H&E staining showed that rMS improved spinal cord structural damage and inflammatory infiltration; TUNEL and NeuN staining suggest that rMS can reduce cell apoptosis and promote neuronal cell survival. The second part aims to explore the mechanism of action of rMS. Immunofluorescence staining showed that after rMS intervention, the positive counts of PI3K and Akt increased, whereas the positive counts of caspase-3 decreased. Western blot showed that after rMS intervention, the expression of phospho-phosphatidylinositol-3 kinase (p-PI3K)/PI3K, phospho (p)-Akt/Akt, and Bcl-2 increased, whereas the expression of Bcl-2-associated X protein (Bax) and caspase-3 decreased. In summary, rMS can significantly reduce cell apoptosis in the damaged spinal cord and promote neuronal cell survival. Its mechanism of action may be related to promoting the expression of PI3K/Akt pathway proteins, upregulating the antiapoptotic protein Bcl-2, downregulating the proapoptotic protein Bax, and thereby inhibiting the expression of apoptotic protein caspase-3. NEW & NOTEWORTHY Spinal cord injury is a serious disabling central nervous system disease. Recently, research on magnetic stimulation therapy for spinal cord injury has been increasing, and its potential has gradually attracted the attention of experts. This study found that repetitive magnetic stimulation (rMS) can improve motor function and reduce neuronal apoptosis in spinal cord injury rats. The mechanism may be related to increasing the expression of phosphatidylinositol-3 kinase (PI3K)/Akt protein, thereby inhibiting cell apoptosis and promoting neuronal survival.

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重复磁刺激对不完全脊髓损伤大鼠神经元凋亡和 PI3K/Akt 蛋白表达的影响
脊髓损伤的病理生理过程复杂,目前尚无有效的治疗方法。磁刺激是近年来新兴的一种电磁治疗方法,研究表明其具有减少细胞凋亡的潜力。本研究采用改进的艾伦法复制不完全脊髓损伤大鼠模型,对大鼠进行为期21天的重复磁刺激干预。研究计划由两部分组成。第一部分旨在观察重复磁刺激对大鼠运动功能和神经细胞凋亡的影响。BBB评分结果表明,rMS能促进大鼠运动功能的恢复;H&E染色显示,rMS能改善脊髓结构损伤和炎症浸润;TUNEL和NeuN染色表明,rMS能减少细胞凋亡,促进神经细胞存活。第二部分旨在探索 rMS 的作用机制。免疫荧光染色显示,rMS干预后,PI3K和Akt阳性细胞数增加,Caspase-3阳性细胞数减少。Western blot显示,rMS干预后,p-PI3K/PI3K、p-Akt/Akt和Bcl-2的表达增加,而Bax和Caspase-3的表达减少。总之,rMS能明显减少受损脊髓中的细胞凋亡,促进神经细胞存活。其作用机制可能与促进 PI3K/Akt 通路蛋白的表达、上调抗凋亡蛋白 Bcl-2、下调促凋亡蛋白 Bax,从而抑制凋亡蛋白 Caspase-3 的表达有关。
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来源期刊
Journal of neurophysiology
Journal of neurophysiology 医学-神经科学
CiteScore
4.80
自引率
8.00%
发文量
255
审稿时长
2-3 weeks
期刊介绍: The Journal of Neurophysiology publishes original articles on the function of the nervous system. All levels of function are included, from the membrane and cell to systems and behavior. Experimental approaches include molecular neurobiology, cell culture and slice preparations, membrane physiology, developmental neurobiology, functional neuroanatomy, neurochemistry, neuropharmacology, systems electrophysiology, imaging and mapping techniques, and behavioral analysis. Experimental preparations may be invertebrate or vertebrate species, including humans. Theoretical studies are acceptable if they are tied closely to the interpretation of experimental data and elucidate principles of broad interest.
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