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Extremely low frequency magnetic field protects injured spinal cord from the microglia- and iron-induced tissue damage

机译:极低的频率磁场保护受损脊髓免受小胶质细胞和铁诱导的组织损伤

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Spinal cord injury (SCI) is insult to the spinal cord, which results in loss of sensory and motor function below the level of injury. SCI results in both immediate mechanical damage and secondary tissue degeneration. Following traumatic insult, activated microglia release proinflammatory cytokines and excess iron due to hemorrhage, initiating oxidative stress that contributes to secondary degeneration. Literature suggests that benefits are visible with the reduction in concentration of iron and activated microglia in SCI. Magnetic field attenuates oxidative stress and promotes axonal regeneration in vitro and in vivo. The present study demonstrates the potential of extremely low frequency magnetic field to attenuate microglia-and iron-induced secondary injury in SCI rats. Complete transection of the spinal cord (T13 level) was performed in male Wistar rats and subsequently exposed to magnetic field (50 Hz, 17.96 mu T) for 2 h daily for 8 weeks. At the end of the study period, spinal cords were dissected to quantify microglia, macrophage, iron content and study the architecture of lesion site. A significant improvement in locomotion was observed in rats of the SCI + MF group as compared to those in the SCI group. Histology, immunohistochemistry and flow cytometry revealed significant reduction in lesion volume, microglia, macrophage, collagen tissue and iron content, whereas, a significantly higher vascular endothelial growth factor expression around the epicenter of the lesion in SCI + MF group as compared to SCI group. These novel findings suggest that exposure to ELF-MF reduces lesion volume, inflammation and iron content in addition to facilitation of angiogenesis following SCI.
机译:脊髓损伤(SCI)是对脊髓的侮辱,导致感觉和电机功能低于损伤水平的损失。 SCI导致立即机械损伤和次级组织变性。在创伤性损伤之后,由于出血,活化的微胶质细胞释放促炎细胞因子和过量的铁,引发有助于二次退化的氧化应激。文献表明,随着SCI中的铁和活化微胶质细胞浓度的降低,益处是可见的。磁场衰减氧化应激并在体外促进轴突再生。本研究证明了极低频率磁场的潜力,以衰减SCI大鼠的微胶质细胞和铁诱导的二次损伤。在雄性Wistar大鼠中进行脊髓(T13水平)的完全转化,随后每天暴露于磁场(50Hz,17.96μt)2小时,持续8周。在研究期结束时,解剖脊髓,以量化小胶质细胞,巨噬细胞,铁含量和研究病变部位的结构。与SCI组中的那些相比,在SCI + MF组大鼠中观察到运动的显着改善。组织学,免疫组织化学和流式细胞仪揭示了病变体积,小胶质细胞,巨噬细胞,胶原组织和铁含量的显着降低,而与SCI组相比,SCI + MF组的病变震中的显着更高的血管内皮生长因子表达。这些新颖的研究结果表明,除了促进SCI后的血管生成之外,暴露于ELF-MF还降低了病变体积,炎症和铁含量。

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