首页> 外文期刊>International Journal of Nanomedicine >Exposure to high-frequency electromagnetic field triggers rapid uptake of large nanosphere clusters by pheochromocytoma cells
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Exposure to high-frequency electromagnetic field triggers rapid uptake of large nanosphere clusters by pheochromocytoma cells

机译:暴露于高频电磁场会触发嗜铬细胞瘤细胞迅速吸收大型纳米球簇

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Background: Effects of man-made electromagnetic fields (EMF) on living organisms potentially include transient and permanent changes in cell behaviour, physiology and morphology. At present, these EMF-induced effects are poorly defined, yet their understanding may provide important insights into consequences of uncontrolled ( e.g ., environmental) as well as intentional ( e.g ., therapeutic or diagnostic) exposure of biota to EMFs. In this work, for the first time, we study mechanisms by which a high frequency (18 GHz) EMF radiation affects the physiology of membrane transport in pheochromocytoma PC 12, a convenient model system for neurotoxicological and membrane transport studies. Methods and results: Suspensions of the PC 12 cells were subjected to three consecutive cycles of 30s EMF treatment with a specific absorption rate (SAR) of 1.17 kW kg-1, with cells cooled between exposures to reduce bulk dielectric heating. The EMF exposure resulted in a transient increase in membrane permeability for 9 min in up to 90 % of the treated cells, as demonstrated by rapid internalisation of silica nanospheres (diameter d ≈ 23.5 nm) and their clusters ( d ≈ 63 nm). In contrast, the PC 12 cells that received an equivalent bulk heat treatment behaved similar to the untreated controls, showing lack to minimal nanosphere uptake of approximately 1–2 %. Morphology and growth of the EMF treated cells were not altered, indicating that the PC 12 cells were able to remain viable after the EMF exposure. The metabolic activity of EMF treated PC 12 cells was similar to that of the heat treated and control samples, with no difference in the total protein concentration and lactate dehydrogenase (LDH) release between these groups. Conclusion: These results provide new insights into the mechanisms of EMF-induced biological activity in mammalian cells, suggesting a possible use of EMFs to facilitate efficient transport of biomolecules, dyes and tracers, and genetic material across cell membrane in drug delivery and gene therapy, where permanent permeabilisation or cell death is undesirable.
机译:背景:人造电磁场(EMF)对活生物体的影响可能包括细胞行为,生理和形态的瞬时和永久性变化。目前,这些由EMF引起的作用的定义不明确,但是它们的理解可能提供重要的见解,以了解生物群不受EMF控制(例如环境)以及有意(例如治疗或诊断)暴露的后果。在这项工作中,我们首次研究了高频(18 GHz)EMF辐射影响嗜铬细胞瘤PC 12中膜运输生理的机制,这是一种用于神经毒理学和膜运输研究的便捷模型系统。方法和结果:对PC 12电池的悬浮液进行三个连续周期的30s EMF处理,比吸收率(SAR)为1.17 kW kg-1,电池在两次曝光之间进行冷却以减少整体介电加热。 EMF暴露导致多达90%的处理过的细胞在9分钟内膜渗透性瞬时增加,这通过二氧化硅纳米球(直径d≈23.5 nm)及其簇(d≈63 nm)的快速内在化证明。相比之下,接受了等效的整体热处理的PC 12细胞的行为与未处理的对照相似,显示出纳米球的吸收不足至最小(约1-2%)。经EMF处理的细胞的形态和生长未改变,表明PC 12细胞在EMF暴露后能够保持活力。 EMF处理的PC 12细胞的代谢活性与热处理和对照样品的代谢活性相似,两组之间的总蛋白浓度和乳酸脱氢酶(LDH)释放无差异。结论:这些结果为了解EMF诱导的哺乳动物细胞生物学活性机制提供了新见解,表明在药物输送和基因治疗中可能利用EMF促进生物分子,染料和示踪剂以及遗传物质跨细胞膜的有效运输,不希望永久性透化或细胞死亡的地方。

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