利用高脉冲磁场诱导胞吞作用,克服细胞膜屏障,提高化疗效率。

IF 1.6 4区 生物学 Q3 BIOLOGY
Electromagnetic Biology and Medicine Pub Date : 2021-07-03 Epub Date: 2021-05-12 DOI:10.1080/15368378.2021.1923026
Sajedeh Yadegari Dehkordi, Seyed Mohammad Firoozabadi, Mehdi Forouzandeh Moghadam, Zeinab Shankayi
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引用次数: 4

摘要

细胞膜作为一种屏障,阻止不渗透的药物进入细胞。最近的研究表明,利用磁场可以使分子克服细胞膜屏障。然而,膜渗透的机制尚不清楚。因此,我们利用高脉冲磁场评估了非永久性化疗药物博来霉素(CT)摄取的增加,并研究了内吞作用是否参与了这一过程。本研究将MCF-7细胞暴露于2.2 T强度、28脉冲和56脉冲不同次数、频率为1 Hz和10 Hz的磁场中,以研究该方法是否能促进博来霉素的细胞杀伤效率。通过将细胞暴露于三种内吞作用抑制剂,即氯丙嗪、染料木素和阿米洛利,测试了内吞作用作为一种可能的机制。我们的研究结果表明,根据不同的条件,磁场可以诱导不同的内吞作用途径。在10 Hz-28脉冲、10 Hz-56脉冲和1 Hz-56脉冲条件下,观察到网格蛋白介导的内吞作用。此外,在10 Hz磁场作用下,大鼠均能产生巨噬细胞,并且在所有磁场条件下均发生小泡介导的内吞作用。研究结果表明,高脉冲磁场在MCF-7细胞中产生不同的内吞作用途径,从而提高化疗药物的效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Endocytosis induction by high-pulsed magnetic fields to overcome cell membrane barrier and improve chemotherapy efficiency.

Cell membrane acts as a barrier to the entry of impermeable drugs into cells. Recent studies have suggested that using magnetic fields can enable molecules to overcome the cell membrane barrier. However, the mechanism of membrane permeabilization remains unclear. Therefore, we evaluated the increases in bleomycin (CT) uptake, a non-permanent chemotherapy agent, using high-pulsed magnetic fields and investigated whether endocytosis was involved in the process. This study exposed MCF-7 cells to magnetic fields (2.2 T strength, different number of 28 and 56 pulses, and frequency of 1 and 10 Hz) in order to investigate whether this approach could promote the cell-killing efficiency of bleomycin. The involvement of endocytosis as a possible mechanism was tested by exposing cells to three endocytosis inhibitors, namely chlorpromazine, genistein, and amiloride. Our results illustrated that magnetic fields, depending on their conditions, could induce different endocytosis pathways. In such conditions as 10 Hz-28 pulses, 10 Hz-56 pulses, and 1 Hz-56 pulse, clathrin-mediated endocytosis was observed. Moreover, macropinocytosis was induced by the 10 Hz magnetic field and caveolae-mediated endocytosis occurred in all the magnetic field conditions. The findings imply that high-pulsed magnetic fields generate different endocytosis pathways in the MCF-7 cells, thus increasing the efficiency of chemotherapy agents.

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来源期刊
CiteScore
3.60
自引率
11.80%
发文量
33
审稿时长
>12 weeks
期刊介绍: Aims & Scope: Electromagnetic Biology and Medicine, publishes peer-reviewed research articles on the biological effects and medical applications of non-ionizing electromagnetic fields (from extremely-low frequency to radiofrequency). Topic examples include in vitro and in vivo studies, epidemiological investigation, mechanism and mode of interaction between non-ionizing electromagnetic fields and biological systems. In addition to publishing original articles, the journal also publishes meeting summaries and reports, and reviews on selected topics.
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