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Effect of low frequency magnetic fields on the growth of MNP-treated HT29 colon cancer cells

机译:低频磁场对MNP处理HT29结肠癌细胞生长的影响

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Recent investigations have attempted to understand and exploit the impact of magnetic field-actuated internalized magnetic nanoparticles (MNPs) on the proliferation rate of cancer cells. Due to the complexity of the parameters governing magnetic field-exposure though, individual studies to date have raised contradictory results. In our approach we performed a comparative analysis of key parameters related to the cell exposure of cancer cells to magnetic field-actuated MNPs, and to the magnetic field, in order to better understand the factors affecting cellular responses to magnetic field-stimulated MNPs. We used magnetite MNPs with a hydrodynamic diameter of 100 nm and studied the proliferation rate of MNPs-treated versus untreated HT29 human colon cancer cells, exposed to either static or alternating low frequency magnetic fields with varying intensity (40-200 mT), frequency (0-8 Hz) and field gradient. All three parameters, field intensity, frequency, and field gradient affected the growth rate of cells, with or without internalized MNPs, as compared to control MNPs-untreated and magnetic field-untreated cells. We observed that the growth inhibitory effects induced by static and rotating magnetic fields were enhanced by pre-treating the cells with MNPs, while the growth promoting effects observed in alternating field-treated cells were weakened by MNPs. Compared to static, rotating magnetic fields of the same intensity induced a similar extend of cell growth inhibition, while alternating fields of varying intensity (70 or 100 mT) and frequency (0, 4 or 8 Hz) induced cell proliferation in a frequency-dependent manner. These results, highlighting the diverse effects of mode, intensity, and frequency of the magnetic field on cell growth, indicate that consistent and reproducible results can be achieved by controlling the complexity of the exposure of biological samples to MNPs and external magnetic fields, through monitoring crucial experimental parameters. We demons
机译:最近的研究已经试图了解和利用磁场致动的内化磁性纳米粒子(MNP)对癌细胞增殖率的影响。由于控制磁场曝光的参数的复杂性,但是迄今为止的个别研究提出了矛盾的结果。在我们的方法中,我们对癌细胞暴露于磁场驱动的MNP的细胞暴露和磁场进行了对比较分析,以更好地理解影响磁场刺激的MNP的细胞响应的因素。我们使用磁动力学直径为100nm的磁铁矿MNP,研究了MNPS处理的增殖率与未处理的HT29人结肠癌细胞,暴露于具有不同强度(40-200mT),频率(40-200mT)的静态或交替的低频磁场( 0-8 Hz)和场梯度。与控制MNPS-未处理和磁场 - 未处理的细胞相比,所有三个参数,场强度,频率和场梯度影响细胞的生长速率,有或没有内化的MNP。我们观察到通过用MNP预处理细胞来增强通过静态和旋转磁场引起的生长抑制作用,而在交替的现场处理的细胞中观察到的生长促进效果被MNP削弱。与静态,相同强度的旋转磁场相比诱导相似的细胞生长抑制延伸,而不同强度(70或100mt)和频率(0,4或8 Hz)诱导的细胞增殖在频率依赖性的交替场方式。这些结果,突出了磁场对细胞生长的模式,强度和频率的不同效果,表明通过控制生物样品暴露于MNP和外部磁场的复杂性,可以通过监测来实现一致和可重复的结果至关重要的实验参数。我们的恶魔

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