论文标题

一种新型的体外装置,可将诱导电磁场传递到细胞和组织培养物

A novel in vitro device to deliver induced electromagnetic fields to cell and tissue cultures

论文作者

Ravin, Rea, Cai, Teddy X., Pursley, Randall H., Garmendia-Cedillos, Marcial, Pohida, Tom, Freidlin, Raisa Z., Wang, Herui, Zhuang, Zhengping, Giles, Amber J., Williamson, Nathan H., Gilbert, Mark R., Basser, Peter J.

论文摘要

我们已经开发了一种新型的体外仪器,可以将中间频率(100-400 kHz),中等强度(最高和超过6.5 v/cm PK -PK)电场(EFS)(EFS)(EFS)(EFS)传递到使用螺旋螺旋螺旋中的诱导电磁场(EMF)产生的细胞和组织培养物。这些EFS的主要应用是一种新兴的癌症治疗方式。 Novocure Ltd.的体外研究报告说,中等频率(100-300 kHz),低振幅(1-3 v/cm)EFS,它们称为“肿瘤治疗场”(TTFields),对胶质细胞瘤多形(GBM)细胞具有抗溶作用作用。发现该作用随着EF幅度的增加而增加。尽管持续了理论,临床前和临床研究,但作用机理仍未完全理解。先前对“ TTFields”的体外研究已使用附着的,电容耦合的电极将EFS交替到细胞和组织培养物。这种接触交付的方法遭受了较差的EF曲线和导电加热,从而限制了应用EFS的持续时间和振幅。相比之下,我们的设备以非接触方式提供具有良好特征的径向轮廓的EF,从而消除了导电加热并实现热调节的EF递送。为了测试和演示我们的系统,我们用跨越0-6.5 V/cm PK -PK的EF振幅曲线生成了200 kHz EMF,并将它们应用于人类甲状腺细胞培养物72小时。我们观察到在低EF振幅(<4 v/cm)下细胞密度(<10%)的中度降低,并且在较高振幅(4-6.5 V/cm)下,细胞密度的降低较高,高达25%。我们的设备可以扩展到其他EF频率和振幅状态。对此设备的未来研究应有助于通过更好地隔离EFS的效果来就“ TTFields”作用的功效和机制进行持续的辩论。

We have developed a novel in vitro instrument that can deliver intermediate frequency (100 - 400 kHz), moderate intensity (up to and exceeding 6.5 V/cm pk-pk) electric fields (EFs) to cell and tissue cultures generated using induced electromagnetic fields (EMFs) in a solenoid coil. A major application of these EFs is as an emerging cancer treatment modality. In vitro studies by Novocure Ltd. reported that intermediate frequency (100 - 300 kHz), low amplitude (1 - 3 V/cm) EFs, which they called "Tumor Treating Fields" (TTFields), had an anti-mitotic effect on glioblastoma multiforme (GBM) cells. The effect was found to increase with increasing EF amplitude. Despite continued theoretical, preclinical, and clinical study, the mechanism of action remains incompletely understood. Previous in vitro studies of "TTFields" have used attached, capacitively coupled electrodes to deliver alternating EFs to cell and tissue cultures. This contacting delivery method suffers from a poorly characterized EF profile and conductive heating that limits the duration and amplitude of the applied EFs. In contrast, our device delivers EFs with a well-characterized radial profile in a non-contacting manner, eliminating conductive heating and enabling thermally regulated EF delivery. To test and demonstrate our system, we generated continuous 200 kHz EMF with an EF amplitude profile spanning 0 - 6.5 V/cm pk-pk and applied them to human thyroid cell cultures for 72 hours. We observed moderate reduction in cell density (< 10%) at low EF amplitudes (< 4 V/cm) and a greater reduction in cell density of up to 25% at higher amplitudes (4 - 6.5 V/cm). Our device can be extended to other EF frequency and amplitude regimes. Future studies with this device should contribute to the ongoing debate about the efficacy and mechanism(s) of action of "TTFields" by better isolating the effects of EFs.

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