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Immuno Nanoparticles Integrated Electrical Control of Targeted Cancer Cell Development Using Whole Cell Bioelectronic Device

机译:使用全细胞生物电子装置的靶向癌细胞发育的免疫纳米粒子综合电控制

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摘要

Electrical properties of cells determine most of the cellular functions, particularly ones which occur in the cell’s membrane. Manipulation of these electrical properties may provide a powerful electrotherapy option for the treatment of cancer as cancerous cells have been shown to be more electronegative than normal proliferating cells. Previously, we used an electrical impedance sensing system (EIS) to explore the responses of cancerous SKOV3 cells and normal HUVEC cells to low intensity (u3c2 V/cm) AC electric fields, determining that the optimal frequency for SKOV3 proliferation arrest was 200 kHz, without harming the non-cancerous HUVECs. In this study, to determine if these effects are cell type dependant, human breast adenocarcinoma cells (MCF7) were subjected to a range of frequencies (50 kHz–2 MHz) similar to the previously tested SKOV3. For the MCF7, an optimal frequency of 100 kHz was determined using the EIS, indicating a higher sensitivity towards the applied field. Further experiments specifically targeting the two types of cancer cells using HER2 antibody functionalized gold nanoparticles (HER2-AuNPs) were performed to determine if enhanced electric field strength can be induced via the application of nanoparticles, consequently leading to the killing of the cancerous cells without affecting non cancerous HUVECs and MCF10a providing a platform for the development of a non-invasive cancer treatment without any harmful side effects. The EIS was used to monitor the real-time consequences on cellular viability and a noticeable decrease in the growth profile of the MCF7 was observed with the application of the HER2-AuNPs and the electric fields indicating specific inhibitory effects on dividing cells in culture. To further understand the effects of the externally applied field to the cells, an Annexin V/EthD-III assay was performed to determine the cell death mechanism indicating apoptosis. The zeta potential of the SKOV3 and the MCF7 before and after incorporation of the HER2-AuNPs was also obtained indicating a decrease in zeta potential with the incorporation of the nanoparticles. The outcome of this research will improve our fundamental understanding of the behavior of cancer cells and define optimal parameters of electrotherapy for clinical and drug delivery applications.
机译:细胞的电特性决定了大多数细胞功能,特别是细胞膜中发生的功能。操纵这些电特性可以为癌症的治疗提供强大的电疗选择,因为已证明癌细胞比正常的增殖细胞具有更大的负电性。以前,我们使用电阻抗感应系统(EIS)探索癌性SKOV3细胞和正常HUVEC细胞对低强度( u3c2 V / cm)交流电场的反应,确定SKOV3增殖停止的最佳频率为200 kHz ,而不会损害非癌性HUVEC。在这项研究中,为了确定这些作用是否依赖于细胞类型,将人类乳腺腺癌细胞(MCF7)置于与先前测试的SKOV3类似的频率范围(50 kHz–2 MHz)。对于MCF7,使用EIS确定了100 kHz的最佳频率,这表明对应用场的灵敏度更高。使用HER2抗体功能化的金纳米颗粒(HER2-AuNPs)进行了针对两种癌细胞的进一步实验,以确定是否可以通过应用纳米颗粒来诱导增强的电场强度,从而导致杀死癌细胞而不会影响非癌性HUVEC和MCF10a提供了开发无侵害性癌症治疗方法且无任何有害副作用的平台。 EIS用于监测对细胞生存力的实时影响,并且通过应用HER2-AuNPs和电场表明MCF7的生长情况明显下降,电场指示了对培养中分裂细胞的特异性抑制作用。为了进一步了解外加电场对细胞的影响,进行了膜联蛋白V / EthD-III分析以确定细胞死亡机制,表明细胞凋亡。还获得了在掺入HER2-AuNP之前和之后的SKOV3和MCF7的ζ电势,表明随着纳米颗粒的掺入,ζ电势降低。这项研究的结果将改善我们对癌细胞行为的基本了解,并为临床和药物输送应用定义电疗法的最佳参数。

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