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通过碳纳米管叉指电极电化学生成微泡来增加癌细胞的通透性和物质摄取量。

Electrochemical generation of microbubbles by carbon nanotube interdigital electrodes to increase the permeability and material uptakes of cancer cells.

机构信息

Nano Electronic Center of Excellence, Nano Bio Electronic Devices Lab, School of Electrical and Computer Engineering, University of Tehran , Tehran , Iran.

Nano Electronic Center of Excellence, Thin Film and Nanoelectronic Lab, School of Electrical and Computer Engineering, University of Tehran , Tehran , Iran.

出版信息

Drug Deliv. 2019 Dec;26(1):928-934. doi: 10.1080/10717544.2019.1662514.

Abstract

Artificial cavitation as a prerequisite of sonoporation, plays an important role on the ultrasound (US) assisted drug delivery systems. In this study, we have proposed a new method of microbubble (MB) generation by local electrolysis of the medium. An integrated interdigital array of three-electrode system was designed and patterned on a nickel-coated quartz substrate and then, a short DC electrical pulse was applied that consequently resulted in distributed generation of microbubbles at the periphery of the electrodes. Growth of the carbon nanotube (CNT) nanostructures on the surface of the electrodes approximately increased the number of generated microbubbles up to 7-fold and decreased their average size from ∼20 µm for bare to ∼7 µm for CNT electrodes. After optimizing the three-electrode system, biocompatibility assays of the CNT electrodes stimulated by DC electrical micropulses were conducted. Finally, the effect of the proposed method on the sonoporation efficiency and drug uptake of breast cells were assessed using cell cycle and Annexin V/PI flow cytometry analysis. These results show the potential of electrochemical generation of MBs by CNT electrodes as an easy, available and promising technique for artificial cavitation and ultrasound assisted drug delivery.

摘要

人工空化是声孔作用的前提,在超声(US)辅助药物输送系统中起着重要作用。在这项研究中,我们提出了一种通过局部介质电解产生微泡(MB)的新方法。设计并制作了一个集成的三电极系统叉指电极阵列在镀镍石英基底上,然后施加短的直流电脉冲,导致微泡在电极的外围分布生成。电极表面生长的碳纳米管(CNT)纳米结构使生成的微泡数量增加了约 7 倍,平均尺寸从裸电极的约 20µm 减小到 CNT 电极的约 7µm。对三电极系统进行优化后,通过直流电微脉冲刺激对 CNT 电极进行了生物相容性测试。最后,使用细胞周期和 Annexin V/PI 流式细胞术分析评估了该方法对乳腺癌细胞的声孔作用效率和药物摄取的影响。这些结果表明,通过 CNT 电极电化学产生 MB 作为人工空化和超声辅助药物输送的一种简单、可用和有前途的技术具有潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9bd3/6758649/de0850383ccd/IDRD_A_1662514_F0003_C.jpg

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