Nano Electronic Center of Excellence, Nano Bio Electronic Devices Lab, School of Electrical and Computer Engineering, College of Engineering, University of Tehran, P.O. Box 14395/515, Tehran, Iran; School of Mechanical Engineering, College of Engineering, University of Tehran, Tehran 11155-4563, Iran; Nano Electronic Center of Excellence, Thin Film and Nanoelectronic Lab, School of Electrical and Computer Engineering, College of Engineering, University of Tehran, P.O. Box 14395/515, Tehran, Iran.
School of Mechanical Engineering, College of Engineering, University of Tehran, Tehran 11155-4563, Iran.
Ultrason Sonochem. 2018 Mar;41:619-625. doi: 10.1016/j.ultsonch.2017.10.030. Epub 2017 Oct 31.
Sonoporation is applied to enhance the permeability of the cell to bioactive materials by employing the acoustic cavitation of microbubbles. This phenomena would be helpful in molecular biology, delivery of large molecules into the cells and gene therapy. Many methods have been applied to monitor the biological effects and trace of sonoporation on the cells such as scanning/transmission electron microscopy, confocal imaging and flow cytometry. Here, we monitored the effect of sonoporation on the cells using electrochemical method with an integrated three electrode system. Electrochemical responses of stimulated cells, compared to flow cytometry and electron microscopy results, presented different patterns of sonoporation in the cells detectable by cyclic voltammetry. In addition, confocal microscopy from actin stress fibers and young's modulus measured by AFM revealed the correlation of cell mechanics and amount of induced sonopores in the cells. This method could be applied as a new trend in cellular mechanochemical studies.
声孔作用通过利用微泡的声空化来增强细胞对生物活性物质的通透性。这一现象在分子生物学、大分子进入细胞的输送和基因治疗中很有帮助。已经有许多方法被应用于监测声孔作用对细胞的生物学效应和示踪,如扫描/透射电子显微镜、共聚焦成像和流式细胞术。在这里,我们使用集成的三电极系统的电化学方法来监测声孔作用对细胞的影响。与流式细胞术和电子显微镜结果相比,刺激细胞的电化学响应呈现出通过循环伏安法可检测到的、不同的声孔作用在细胞中的模式。此外,来自肌动蛋白应激纤维的共聚焦显微镜和由 AFM 测量的杨氏模量揭示了细胞力学与细胞中诱导的声孔数量之间的相关性。这种方法可以作为细胞力化学研究的新趋势。