Lu Yingxian, Shi Yigong
Beijing Advanced Innovation Center for Structural Biology & Frontier Research Center for Biological Structure, Tsinghua-Peking Joint Center for Life Sciences, School of Life Sciences, Tsinghua University, Beijing 100084, China.
Beijing Advanced Innovation Center for Structural Biology & Frontier Research Center for Biological Structure, Tsinghua-Peking Joint Center for Life Sciences, School of Life Sciences, Tsinghua University, Beijing 100084, China; Westlake Laboratory of Life Sciences and Biomedicine, Xihu District, Hangzhou 310024, Zhejiang Province, China; Key Laboratory of Structural Biology of Zhejiang Province, School of Life Sciences, Westlake University, Institute of Biology, Westlake Institute for Advanced Study, 18 Shilongshan Road, Hangzhou 310024, Zhejiang Province, China.
Bioelectrochemistry. 2023 Dec;154:108554. doi: 10.1016/j.bioelechem.2023.108554. Epub 2023 Aug 28.
Electromagnetic (EM) signals are widely used in electronic instruments and biomedical systems and might have affected the human bodies surrounded by them. However, the interaction mechanism of EM signals with biological structures is poorly understood. We propose a micro-fabricated low-frequency EM stimulation lab-on-chip with three-dimensional interdigital electrodes for observation of cell lines with microscope. The field strength between the electrodes at various frequencies is estimated through simulation. An electric field strength of 4.45V/m is reached in the culture medium with a 10V, 10 kHz input signal. According to the simulation results, the high end of the applicable frequency range of the testbench is 3 MHz. A prototype is fabricated using full-wafer microfabrication techniques. The impedance of the prototype between 20 Hz and 30 MHz is characterized. Moreover, human cell line HEK293T is cultured in the testbench for 24 h and observed using microscope to check the biocompatibility of the electrodes. The prototype is thus applicable to long-term microscopic observation of cell lines for study of EM effect on biological structures. The 24-h cell culturing experiment with and without EM stimulation with the proposed prototype shows that the cell growth is obviously affected by a 10 kHz EM signal.
电磁(EM)信号在电子仪器和生物医学系统中被广泛使用,可能会对其周围的人体产生影响。然而,人们对EM信号与生物结构的相互作用机制了解甚少。我们提出了一种带有三维叉指电极的微制造低频EM刺激芯片实验室,用于通过显微镜观察细胞系。通过模拟估计了不同频率下电极之间的场强。在输入10V、10kHz信号的培养基中,电场强度达到4.45V/m。根据模拟结果,测试平台适用频率范围的高端为3MHz。使用全晶圆微制造技术制造了一个原型。对该原型在20Hz至30MHz之间的阻抗进行了表征。此外,将人细胞系HEK293T在测试平台中培养24小时,并使用显微镜观察以检查电极的生物相容性。因此,该原型适用于对细胞系进行长期显微镜观察,以研究EM对生物结构的影响。使用所提出的原型进行的有和没有EM刺激的24小时细胞培养实验表明,10kHz的EM信号明显影响细胞生长。