IEEE Trans Biomed Circuits Syst. 2019 Dec;13(6):1214-1225. doi: 10.1109/TBCAS.2019.2926836. Epub 2019 Jul 4.
We present a capacitance sensor chip developed in a 0.35-μm complementary metal-oxide-semiconductor process for monitoring biological cell viability and proliferation. The chip measures the cell-to-substrate binding through capacitance-to-frequency conversion with a sensitivity of 590 kHz/fF. In vitro experiments with two human ovarian cancer cell lines (CP70 and A2780) were performed and showed the ability to track cell viability in realtime over three days. An imaging platform was developed to provide time-lapse images of the sensor surface, which allowed for concurrent visual and capacitance observation of the cells. The results showed the ability to detect single-cell binding events and changes in cell morphology. Image processing was performed to estimate the cell coverage of sensor electrodes, showing good linear correlation and providing a sensor gain of 1.28 ± 0.29 aF/μm, which agrees with values reported in the literature. The device is designed for unsupervised operation with minimal packaging requirements. Only a microcontroller is required for readout, making it suitable for applications outside the traditional laboratory setting.
我们展示了一种基于 0.35μm 互补金属氧化物半导体工艺开发的电容传感器芯片,用于监测生物细胞的活力和增殖。该芯片通过电容到频率的转换来测量细胞与基底的结合,其灵敏度为 590 kHz/fF。我们对两种人卵巢癌细胞系(CP70 和 A2780)进行了体外实验,结果表明该芯片能够在三天内实时跟踪细胞活力。我们还开发了一种成像平台,提供传感器表面的延时图像,允许对细胞进行同时的视觉和电容观察。实验结果表明,该芯片能够检测单细胞结合事件和细胞形态的变化。我们还对图像进行了处理,以估计传感器电极的细胞覆盖率,结果显示出良好的线性相关性,并提供了 1.28 ± 0.29 aF/μm 的传感器增益,与文献中的报道值一致。该设备设计用于无需监督的操作,对封装的要求最小。仅需微控制器即可进行读取,使其适用于传统实验室环境之外的应用。