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Real-time monitoring of immobilized single yeast cells through multifrequency electrical impedance spectroscopy

机译:通过多频电阻抗光谱法实时监测固定化单个酵母细胞

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摘要

We present a microfluidic device, which enables single cells to be reliably trapped and cultivated while simultaneously being monitored by means of multifrequency electrical impedance spectroscopy (EIS) in the frequency range of 10 kHz–10 MHz. Polystyrene beads were employed to characterize the EIS performance inside the microfluidic device. The results demonstrate that EIS yields a low coefficient of variation in measuring the diameters of captured beads (~0.13 %). Budding yeast, Saccharomyces cerevisiae, was afterwards used as model organism. Single yeast cells were immobilized and measured by means of EIS. The bud growth was monitored through EIS at a temporal resolution of 1 min. The size increment of the bud, which is difficult to determine optically within a short time period, can be clearly detected through EIS signals. The impedance measurements also reflect the changes in position or motion of single yeast cells in the trap. By analyzing the multifrequency EIS data, cell motion could be qualitatively discerned from bud growth. The results demonstrate that single-cell EIS can be used to monitor cell growth, while also detecting potential cell motion in real-time and label-free approach, and that EIS constitutes a sensitive tool for dynamic single-cell analysis.
机译:我们提出了一种微流控设备,该设备能够可靠地捕获和培养单个细胞,同时通过10 kHz–10 MHz频率范围内的多频电阻抗光谱法(EIS)对其进行监控。聚苯乙烯珠用于表征微流体装置内部的EIS性能。结果表明,EIS在测量捕获的珠子直径时产生较低的变异系数(〜0.13%)。此后,将芽生啤酒酵母(Saccharomyces cerevisiae)用作模型生物。固定单个酵母细胞并通过EIS测量。通过EIS以1分钟的时间分辨率监测芽的生长。通过EIS信号可以清楚地检测出芽的大小增加,这在短时间内很难用光学方法确定。阻抗测量结果还反映了陷阱中单个酵母细胞的位置或运动的变化。通过分析多频EIS数据,可以从芽的生长定性识别细胞运动。结果表明,单细胞EIS可用于监测细胞生长,同时还可以实时和无标记的方式检测潜在的细胞运动,并且EIS构成了动态单细胞分析的灵敏工具。

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