用于单细胞尺寸识别的微流体集成微波传感器

Arda Secme, H. S. Pisheh, H. Uslu, Ozge Akbulut, R. T. Erdogan, M. Hanay
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引用次数: 0

摘要

细胞的大小是它所拥有的最基本的生物物理参数之一。传统的尺寸测量是通过光学显微镜和定量相位成像来完成的。但是,仍然需要一种高分辨率、高吞吐量和低成本的传感器。在这里,一种新型的微流体集成微波传感器被证明可以实时表征单细胞而无需标记。共面波导谐振器采用领结形感应电极,电极间距为$50 \ \mu \ mathm {m}$。通过微流控通道将细胞输送到传感区域,利用微波传感器和光学显微镜同时测量细胞的大小。为了提高微波分辨率,在微波谐振腔内配置外差测量电路,对通过感应区的每个细胞进行检测。通过与频移的定量显微图像分析比较,我们证明微波传感器可以有效地测量细胞大小。结果表明,微流控集成微波传感器(MIMS)可以用于检测。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microfluidics-Integrated Microwave Sensors for Single Cells Size Discrimination
The size of a cell is one of the most fundamental biophysical parameters it possesses. Traditionally size measurements are done by using optical microscopy and quantitative phase imaging. However, a sensor with higher resolution, high throughput and lower cost is still needed. Here, a novel microfluidics-integratedmicrowave sensor is demonstrated to characterize single cells in real-time without labelling. Coplanar waveguide resonator is designed with a bowtie-shaped sensing electrodes separated by $50 \ \mu \mathrm{m}$. Cells are transported to sensing region by microfluidic channels and their sizes are measured simultaneously by the microwave sensors and optical microscopy. To enhance the microwave resolution, the microwave resonator is equipped with external heterodyne measurement circuitry detecting each and every cell passing through the sensing region. By comparing quantitative microscopic image analysis with frequency shifts, we show that microwave sensors can effectively measure cellular size. Our results indicate that microfluidics-integrated microwave sensors (MIMS) can be used for detecting.
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