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A Microfluidic Micropipette Aspiration Device to Study Single-Cell Mechanics Inspired by the Principle of Wheatstone Bridge

机译:微流体微量移液器吸气装置研究惠斯通电桥原理对单细胞力学的影响

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摘要

The biomechanical properties of single cells show great potential for early disease diagnosis and effective treatments. In this study, a microfluidic device was developed for quantifying the mechanical properties of a single cell. Micropipette aspiration was integrated into a microfluidic device that mimics a classical Wheatstone bridge circuit. This technique allows us not only to effectively alter the flow direction for single-cell trapping, but also to precisely control the pressure exerted on the aspirated cells, analogous to the feature of the Wheatstone bridge that can precisely control bridge voltage and current. By combining the micropipette aspiration technique into the microfluidic device, we can effectively trap the microparticles and Hela cells as well as measure the deformability of cells. The Young’s modulus of Hela cells was evaluated to be 387 ± 77 Pa, which is consistent with previous micropipette aspiration studies. The simplicity, precision, and usability of our device show good potential for biomechanical trials in clinical diagnosis and cell biology research.
机译:单细胞的生物力学特性显示出对疾病早期诊断和有效治疗的巨大潜力。在这项研究中,开发了一种微流体装置,用于量化单个细胞的机械性能。将微量移液器吸液集成到模仿经典惠斯通电桥电路的微流体装置中。这项技术不仅使我们能够有效地改变单细胞捕获的流动方向,而且能够精确控制施加在抽吸细胞上的压力,类似于惠斯通电桥的功能,它可以精确地控制桥电压和电流。通过将微量移液器抽吸技术结合到微流体装置中,我们可以有效地捕获微粒和Hela细胞,并测量细胞的可变形性。 Hela细胞的杨氏模量估计为387±77 Pa,这与以前的微量移液器吸取研究一致。我们设备的简单性,精确性和可用性显示出在临床诊断和细胞生物学研究中进行生物力学试验的良好潜力。

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