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Numerical design of a microfluidic chip for probing mechanical properties of cells

机译:微流体芯片的数值设计,用于探测细胞机械性能的微流体芯片

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Microfluidic chips have been widely used to probe the mechanical properties of cells, which are recognized as a promising label-free biomarker for some diseases. In our previous work (Ye et al., 2018), we have studied the relationships between the transit time and the mechanical properties of a cell flowing through a microchannel with a single constriction, which potentially forms a basis for a microfluidic chip to measure cell's mechanical properties. Here, we investigate this microfluidic chip design and examine its potential in performances. We first develop the simultaneous dependence of the transit time on both the shear and bending moduli of a cell, and then examine the chip sensitivity with respect to the cell mechanical properties while serializing a single constriction along the flow direction. After that, we study the effect of the flow velocity on the transit time, and also test the chip's ability to identify heterogeneous cells with different mechanical properties. The results show that the microfluidic chip designed is capable of identifying heterogeneous cells, even when only one unhealthy cell is included. The serialization of chip can greatly increase the chip sensitivity with respect to the mechanical properties of cells. The flow with a higher velocity helps in not only promoting the chip throughput, but also in providing more accurate transit time measurements, because the cell prefers a symmetric deformation under a high velocity. (C) 2018 Elsevier Ltd. All rights reserved.
机译:微流体芯片已被广泛用于探测细胞的机械性能,该机械性能被认为是对某些疾病的有前途的无标记生物标志物。在我们之前的工作中(Ye等人,2018),我们已经研究了流过微通道的电池之间的关系与单个收缩的电池之间的关系,这可能形成微流体芯片以测量细胞的基础机械性能。在这里,我们研究了这种微流体芯片设计并检查其性能的潜力。我们首先在细胞的剪切和弯曲模数上发挥过渡时间的同时依赖,然后在沿着流动方向串行化单个收缩的同时检查芯片灵敏度。之后,我们研究了流速对运输时间的影响,并测试了芯片识别具有不同机械性能的异质细胞的能力。结果表明,设计的微流体芯片能够识别异质细胞,即使只包括一个不健康的细胞。芯片的序列化可以大大增加相对于细胞机械性能的芯片敏感性。具有较高速度的流程不仅有助于促进芯片吞吐量,而且在提供更准确的传输时间测量方面,因为该小区更喜欢在高速下的对称变形。 (c)2018年elestvier有限公司保留所有权利。

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