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An insulator-based dielectrophoretic microdevice for the simultaneous filtration and focusing of biological cells

机译:基于绝缘体的介电泳微器件,可同时过滤和聚焦生物细胞

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摘要

Manipulating and discriminating biological cells of interest using microfluidic and micro total analysis system (μTAS) devices have potential applications in clinical diagnosis and medicine. Cellular focusing in microfluidic devices is a prerequisite for medical applications, such as cell sorting, cell counting, or flow cytometry. In the present study, an insulator-based dielectrophoretic microdevice is designed for the simultaneous filtration and focusing of biological cells. The cells are introduced into the microchannel and hydrodynamically pre-confined by funnel-shaped insulating structures close to the inlet. There are ten sets of X-patterned insulating structures in the microfluidic channel. The main function of the first five sets of insulating structures is to guide the cells by negative dielectrophoretic responses (viable HeLa cells) into the center region of the microchannel. The positive dielectrophoretic cells (dead HeLa cells) are attracted to regions with a high electric-field gradient generated at the edges of the insulating structures. The remaining five sets of insulating structures are mainly used to focus negative dielectrophoretic cells that have escaped from the upstream region. Experiments employing a mixture of dead and viable HeLa cells are conducted to demonstrate the effectiveness of the proposed design. The results indicate that the performance of both filtration and focusing improves with the increasing strength of the applied electric field and a decreasing inlet sample flow rate, which agrees with the trend predicted by the numerical simulations. The filtration efficiency, which is quantitatively investigated, is up to 88% at an applied voltage of 50 V peak-to-peak (1 kHz) and a sample flow rate of 0.5 μl/min. The proposed device can focus viable cells into a single file using a voltage of 35 V peak-to-peak (1 kHz) at a sample flow rate of 1.0 μl/min.
机译:使用微流控和微全分析系统(μTAS)装置操纵和区分感兴趣的生物细胞在临床诊断和医学中具有潜在的应用。微流控设备中的细胞聚焦是医学应用(例如细胞分选,细胞计数或流式细胞仪)的先决条件。在本研究中,基于绝缘体的介电泳微器件被设计用于同时过滤和聚焦生物细胞。将细胞引入微通道,并通过靠近入口的漏斗形绝缘结构进行流体动力学预约束。在微流体通道中有十组X图案绝缘结构。前五组绝缘结构的主要功能是通过负介电电泳反应将活细胞(HeLa细胞)引导到微通道的中心区域。正介电电泳细胞(死HeLa细胞)被吸引到在绝缘结构的边缘处产生高电场梯度的区域。其余五组绝缘结构主要用于聚焦从上游区域逸出的负介电电泳细胞。进行了使用死亡和存活的HeLa细胞混合物的实验,以证明所提出设计的有效性。结果表明,随着电场强度的增加和入口样品流速的降低,过滤和聚焦性能均得到改善,这与数值模拟预测的趋势相吻合。定量研究的过滤效率在施加的峰峰值(1 kHz)为50 V和样品流量为0.5μl/ min时高达88%。所提出的设备可以使用35 V峰峰值(1 kHz)的电压以1.0μl/ min的样品流速将活细胞集中到单个文件中。

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