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High Velocity Dielectrophoretic Cell Separation Using Continuously Extended Sidewall Electrode Featuring Undercut Profile

机译:使用具有底切轮廓的连续扩展侧壁电极进行高速介电细胞分离

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Dielectrophoresis (DEP) as a label free technique has been widely accepted as one of the most effective tool for cell separation once integrated with microfluidic platform. Advanced DEP activated cell separators target for low-cost and fast cell separation with high separation efficiency. Recently microfluidic platforms incorporating microelectrodes made of conducting polymers leverage dielectrophoretic cell separation through replica molded volumetric electrodes that inherit the merit of 3D electrodes to generated highly effective DEP force field throughout the channel depth, and meanwhile allow cost-effective fabrication. Yet, such electrodes have limited way of configuration, being discretely embedded within fluidic sidewalls, which leads to compromised cell velocity for sufficient time of cell deflection under DEP force. This work for the first time presents long-range sidewall electrode made of conducting PDMS extending the full channel length and achieves continuous-flow dielectrophoretic separation of mammalian cells traveling at high velocity of 23.5 mm/s. We demonstrate the unique design and fabrication process of the long-range electrode featuring sidewall undercut and the DEP response of mammalian cells with distinctive dielectric property. We also carried out parametric study regarding the device capability of high velocity cell separation at varying voltage and cell loading density.
机译:介电电泳(DEP)作为一种无标记的技术,一旦与微流控平台整合后,已被公认为是最有效的细胞分离工具之一。先进的DEP活化细胞分离器的目标是低成本和快速分离细胞,分离效率高。近来,结合有由导电聚合物制成的微电极的微流体平台通过复制模制的体积电极来利用介电泳单元分离,该复制的体积电极继承了3D电极的优点,从而在整个通道深度上产生了高效的DEP力场,同时允许进行具有成本效益的制造。然而,这样的电极具有有限的构造方式,其离散地嵌入流体侧壁内,这导致在DEP力下足够的细胞偏转时间导致细胞速度受损。这项工作首次展示了由传导PDMS制成的长距离侧壁电极,该电极扩展了整个通道的长度,并实现了以23.5 mm / s的高速度传播的哺乳动物细胞的连续流介电电泳分离。我们展示了具有侧壁底切和具有独特介电特性的哺乳动物细胞的DEP响应的长距离电极的独特设计和制造过程。我们还进行了有关在变化的电压和电池负载密度下高速细胞分离的设备性能的参数研究。

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