4.7 Article

High-throughput dielectrophoretic cell sorting assisted by cell sliding on scalable electrode tracks made of conducting-PDMS

Journal

SENSORS AND ACTUATORS B-CHEMICAL
Volume 327, Issue -, Pages -

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.snb.2020.128873

Keywords

Dielectrophoresis; Cell separation; High throughput; Conducting-PDMS; Straight track

Funding

  1. National Natural Science Foundation of China [61804007]
  2. Fundamental Research Funds for the Central Universities [BUCTRC201809, XK1802-4]
  3. Research Funds to the top scientific and technological innovation team from Beijing University of Chemical Technology [BUC-TYLKJCX06]
  4. Research Funds from Beijing Advanced Innovation Center for Soft Matter Science and Engineering [BAIC201607]

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Researchers have proposed a low-cost silver-PDMS electrode-track design that induces uniform drag to facilitate smooth cell sliding in microdevices. This design allows for live and dead cell separation at a higher flow rate and utilizes the track for cell sliding on both the up- and down-stream sides. Additionally, the track can be expanded to a V-shape for bidirectional cell sliding, as demonstrated by the separation of tumor cells from lymphocytes at 1.2 mL/h, significantly enhancing throughput compared to current conducting-PDMS based cell separators.
Dielectrophoresis (DEP) as a label-free cell separation approach in microdevices has been extensively investigated for a variety of applications. 3D microelectrodes made of conducting-PDMS inherit the merit of volumetric electrodes for generating influential DEP force throughout the entire channel depth and meanwhile, exploit low-cost fabrication process by soft lithography. However, the configuration of conducting-PDMS electrodes is limited to being embedded in sidewall of flow chamber, which leads to rather low flow rate and difficulties in extension of the flow rate. We previously reported a more effective configuration with 3D interdigitated electrodes made of silicon that assist cell sliding along solid tracks, yet such device requires expensive silicon dry etching and, moreover, the track appears to be patterned with non-straight and wavy outline, which not only hinders the flow rate but also allows cell sliding to occur only along its downstream side. Here we demonstrate low-cost silver-PDMS electrode-track featuring ideally straight outline that induces rather uniform drag to drive smooth cell sliding. Such design achieves live and dead cell separation at flow rate twice as that of silicon tracks with cell loading concentration 10 times higher. It also fully utilizes the track to enable cell sliding on both of the up- and down-stream sides. Notably, we also demonstrate that this track is expandable to be V-shape for more advanced bidirectional cell sliding, which is showcased here by tumor cells separation from lymphocytes at 1.2 mL/h. Such results greatly enhance the throughput as compared to the state-of-art conducting-PDMS based cell separator.

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