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A low-cost smartphone controlled portable system with accurately confined on-chip 3D electrodes for flow-through cell electroporation

机译:一种低成本的智能手机控制便携式系统,具有精确限制的片上3D电极,用于流通电池电穿孔

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摘要

Microscale flow-through electroporation at DC voltage has advantages in delivering small molecules. Yet, electroporation based on constant voltage are liable to generate electrolysis products which limits the voltage-operating window. Parallel on-chip 3D electrodes with close and uniform spacing are required to cut down voltage as well as provide enough electric field for electroporation. Here we present a simple electrode fabrication method based on capillary restriction valves in Z-axis to achieve parallel 3D electrodes with controllable electrode spacing in PDMS chips. With electrodes accurately placed in close range, a low voltage of only 1.5 V can generate enough electric field (>400 V/cm) to make cell membrane permeable. Squeeze flow is introduced to produce higher electric field (>800 V/cm) at a fixed voltage for more efficient electroporation. Benefit from the electrode fabrication method and application of squeeze flow, we develop a smartphone controlled microfluidic electroporation system which integrate functions of sample injection, pressure regulating, real-time observation and constant DC power supply. The system is used to electroporate two cell lines, showing a permeabilization percentage of 63% for HEK-293 cells and 58% for CHO-K1 cells with optimal parameters. Thus, the portable microfluidic system provides a cost-effective and user-friendly flow-through cell electroporation platform. (C) 2020 Elsevier B.V. All rights reserved.
机译:在直流电压下微尺度流通电穿孔具有提供小分子的优点。然而,基于恒定电压的电穿孔易于产生限制电压操作窗口的电解产物。需要紧密且均匀间隔的平行片上3D电极来减小电压,并为电穿孔提供足够的电场。这里我们介绍了一种基于Z轴的毛细管限制阀的简单电极制造方法,以实现PDMS芯片中具有可控电极间距的平行3D电极。通过精确放置在近距离的电极,仅1.5V的低电压可以产生足够的电场(> 400V / cm)以使细胞膜可渗透。引入挤压流以在固定电压下在固定电压下产生更高的电场(> 800V / cm),以更有效地电穿孔。从电极制造方法中受益和挤压流的应用,我们开发了一种智能手机控制的微流体电穿孔系统,其集成了样品喷射,压力调节,实时观察和恒定直流电源的功能。该系统用于电穿孔两条细胞系,显示HEK-293细胞的63%的渗透百分比,以及具有最佳参数的CHO-K1细胞的58%。因此,便携式的微流体系统提供了成本效益和用户友好的流通单元电穿孔平台。 (c)2020 Elsevier B.V.保留所有权利。

著录项

  • 来源
    《Bioelectrochemistry》 |2020年第1期|共10页
  • 作者单位

    Shanghai Jiao Tong Univ Shanghai Gen Hosp Dept Gen Surg Sch Med Shanghai 200080 Peoples R China;

    Shanghai Jiao Tong Univ Dept Micro Nano Elect Natl Key Lab Sci &

    Technol Micro Nano Fabricat Shanghai 200240 Peoples R China;

    Xiamen Univ Xiangan Hosp Sch Med Dept Gen Surg Xiamen 361101 Peoples R China;

    Shanghai Jiao Tong Univ Dept Micro Nano Elect Natl Key Lab Sci &

    Technol Micro Nano Fabricat Shanghai 200240 Peoples R China;

    Shanghai Jiao Tong Univ Dept Micro Nano Elect Natl Key Lab Sci &

    Technol Micro Nano Fabricat Shanghai 200240 Peoples R China;

    Shanghai Jiao Tong Univ Dept Micro Nano Elect Natl Key Lab Sci &

    Technol Micro Nano Fabricat Shanghai 200240 Peoples R China;

    Shanghai Jiao Tong Univ Dept Micro Nano Elect Natl Key Lab Sci &

    Technol Micro Nano Fabricat Shanghai 200240 Peoples R China;

    Shanghai Jiao Tong Univ Dept Micro Nano Elect Natl Key Lab Sci &

    Technol Micro Nano Fabricat Shanghai 200240 Peoples R China;

    Shanghai Jiao Tong Univ Shanghai Gen Hosp Dept Gen Surg Sch Med Shanghai 200080 Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物学实验与观测;
  • 关键词

    3D microelectrodes; Cell electroporation; Microfluidics; Low-cost fabrication; Portable system;

    机译:3D微电极;细胞电穿孔;微流体;低成本制作;便携式系统;

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