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Substantial Expansion of Detectable Size Range in Ionic Current Sensing through Pores by Using a Microfluidic Bridge Circuit

机译:使用微流电桥电路大幅扩展通过孔的离子电流感测中可检测的尺寸范围

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摘要

Measuring ionic currents passing through nano- or micropores has shown great promise for the electrical discrimination of various biomolecules, cells, bacteria, and viruses. However, conventional measurements have shown there is an inherent limitation to the detectable particle volume (1% of the pore volume), which critically hinders applications to real mixtures of biomolecule samples with a wide size range of suspended particles. Here we propose a rational methodology that can detect samples with the detectable particle volume of 0.01% of the pore volume by measuring a transient current generated from the potential differences in a microfluidic bridge circuit. Our method substantially suppresses the background ionic current from the μA level to the pA level, which essentially lowers the detectable particle volume limit even for relatively large pore structures. Indeed, utilizing a microscale long pore structure (volume of 5.6 × 10~4 aL; height and width of 2.0 × 2.0 μm; length of 14 μm), we successfully detected various samples including polystyrene nanoparticles (volume: 4 aL), bacteria, cancer cells, and DNA molecules. Our method will expand the applicability of ionic current sensing systems for various mixed biomolecule samples with a wide size range, which have been difficult to measure by previously existing pore technologies.
机译:测量通过纳米或微孔的离子流已显示出对各种生物分子,细胞,细菌和病毒进行电学鉴别的巨大希望。但是,常规测量表明,可检测的颗粒体积(孔隙体积的1%)存在固有的局限性,这严重阻碍了将其应用于具有宽尺寸范围的悬浮颗粒的生物分子样品的真实混合物中。在这里,我们提出了一种合理的方法,可以通过测量由微流桥电路中的电势差产生的瞬态电流来检测可检测颗粒体积为孔体积的0.01%的样品。我们的方法可以将背景离子电流从μA级别抑制到pA级别,即使对于较大的孔结构,也可以从根本上降低可检测的颗粒体积极限。实际上,我们利用微尺度的长孔结构(体积为5.6×10〜4 aL;高和宽为2.0×2.0μm;长度为14μm),成功检测了各种样品,包括聚苯乙烯纳米颗粒(体积:4 aL),细菌,癌细胞和DNA分子。我们的方法将扩大离子电流传感系统对各种混合生物分子样品的适用性,这些样品具有较宽的尺寸范围,而以前的孔技术很难对其进行测量。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2017年第40期|14137-14142|共6页
  • 作者单位

    Department of Biomolecular Engineering, Graduate School of Engineering, Nagoya University, Furo-cho, Chikusa-ku, Nagoya, Japan,ImPACT Research Center for Advanced Nanobiodevices, Nagoya University, Furo-cho, Chikusa-ku, Nagoya, Japan;

    Department of Biomolecular Engineering, Graduate School of Engineering, Nagoya University, Furo-cho, Chikusa-ku, Nagoya, Japan,ImPACT Research Center for Advanced Nanobiodevices, Nagoya University, Furo-cho, Chikusa-ku, Nagoya, Japan,Japan Science and Technology Agency (JST), PRESTO, 4-1-8 Honcho, Kawaguchi, Saitama, Japan;

    Laboratory of Integrated Nanostructure Materials, Institute of Materials Chemistry and Engineering, Kyushu University, 6-1 Kasuga-koen, Kasuga, Fukuoka, Japan,Institute of Scientific and Industrial Research, Osaka University, Mihogaoka, Ibaraki, Osaka, Japan;

    Department of Biomolecular Engineering, Graduate School of Engineering, Nagoya University, Furo-cho, Chikusa-ku, Nagoya, Japan,ImPACT Research Center for Advanced Nanobiodevices, Nagoya University, Furo-cho, Chikusa-ku, Nagoya, Japan,Japan Science and Technology Agency (JST), PRESTO, 4-1-8 Honcho, Kawaguchi, Saitama, Japan;

    Laboratory of Integrated Nanostructure Materials, Institute of Materials Chemistry and Engineering, Kyushu University, 6-1 Kasuga-koen, Kasuga, Fukuoka, Japan;

    Laboratory of Integrated Nanostructure Materials, Institute of Materials Chemistry and Engineering, Kyushu University, 6-1 Kasuga-koen, Kasuga, Fukuoka, Japan;

    Institute of Scientific and Industrial Research, Osaka University, Mihogaoka, Ibaraki, Osaka, Japan;

    Department of Biomolecular Engineering, Graduate School of Engineering, Nagoya University, Furo-cho, Chikusa-ku, Nagoya, Japan,ImPACT Research Center for Advanced Nanobiodevices, Nagoya University, Furo-cho, Chikusa-ku, Nagoya, Japan,Health Research Institute, National Institute of Advanced Industrial Science and Technology (AIST), Takamatsu, Kagawa, Japan;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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