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用于高电导率溶液的电动装置设计及限制因素

Electrokinetic device design and constraints for use in high conductance solutions.

作者信息

Heineck D P, Lewis J M, Heller M J

机构信息

Department of Electrical and Computer Engineering, University of California San Diego, La Jolla, CA, USA.

Department of Nanoengineering, University of California San Diego, La Jolla, CA, USA.

出版信息

Electrophoresis. 2017 Jun;38(11):1475-1482. doi: 10.1002/elps.201600563.

Abstract

The quest for new cell-free DNA and exosome biomarker-based molecular diagnostics require fast and efficient sample preparation techniques. Conventional methods for isolating these biomarkers from blood are both time-consuming and laborious. New electrokinetic microarray devices using dielectrophoresis (DEP) to isolate cell-free DNA and exosome biomarkers have now greatly improved the sample preparation process. Nevertheless, these devices still have some limitations when used with high conductance biological fluids, e.g. blood, plasma, and serum. This study demonstrates that electrochemical damage may occur on the platinum electrodes of DEP microarray devices. It further examines two model device designs that include a parallel wire arrangement and a planar array. Effective isolation of fluorescent beads with parallel wires is shown under low-conductance conditions (10  S/m), but electrothermal flow overcomes DEP forces under high conductance conditions (>0.1 S/m). Planar devices are shown to be effective under high conductance conditions (∼1 S/m) without the deleterious effects of electrothermal flow. This study provides new insights into design compromises and limitations for producing future electrokinetic devices for better performance with high conductance solutions.

摘要

对基于新型无细胞DNA和外泌体生物标志物的分子诊断方法的探索需要快速高效的样品制备技术。从血液中分离这些生物标志物的传统方法既耗时又费力。利用介电电泳(DEP)分离无细胞DNA和外泌体生物标志物的新型电动微阵列装置现已极大地改进了样品制备过程。然而,这些装置在与高电导率生物流体(如血液、血浆和血清)一起使用时仍存在一些局限性。本研究表明,DEP微阵列装置的铂电极可能会发生电化学损伤。它进一步研究了两种模型装置设计,包括平行导线排列和平面阵列。在低电导率条件(10 S/m)下,平行导线能有效分离荧光珠,但在高电导率条件(>0.1 S/m)下,电热流会克服DEP力。平面装置在高电导率条件(~1 S/m)下显示出有效性,且没有电热流的有害影响。本研究为设计折衷方案和局限性提供了新的见解,以便制造出未来能在高电导率溶液中具有更好性能的电动装置。

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