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2
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Biorheology. 2015;52(3):211-24. doi: 10.3233/BIR-14039.
3
Dielectrophoretic capture of low abundance cell population using thick electrodes.使用厚电极进行低丰度细胞群体的介电泳捕获。
Biomicrofluidics. 2015 Sep 2;9(5):054104. doi: 10.1063/1.4928703. eCollection 2015 Sep.
4
A hybrid dielectrophoretic system for trapping of microorganisms from water.一种用于从水中捕获微生物的混合介电泳系统。
Biomicrofluidics. 2015 Jun 15;9(3):034110. doi: 10.1063/1.4922276. eCollection 2015 May.
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Dielectrophoresis-assisted 3D nanoelectroporation for non-viral cell transfection in adoptive immunotherapy.介电泳辅助的 3D 纳米电穿孔用于过继免疫疗法中的非病毒细胞转染。
Lab Chip. 2015 Aug 7;15(15):3147-53. doi: 10.1039/c5lc00553a.
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Dielectrophoresis for bioparticle manipulation.用于生物粒子操控的介电电泳。
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Isolation of circulating tumor cells by dielectrophoresis.通过介电泳法分离循环肿瘤细胞。
Cancers (Basel). 2014 Mar 12;6(1):545-79. doi: 10.3390/cancers6010545.
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Antibody-independent isolation of circulating tumor cells by continuous-flow dielectrophoresis.连续流介电泳法非抗体依赖式分离循环肿瘤细胞。
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Contactless cell trapping by the use of a uniform AC electric field.利用均匀交流电场进行非接触式细胞捕获。
Biorheology. 2013;50(5-6):283-303. doi: 10.3233/BIR-130644.
10
Microfluidic separation of live and dead yeast cells using reservoir-based dielectrophoresis.基于储液器的介电泳法对活死酵母细胞的微流控分离。
Biomicrofluidics. 2012 Jul 13;6(3):34102. doi: 10.1063/1.4732800. Print 2012 Sep.

利用具有复杂空间分布的非均匀交变电流电场增强活/死酵母细胞的连续流分离。

Enhancement of continuous-flow separation of viable/nonviable yeast cells using a nonuniform alternating current electric field with complex spatial distribution.

作者信息

Tada Shigeru, Nakanishi Arisa, Eguchi Masanori, Ochi Kengo, Baba Megumi, Tsukamoto Akira

机构信息

Department of Applied Physics, National Defense Academy , Yokosuka, Kanagawa 239-8686, Japan.

Fuzzy Logic Systems Institute , Fukuoka, Japan.

出版信息

Biomicrofluidics. 2016 May 20;10(3):034110. doi: 10.1063/1.4950999. eCollection 2016 May.

DOI:10.1063/1.4950999
PMID:27279934
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4874929/
Abstract

The variability in cell response to AC electric fields is selective enough to separate not only the cell types but also the activation states of similar cells. In this work, we use dielectrophoresis (DEP), which exploits the differences in the dielectric properties of cells, to separate nonviable and viable cells. A parallel-plate DEP device consisting of a bottom face with an array of micro-fabricated interdigitated electrodes and a top face with a plane electrode was proposed to facilitate the separation of cells by creating a nonuniform electric field throughout the flow channel. The operation and performance of the device were evaluated using live and dead yeast cells as model biological particles. Further, numerical simulations were conducted for the cell suspensions flowing in a channel with a nonuniform AC electric field, modeled on the basis of the equation of motion of particles, to characterize the separation efficiency by changing the frequency of applied AC voltage. Results demonstrated that dead cells traveling through the channel were focused onto a site around the minimum electric field gradient in the middle of the flow stream, while live cells were trapped on the bottom face. Cells were thus successfully separated under the appropriately tuned frequency of 1 MHz. Predictions showed good agreement with the observation. The proposed DEP device provides a new approach to, for instance, hematological analysis or the separation of different cancer cells for application in circulating tumor cell identification.

摘要

细胞对交流电场反应的变异性具有足够的选择性,不仅能够区分细胞类型,还能区分相似细胞的激活状态。在这项工作中,我们利用介电电泳(DEP),它利用细胞介电特性的差异来分离非存活细胞和存活细胞。提出了一种平行板DEP装置,其底面有一排微加工的叉指电极,顶面有一个平面电极,通过在整个流动通道中产生不均匀电场来促进细胞分离。以活酵母细胞和死酵母细胞作为模型生物颗粒,评估了该装置的操作和性能。此外,基于颗粒运动方程,对在具有不均匀交流电场的通道中流动的细胞悬浮液进行了数值模拟,通过改变施加交流电压的频率来表征分离效率。结果表明,通过通道的死细胞聚集在流束中部最小电场梯度周围的一个位置,而活细胞则被困在底面上。因此,在1 MHz的适当调谐频率下,细胞成功分离。预测结果与观察结果吻合良好。所提出的DEP装置为例如血液学分析或分离不同癌细胞以应用于循环肿瘤细胞识别提供了一种新方法。