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细菌和癌细胞在电介质电泳下形成珠链。

Bacteria and cancer cell pearl chain under dielectrophoresis.

机构信息

School of Mechanical and Aerospace Engineering, Nanyang Technological University, Singapore.

Interdisciplinary Graduate Programme, NTU Institute for Health Technologies (HealthTech NTU), Nanyang Technological University, Singapore.

出版信息

Electrophoresis. 2021 May;42(9-10):1070-1078. doi: 10.1002/elps.202000277. Epub 2021 Feb 5.

Abstract

In this work, we aim to observe and study the physics of bacteria and cancer cells pearl chain formation under dielectrophoresis (DEP). Experimentally, we visualized the formation of Bacillus subtilis bacterial pearl chain and human breast cancer cell (MCF-7) chain under positive and negative dielectrophoretic force, respectively. Through a simple simulation with creeping flow, AC/DC electric fields, and particle tracing modules in COMSOL, we examined the mechanism by which bacteria self-organize into a pearl chain across the gap between two electrodes via DEP. Our simulation results reveal that the region of greatest positive DEP force shifts from the electrode edge to the leading edge of the pearl chain, thus guiding the trajectories of free-flowing particles toward the leading edge via positive DEP. Our findings additionally highlight the mechanism why the free-flowing particles are more likely to join the existing pearl chain rather than starting a new pearl chain. This phenomenon is primarily due to the increase in magnitude of electric field gradient, and hence DEP force exerted, with the shortening gap between the pearl chain leading edge and the adjacent electrode. The findings shed light on the observed behavior of preferential pearl chain formation across electrode gaps.

摘要

在这项工作中,我们旨在观察和研究细菌和癌细胞珠链在介电泳(DEP)下的物理现象。实验中,我们分别可视化了枯草芽孢杆菌细菌珠链和人乳腺癌细胞(MCF-7)链在正、负介电泳力下的形成。通过在 COMSOL 中使用蠕动流、交流/直流电场和粒子跟踪模块进行简单模拟,我们研究了细菌通过 DEP 自组织成珠链跨越两个电极之间间隙的机制。我们的模拟结果表明,最大正介电泳力的区域从电极边缘转移到珠链的前缘,从而通过正介电泳引导自由流动的粒子向前缘移动。我们的发现还强调了为什么自由流动的粒子更有可能加入现有的珠链而不是开始新的珠链的原因。这主要是由于随着珠链前缘和相邻电极之间的间隙缩短,电场梯度的幅度增加,从而导致介电泳力增加。这些发现揭示了观察到的跨越电极间隙优先形成珠链的行为。

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