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基于有机光导芯片上光诱导光电电动力学的细胞图案化。

Cell patterning via diffraction-induced optoelectronic dielectrophoresis force on an organic photoconductive chip.

机构信息

Department of Mechanical and Automation Engineering, Chinese University of Hong Kong, Hong Kong.

出版信息

Lab Chip. 2013 Oct 7;13(19):3893-902. doi: 10.1039/c3lc50351h.

Abstract

A laser diffraction-induced dielectrophoresis (DEP) phenomenon for the patterning and manipulation of individual HepG2 cells and polystyrene beads via positive/negative DEP forces is reported in this paper. The optoelectronic substrate was fabricated using an organic photoconductive material, TiOPc, via a spin-coating process on an indium tin oxide glass surface. A piece of square aperture array grid grating was utilized to transform the collimating He-Ne laser beam into the multi-spot diffraction pattern which forms the virtual electrodes as the TiOPc-coating surface was illuminated by the multi-spot diffraction light pattern. HepG2 cells were trapped at the spot centers and polystyrene beads were trapped within the dim region of the illuminated image. The simulation results of light-induced electric field and a Fresnel diffraction image illustrated the distribution of trapped microparticles. The HepG2 morphology change, adhesion, and growth during a 5-day culture period demonstrated the cell viability through our manipulation. The power density inducing DEP phenomena, the characteristics of the thin TiOPc coating layer, the operating ac voltage/frequency, the sandwiched medium, the temperature rise due to the ac electric fields and the illuminating patterns are discussed in this paper. This concept of utilizing laser diffraction images to generate virtual electrodes on our TiOPc-based optoelectronic DEP chip extends the applications of optoelectronic dielectrophoretic manipulation.

摘要

本文报道了一种基于激光诱导的电介质电泳(DEP)现象,通过正负 DEP 力对单个 HepG2 细胞和聚苯乙烯珠进行图案化和操控。光电基板是通过在氧化铟锡玻璃表面旋涂有机光导电材料 TiOPc 来制造的。利用正方形孔径阵列格栅将准直氦氖激光束转换为多光斑衍射图案,当多光斑衍射光图案照射 TiOPc 涂层表面时,形成虚拟电极。HepG2 细胞被捕获在光斑中心,聚苯乙烯珠被捕获在照明图像的暗区。光致电场的模拟结果和菲涅耳衍射图像说明了捕获微粒子的分布。在 5 天的培养期间,HepG2 形态的变化、黏附和生长通过我们的操控展示了细胞活力。本文讨论了诱导 DEP 现象的功率密度、薄 TiOPc 涂层的特性、工作交流电压/频率、夹层介质、交流电场和照明图案引起的温升。本文利用激光衍射图像在基于 TiOPc 的光电 DEP 芯片上生成虚拟电极的概念扩展了光电介电泳操控的应用。

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