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首页> 外文期刊>Lab on a chip >Optically induced dielectropheresis sorting with automated medium exchange in an integrated optofluidic device resulting in higher cell viability
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Optically induced dielectropheresis sorting with automated medium exchange in an integrated optofluidic device resulting in higher cell viability

机译:在集成的光流体装置中通过光诱导介电电泳分选并自动进行培养基交换,从而提高细胞活力

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摘要

We demonstrated the integration of a microftuidic device with an optically induced dielectrophoresis (ODEP) device such that the critical medium replacement process was performed automatically and the cells could be subsequently manipulated by using digitally projected optical images. ODEP has been demonstrated to generate sufficient forces for manipulating particles/cells by projecting a light pattern onto photoconductive materials which creates virtual electrodes. The production of the ODEP force usually requires a medium that has a suitable electrical conductivity and an appropriate dielectric constant. Therefore, a 0.2 M sucrose solution is commonly used. However, this requires a complicated medium replacement process before one is able to manipulate cells. Furthermore, the 0.2 M sucrose solution is not suitable for the long-term viability of cells. In comparison to conventional manual processes, our automated medium replacement process only took 25 minutes. Experimental data showed that there was up to a 96.2% recovery rate for the manipulated cells. More importantly, the survival rate of the cells was greatly enhanced due to this faster automated process. This newly developed microfluidic chip provided a promising platform for the rapid replacement of the cell medium and this was also the first time that an ODEP device was integrated with other active flow control components in a microfluidic device. By improving cell viability after cell manipulation, this design may contribute to the practical integration of ODEP modules into other lab-on-a-chip devices and biomedical applications in the future.
机译:我们展示了微流体装置与光诱导介电电泳(ODEP)装置的集成,从而可以自动执行关键培养基替换过程,随后可以通过使用数字投影光学图像来操纵细胞。已证明ODEP可通过将光图案投射到产生虚拟电极的光电导材料上来产生足够的力来操纵粒子/细胞。 ODEP力的产生通常需要具有适当电导率和适当介电常数的介质。因此,通常使用0.2M的蔗糖溶液。但是,这需要复杂的培养基替换过程,然后才能操作细胞。此外,0.2 M蔗糖溶液不适合细胞的长期生存能力。与传统的手动过程相比,我们的自动介质更换过程仅花费了25分钟。实验数据表明,被操纵细胞的回收率高达96.2%。更重要的是,由于这种更快的自动化过程,大大提高了细胞的存活率。这种新开发的微流控芯片为快速更换细胞培养基提供了一个有希望的平台,这也是ODEP设备首次与微流控设备中的其他主动流控制组件集成在一起。通过提高细胞操作后的细胞生存能力,该设计可能有助于将来将ODEP模块实际集成到其他芯片实验室设备和生物医学应用中。

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