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Microfluidic single-cell cultivation chip with controllable immobilization and selective release of yeast cells.

机译:微流控单细胞培养芯片,可控制的固定化和选择性释放酵母细胞。

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摘要

We present a microfluidic cell-culture chip that enables trapping, cultivation and release of selected individual cells. The chip is fabricated by a simple hybrid glass-SU-8-PDMS approach, which produces a completely transparent microfluidic system amenable to optical inspection. Single cells are trapped in a microfluidic channel using mild suction at defined cell immobilization orifices, where they are cultivated under controlled environmental conditions. Cells of interest can be individually and independently released for further downstream analysis by applying a negative dielectrophoretic force via the respective electrodes located at each immobilization site. The combination of hydrodynamic cell-trapping and dielectrophoretic methods for cell releasing enables highly versatile single-cell manipulation in an array-based format. Computational fluid dynamics simulations were performed to estimate the properties of the system during cell trapping and releasing. Polystyrene beads and yeast cells have been used to investigate and characterize the different functions and to demonstrate biological compatibility and viability of the platform for single-cell applications in research areas such as systems biology.
机译:我们介绍了一种微流控细胞培养芯片,它可以捕获,培养和释放选定的单个细胞。该芯片是通过简单的混合玻璃SU-8-PDMS方法制造的,该方法可产生完全透明的微流体系统,适合光学检查。在定义的细胞固定孔上,通过轻度抽吸将单个细胞捕获在微流控通道中,并在受控的环境条件下将其培养。通过经由位于每个固定位点的各个电极施加负的介电泳力,可以将目的细胞单独和独立释放,以进行进一步的下游分析。流体动力学俘获和介电电泳方法相结合的细胞释放功能,使基于阵列的单细胞操作变得非常灵活。进行了计算流体动力学模拟,以估计细胞捕获和释放过程中系统的特性。聚苯乙烯珠和酵母细胞已用于研究和表征不同的功能,并证明该平台在系统生物学等研究领域中的单细胞应用的生物学相容性和可行性。

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