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A three-dimensional flow control concept for single-cell experiments on a microchip. 1. Cell selection, cell retention, cell culture, cell balancing, and cell scanning

机译:在微芯片上进行单细胞实验的三维流动控制概念。 1.细胞选择,细胞保留,细胞培养,细胞平衡和细胞扫描

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An ideal microchip for single-cell experiments should be able to allow us to culture cells, to select any desired single cell from a group, to retain the cell for convenient cellular signal detection, and to deliver any buffer or reagent directly to the cell at any time during continual detection and observation. Most importantly, any negative impact on the live cell should be minimized. To accomplish all these functions, we developed a three-dimensional liquid flow control concept and employed special liquid flow fields to manipulate and retain a single yeast cell freely in the chip. A zero-speed point was controlled to retain the cell for three-dimensional cell balancing and cell scanning. A dispersive flow delivered reagents at a high speed to very near the cell and provided them to the cell at a low speed. No force stronger than its gravitational force was exerted on the cell, which could be balanced on different positions on an arc-sloping wall, thus minimizing any negative impact on the cell due to strong liquid flows. Specifically, we demonstrate on-chip single-cell culture, cell wall removal, and reagent delivery. Subsequently, single-cell fluorescence detection was performed, and noise filtering and background correction were applied for data processing.
机译:用于单细胞实验的理想微芯片应该能够使我们培养细胞,从一组中选择任何所需的单细胞,保留该细胞以方便进行细胞信号检测,并将任何缓冲液或试剂直接递送至在持续检测和观察期间的任何时间。最重要的是,应将对活细胞的任何负面影响减至最小。为了完成所有这些功能,我们开发了三维液流控制概念,并采用特殊的液流场来在芯片中自由操纵和保留单个酵母细胞。控制零速点以保留电池以进行三维电池平衡和电池扫描。分散流将试剂高速输送到非常靠近池的位置,并以低速将其提供给池。没有比其重力更强的力施加到电解池上,该力可以在弧形倾斜壁上的不同位置上平衡,从而最大程度地减少了由于强液体流动而对电解池造成的负面影响。具体来说,我们展示了芯片上的单细胞培养,细胞壁去除和试剂输送。随后,进行单细胞荧光检测,并将噪声过滤和背景校正应用于数据处理。

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