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A system and methodology for high-content visual screening of individual intact living cells in suspension

机译:用于悬浮液中单个完整活细胞的高内涵视觉筛选的系统和方法

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摘要

Three dimensional imaging provides high-content information from living intact biology, and can serve as a visual screening cue. In the case of single cell imaging the current state of the art uses so-called "axial through-stacking". However, three-dimensional axial through-stacking requires that the object (i.e. a living cell) be adherently stabilized on an optically transparent surface, usually glass; evidently precluding use of cells in suspension. Aiming to overcome this limitation we present here the utility of dielectric field trapping of single cells in three-dimensional electrode cages. Our approach allows gentle and precise spatial orientation and vectored rotation of living, non-adherent cells in fluid suspension. Using various modes of widefield, and confocal microscope imaging we show how so-called "micro-rotation" can provide a unique and powerful method for multiple point-of-view (three-dimensional) interrogation of intact living biological micro-objects (e.g. single-cells, cell aggregates, and embryos). Further, we show how visual screening by micro-rotation imaging can be combined with micro-fluidic sorting, allowing selection of rare phenotype targets from small populations of cells in suspension, and subsequent one-step single cell cloning (with high-viability). Our methodology combining high-content 3D visual screening with one-step single cell cloning, will impact diverse paradigms, for example cytological and cytogenetic analysis on haematopoietic stem cells, blood cells including lymphocytes, and cancer cells.
机译:三维成像可从完整的完整生物学中提供高含量的信息,并可作为视觉筛查提示。在单细胞成像的情况下,当前技术水平使用所谓的“轴向贯通堆叠”。但是,三维轴向贯通堆叠要求将物体(即活细胞)粘附地稳定在通常是玻璃的光学透明表面上。显然排除了悬浮细胞的使用。为了克服这一局限性,我们在这里介绍了三维电极笼中单个单元的电介质捕获。我们的方法可实现流体悬浮液中温和且精确的空间定向以及活的非粘附细胞的矢量旋转。使用各种模式的宽视野和共聚焦显微镜成像,我们展示了所谓的“微旋转”如何为完整的活着的生物微物体(例如,多角度)(三维)询问提供独特而强大的方法单细胞,细胞聚集体和胚胎)。此外,我们展示了如何通过微旋转成像进行视觉筛选与微流体分选相结合,从而允许从悬浮的小细胞群中选择稀有的表型靶标,然后进行一步一步单细胞克隆(具有高生存力)。我们的方法结合了高内涵的3D可视化筛选和一步单细胞克隆,将影响多种范例,例如对造血干细胞,包括淋巴细胞在内的血细胞和癌细胞的细胞学和细胞遗传学分析。

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