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Dynamic Culture of Droplet-Confined Cell Arrays

机译:液滴限制细胞阵列的动态培养

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Responding to the need of creating an accurate and controlled microenvironment surrounding the cell while meeting the requirements for biological processes or pharmacological screening tests, we aimed at designing and developing a microscaled culture system suitable for analyzing the synergic effects of extracellular matrix proteins and soluble environments on cell phenotype in a high-throughput fashion. We produced cell arrays deposing micrometer-scale protein islands on hydrogels using a robotic DNA microarrayer, constrained the culture media in a droplet-like volume and developed a suitable perfusion system. The droplet-confined cell arrays were used either with conventional culture methods (batch operating system) or with automated stable and constant perfusion (steady-state operating system). Mathematical modeling assisted the experimental design and assessed efficient mass transport and proper fluidodynamic regimes. Cells cultured on arrayed islands (500 μm diameter) maintained the correct phenotype both after static and perfused conditions, confirmed by immunostaining and gene expression analyses through total RNA extraction. The mathematical model, validated using a particle tracking experiment, predicted the constant value of velocities over the cell arrays (less than 10% variation) ensuring the same mass transport regime. BrdU analysis on an average of 96 cell spots for each experimental condition showed uniform expression inside each cell island and low variability in the data (average of 13%). Perfused arrays showed longer doubling times when compared with static cultures. In addition, perfused cultures showed a reduced variability in the collected data, allowing to detect statistically significant differences in cell behavior depending on the spotted ECM protein.
机译:为了满足在细胞周围建立精确可控的微环境同时满足生物学过程或药理学筛选测试的需求,我们旨在设计和开发适合于分析细胞外基质蛋白和可溶性环境对细胞的协同作用的微型培养系统。高通量的细胞表型。我们使用机器人DNA微阵列分析仪生产了在水凝胶上放置微米级蛋白质岛的细胞阵列,将培养基限制在液滴状体积中,并开发了合适​​的灌注系统。液滴限制的细胞阵列可用于常规培养方法(分批操作系统)或自动稳定和恒定灌注(稳态操作系统)。数学建模有助于实验设计并评估有效的质量传输和适当的流体力学方案。在静态和灌注条件下,在阵列岛(直径为500μm)上培养的细胞均保持正确的表型,通过免疫染色和通过总RNA提取进行的基因表达分析得以证实。使用粒子跟踪实验验证的数学模型预测了细胞阵列上的恒定速度值(变化小于10%),从而确保了相同的质量传输方式。在每种实验条件下,平均96个细胞斑点的BrdU分析显示,每个细胞岛内表达均一,数据变异性低(平均值为13%)。与静态培养相比,灌注阵列显示更长的倍增时间。此外,灌注培养物在收集到的数据中显示出降低的变异性,从而可以根据斑点的ECM蛋白检测统计学上显着的细胞行为差异。

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