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Microfluidic-Printed Microcarrier for In Vitro Expansion of Adherent Stem Cells in 3D Culture Platform (vol 19, 1900136, 2019)

机译:用于3D培养平台粘附干细胞的体外膨胀的微流体印刷微载体(Vol 19,1900136,2019)

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Microcarrier-based stem cell expansion cultures can increase the dimensions of in vitro stem cell cultures from 2D to 3D. The culture handling process then becomes more efficient compared with conventional 2D cultures. However, the use of spherical plastic microcarriers complicates the monitoring of cell culture. To facilitate monitoring, transparent disc-shaped microcarriers are manufactured using a light-initiated microfluidic printing system and the obtained microcarriers are named as 2.5D microcarrier. The 2.5D microcarriers (diameter/height approximate to 5) enable us to use conventional monitoring tools in 2D-based platform during the in vitro expansion on a 3D culture platform. Surface modification via a 1 h-long poly-dopamine (PDA) reaction can maintain the transparent nature of the microcarriers while optimizing the cell attachment. The surface marker expression and differentiation potential of the 2.5D microcarrier-expanded stem cells reveal that the characteristics and functionalities preserved during expansion. The 2.5D microcarrier is readily integrated into an on-bead assay to conserve reagents and permit a high number (n = 9) of repeated measurements with reliable results. These results demonstrate that the 2.5D microcarrier-based scale-up culture provides a valuable tool for the in vitro expansion of adherent stem cells, especially if repetitive monitoring is required.
机译:基于微载体的干细胞膨胀培养物可以从2D到3D增加体外干细胞培养物的尺寸。与传统的2D培养物相比,培养处理过程变得更有效。然而,使用球形塑料微载体使细胞培养的监测变得复杂化。为了促进监测,使用光引发的微流体印刷系统制造透明盘形微载体,并且所获得的微载体被命名为2.5D微载体。 2.5D微载体(直径/高度约为5)使我们能够在3D培养平台上的体外扩展期间在基于2D的平台中使用传统的监测工具。通过1 H-Long多巴胺(PDA)反应的表面改性可以保持微载体的透明性质,同时优化电池附着。 2.5D微载体膨胀干细胞的表面标记表达和分化电位揭示了在膨胀期间保持的特性和功能。将2.5D微载体容易地集成到珠子测定中以保护试剂并允许具有可靠的结果的重复测量的高数量(n = 9)。这些结果表明,基于2.5D微载体的扩大培养物为粘附干细胞的体外膨胀提供了有价值的工具,特别是如果需要重复监测。

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