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Polymer Coatings in 3D-Printed Fluidic Device Channels for Improved Cellular Adherence Prior to Electrical Lysis

机译:3D打印的流体设备通道中的聚合物涂层可改善电裂解之前的细胞粘附性

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This paper describes the design and fabrication of a polyjet-based three-dimensional (3D)-printed fluidic device where poly(dimethylsiloxane) (PDMS) or polystyrene (PS) were used to coat the sides of a fluidic channel within the device to promote adhesion of an immobilized cell layer. The device was designed using computer-aided design software and converted into an.STL file prior to printing. The rigid, transparent material used in the printing process provides an optically transparent path to visualize endothelial cell adherence and supports integration of removable electrodes for electrical cell lysis in a specified portion of the channel (1 mm width x 0.8 mm height x 2 mm length). Through manipulation of channel geometry, a low-voltage power source (500 V max) was used to selectively lyse adhered endothelial cells in a tapered region of the channel. Cell viability was maintained on the device over a 5 day period (98% viable), though cell coverage decreased after day 4 with static media delivery. Optimal lysis potentials were obtained for the two fabricated device geometries, and selective cell clearance was achieved with cell lysis efficiencies of 94 and 96%. The bottleneck of unknown surface properties from proprietary resin use in fabricating 3D-printed materials is overcome through techniques to incorporate PDMS and PS.
机译:本文介绍了基于Polyjet的三维(3D)打印的流体装置的设计和制造,其中使用了聚二甲基硅氧烷(PDMS)或聚苯乙烯(PS)覆盖设备内流体通道的侧面以促进固定细胞层的粘附力。该设备使用计算机辅助设计软件进行设计,并在打印之前转换为.STL文件。印刷过程中使用的刚性,透明材料提供了一条光学透明的路径,以可视化内皮细胞的粘附,并支持在通道的指定部分(1毫米宽x 0.8毫米高x 2毫米长)中用于细胞裂解的可移动电极的集成。通过操纵通道的几何形状,使用低压电源(最大500 V)在通道的锥形区域中选择性溶解粘附的内皮细胞。尽管在第4天使用静态培养基递送后,细胞覆盖率下降了,但设备在5天的时间内仍保持了细胞活力(98%的活力)。对于两种制造的设备几何形状,获得了最佳的裂解潜能,并且细胞裂解效率分别为94%和96%,从而实现了选择性的细胞清除。通过结合PDMS和PS的技术,克服了专有树脂在制造3D打印材料中使用所产生的未知表面特性的瓶颈。

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