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Layer-by-layer fabrication of 3D hydrogel structures using open microfluidics

机译:使用开放式微流体的3D水凝胶结构的逐层制造

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Patterned deposition and 3D fabrication techniques have enabled the use of hydrogels for a number of applications including microfluidics, sensors, separations, and tissue engineering in which form fits function. Devices such as reconfigurable microvalves or implantable tissues have been created using lithography or casting techniques. Here, we present a novel open-microfluidic patterning method that utilizes surface tension forces to form hydrogel layers on top of each other, into a patterned 3D structure. We use a patterning device to form a temporary open microfluidic channel on an existing gel layer, allowing the controlled flow of unpolymerized gel in device-regions. After layer gelation and device removal, the process can be repeated iteratively to create multi-layered 3D structures. The use of open-microfluidic and surface tension-based methods to define the shape of each individual layer enables patterning to be performed with a simple pipette and with minimal dead-volume. Our method is compatible with unmodified (native) biological hydrogels, and other non-biological materials with precursor fluid properties compatible with capillary flow. With our open-microfluidic layer-by-layer fabrication method, we demonstrate the capability to build agarose, type I collagen, and polymer-peptide 3D structures featuring asymmetric designs, multiple components, overhanging features, and cell-laden regions.
机译:图案化沉积和3D制造技术使得Hydrogels用于许多应用程序,包括形式适合功能的微流体,传感器,分离和组织工程。已经使用光刻或铸造技术创建了可重新配置的微型阀或可植入组织的装置。在这里,我们提出了一种新的开放式微流体图案化方法,其利用表面张力以彼此顶部形成水凝胶层,进入图案化的3D结构。我们使用图案化装置在现有的凝胶层上形成临时开放的微流体通道,允许在装置区域中的未聚合凝胶的受控流动。在层凝胶化和器件移除之后,可以迭代地重复该过程以产生多层3D结构。使用开放式微流体和表面张力的方法来定义每个单独层的形状,使得通过简单的移液管和最小的死体积进行图案化。我们的方法与未修饰的(本地)生物水凝胶相容,以及具有与毛细血管流动相容的前体流体特性的其他非生物材料。利用我们的开放式微流体层制造方法,我们证明了构建琼脂糖,I型胶原和聚合物 - 肽3D结构的能力,其具有不对称的设计,多种部件,悬垂特征和细胞载有细胞区域。

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