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Digital microfabrication of user-defined 3D microstructures in cell-laden hydrogels

机译:载有细胞的水凝胶中用户定义的3D微观结构的数字微加工

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摘要

Complex 3D interfacial arrangements of cells are found in several in vivo biosystems such as blood vasculature, renal glomeruli, and intestinal villi. Current tissue engineering techniques fail to develop suitable 3D microenvironments to evaluate the concurrent effects of complex topography and cell encapsulation. There is a need to develop new fabrication approaches that control cell density and distribution within complex 3D features. In this work, we present a dynamic projection printing process that allows rapid construction of complex 3D structures using custom-defined computer-aided-design (CAD) files. Gelatin-methacrylate (GelMA) constructs featuring user-defined spiral, pyramid, flower, and dome micro-geometries were fabricated with and without encapsulated cells. Encapsulated cells demonstrate good cell viability across all geometries both on the scaffold surface and internal to the structures. Cells respond to geometric cues individually as well as collectively throughout the larger-scale patterns. Time-lapse observations also reveal the dynamic nature of mechanical interactions between cells and micro-geometry. When compared to conventional cell-seeding, cell encapsulation within complex 3D patterned scaffolds provides long-term control over proliferation, cell morphology, and geometric guidance. Overall, this biofabrication technique offers a flexible platform to evaluate cell interactions with complex 3D micro-features, with the ability to scale-up towards high-throughput screening platforms.
机译:在几种体内生物系统(例如血管,肾小球和肠绒毛)中发现了复杂的3D细胞界面排列。当前的组织工程技术未能开发合适的3D微环境来评估复杂形貌和细胞封装的同时效应。需要开发新的制造方法来控制复杂3D特征内的单元密度和分布。在这项工作中,我们提出了一种动态投影打印过程,该过程允许使用自定义的计算机辅助设计(CAD)文件快速构建复杂的3D结构。具有和不具有包封细胞的具有用户定义的螺旋,金字塔,花和圆顶微几何结构的明胶-甲基丙烯酸酯(GelMA)构建体。封装的细胞在支架表面和结构内部的所有几何结构上均表现出良好的细胞活力。单元分别对几何线索做出响应,并且在整个较大范围的模式中共同做出响应。延时观察还揭示了细胞与微观几何之间机械相互作用的动态性质。与传统的细胞播种相比,复杂的3D图案化支架中的细胞封装可长期控制增殖,细胞形态和几何结构。总的来说,这种生物制造技术提供了一个灵活的平台,可以评估具有复杂3D微观特征的细胞相互作用,并具有向高通量筛选平台扩展的能力。

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