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Fabrication of 3D cell-laden hydrogel microstructures through photo-mold patterning

机译:通过光模图案制造3D充满细胞的水凝胶微结构

摘要

Native tissues are characterized by spatially organized three-dimensional (3D) microscaled units which functionally define cells–cells and cells–extracellular matrix interactions. The ability to engineer biomimetic constructs mimicking these 3D microarchitectures is subject to the control over cell distribution and organization. In the present study we introduce a novel protocol to generate 3D cell laden hydrogel micropatterns with defined size and shape. The method, named photo-mold patterning (PMP), combines hydrogel micromolding within polydimethylsiloxane (PDMS) stamps and photopolymerization through a recently introduced biocompatible ultraviolet (UVA) activated photoinitiator (VA-086). Exploiting PDMS micromolds as geometrical constraints for two methacrylated prepolymers (polyethylene glycol diacrylate and gelatin methacrylate), micrometrically resolved structures were obtained within a 3 min exposure to a low cost and commercially available UVA LED. The PMP was validated both on a continuous cell line (human umbilical vein endothelial cells expressing green fluorescent protein, HUVEC GFP) and on primary human bone marrow stromal cells (BMSCs). HUVEC GFP and BMSCs were exposed to 1.5% w/v VA-086 and UVA light (1 W, 385 nm, distance from sample = 5 cm). Photocrosslinking conditions applied during the PMP did not negatively affect cells viability or specific metabolic activity. Quantitative analyses demonstrated the potentiality of PMP to uniformly embed viable cells within 3D microgels, creating biocompatible and favorable environments for cell proliferation and spreading during a seven days' culture. PMP can thus be considered as a promising and cost effective tool for designing spatially accurate in vitro models and, in perspective, functional constructs.
机译:天然组织的特征是在空间上组织的三维(3D)微尺度单位,这些单位在功能上定义了细胞-细胞和细胞-细胞外基质的相互作用。工程模仿这些3D微体系结构的仿生构造的能力受细胞分布和组织的控制。在本研究中,我们介绍了一种新颖的协议来生成具有定义的大小和形状的3D细胞载水凝胶微图案。该方法被称为光模图案化(PMP),它结合了聚二甲基硅氧烷(PDMS)压模内的水凝胶微成型和通过最近推出的生物相容性紫外线(UVA)活化的光引发剂(VA-086)进行光聚合。利用PDMS微模具作为两种甲基丙烯酸酯化预聚物(聚乙二醇二丙烯酸酯和甲基丙烯酸明胶)的几何约束,可以在3分钟内暴露于低成本的市售UVA LED中,从而获得微米级解析的结构。在连续细胞系(表达绿色荧光蛋白的人脐静脉内皮细胞,HUVEC GFP)和原代人骨髓基质细胞(BMSC)上均验证了PMP。将HUVEC GFP和BMSC暴露于1.5%w / v VA-086和UVA光(1 W,385 nm,距样品的距离= 5 cm)。在PMP期间使用的光交联条件不会对细胞活力或特定的代谢活性产生负面影响。定量分析表明,PMP具有将活细胞均匀地嵌入3D微凝胶中的潜力,可在7天的培养过程中为细胞增殖和扩散创造生物相容性和良好的环境。因此,PMP可以被认为是设计空间精确的体外模型以及功能构造的有前途且具有成本效益的工具。

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