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Microfabrication of complex porous tissue engineering scaffolds using 3D projection stereolithography

机译:使用3D投影立体光刻技术对复杂的多孔组织工程支架进行微加工

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The success of tissue engineering will rely on the ability to generate complex, cell seeded three-dimensional (3D) structures. Therefore, methods that can be used to precisely engineer the architecture and topography of scaffolding materials will represent a critical aspect of functional tissue engineering. Previous approaches for 3D scaffold fabrication based on top-down and process driven methods are often not adequate to produce complex structures due to the lack of control on scaffold architecture, porosity, and cellular interactions. The proposed projection stereolithography (PSL) platform can be used to design intricate 3D tissue scaffolds that can be engineered to mimic the microarchitecture of tissues, based on computer aided design (CAD). The PSL system was developed, programmed and optimized to fabricate 3D scaffolds using gelatin methacrylate (GelMA). Variation of the structure and prepolymer concentration enabled tailoring the mechanical properties of the scaffolds. A dynamic cell seeding method was utilized to improve the coverage of the scaffold throughout its thickness. The results demonstrated that the interconnectivity of pores allowed for uniform human umbilical vein endothelial cells (HUVECs) distribution and proliferation in the scaffolds, leading to high cell density and confluency at the end of the culture period. Moreover, immunohistochemistry results showed that cells seeded on the scaffold maintained their endothelial phenotype, demonstrating the biological functionality of the microfabricated GelMA scaffolds.
机译:组织工程学的成功将取决于产生复杂的细胞接种的三维(3D)结构的能力。因此,可用于精确设计支架材料的结构和形貌的方法将代表功能组织工程的关键方面。由于缺乏对支架结构,孔隙度和细胞相互作用的控制,基于自上而下和过程驱动的方法的3D支架制造的先前方法通常不足以生产复杂的结构。所提出的投影立体光刻(PSL)平台可用于设计复杂的3D组织支架,该支架可根据计算机辅助设计(CAD)设计为模仿组织的微体系结构。对PSL系统进行了开发,编程和优化,以使用甲基丙烯酸明胶(GelMA)制造3D支架。结构和预聚物浓度的变化使定制支架的机械性能成为可能。利用动态细胞接种方法来改善支架在其整个厚度上的覆盖率。结果表明,孔的互连性允许人脐静脉内皮细胞(HUVEC)在支架中均匀分布和增殖,从而导致高细胞密度和培养期末的融合。此外,免疫组织化学结果表明,接种在支架上的细胞保持其内皮表型,证明了微制造的GelMA支架的生物学功能。

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