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Continuous Fabrication and Assembly of Spatial Cell-Laden Fibers for a Tissue-Like Construct via a Photolithographic-Based Microfluidic Chip

机译:通过基于光刻的微流控芯片连续制造和组装类似组织结构的空间细胞纤维。

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摘要

Engineering three-dimensional (3D) scaffolds with in vivo like architecture and function has shown great potential for tissue regeneration. Here we developed a facile microfluidic-based strategy for the continuous fabrication of cell-laden microfibers with hierarchically organized architecture. We show that photolithographically fabricated microfluidic devices offer a simple and reliable way to create anatomically inspired complex structures. Furthermore, the use of photo-cross-linkable methacrylated alginate allows modulation of both the mechanical properties and biological activity of the hydrogels for targeted applications. Via this approach, multilayered hollow microfibers were continuously fabricated, which can be easily assembled in situ, using 3D printing, into a larger, tissue-like construct. Importantly, this biomimetic approach promoted the development of phenotypical functions of the target tissue. As a model to engineer a complex tissue construct, osteon-like fiber was biomimetically engineered, and enhanced vasculogenic and osteogenic expression were observed in the encapsulated human umbilical cord vein endothelial cells and osteoblast-like MG63 cells respectively within the osteon fibers. The capability of this approach to create functional building blocks will be advantageous for bottom-up regeneration of complex, large tissue defects and, more broadly, will benefit a variety of applications in tissue engineering and biomedical research.
机译:具有体内结构和功能的工程化三维(3D)支架已显示出巨大的组织再生潜力。在这里,我们开发了一种基于微流控的简便策略,可用于连续制造带有分层组织架构的充满细胞的微纤维。我们表明,光刻制造的微流体装置提供了一种简单可靠的方法来创建解剖学启发的复杂结构。此外,使用可光交联的甲基丙烯酸甲酯化藻酸盐可调节水凝胶的机械性能和生物学活性,以用于目标应用。通过这种方法,连续制造了多层中空超细纤维,可以使用3D打印在原位轻松组装成更大的组织状结构。重要的是,这种仿生方法促进了靶组织表型功能的发展。作为工程改造复杂组织构建体的模型,对骨样纤维进行了仿生工程改造,并且在骨纤维内封装的人脐带静脉内皮细胞和成骨样MG63细胞中分别观察到了增强的血管生成和成骨表达。这种创建功能性构造块的方法的能力将有利于复杂,大型组织缺损的自下而上的再生,并且更广泛地,将有益于组织工程和生物医学研究中的各种应用。

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