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Hydrogel bioprinted microchannel networks for vascularization of tissue engineering constructs

机译:用于组织工程构造血管化的水凝胶生物打印微通道网络

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摘要

Vascularization remains a critical challenge in tissue engineering. The development of vascular networks within densely populated and metabolically functional tissues facilitate transport of nutrients and removal of waste products, thus preserving cellular viability over a long period of time. Despite tremendous progress in fabricating complex tissue constructs in the past few years, approaches for controlled vascularization within hydrogel based engineered tissue constructs have remained limited. Here, we report a three dimensional (3D) micromolding technique utilizing bioprinted agarose template fibers to fabricate microchannel networks with various architectural features within photocrosslinkable hydrogel constructs. Using the proposed approach, we were able to successfully embed functional and perfusable microchannels inside methacrylated gelatin (GelMA), star poly(ethylene glycol-co-lactide) acrylate (SPELA), poly(ethylene glycol) dimethacrylate (PEGDMA) and poly(ethylene glycol) diacrylate (PEGDA) hydrogels at different concentrations. In particular, GelMA hydrogels were used as a model to demonstrate the functionality of the fabricated vascular networks in improving mass transport, cellular viability and differentiation within the cell- laden tissue constructs. In addition, successful formation of endothelial monolayers within the fabricated channels was confirmed. Overall, our proposed strategy represents an effective technique for vascularization of hydrogel constructs with useful applications in tissue engineering and organs on a chip
机译:血管化仍然是组织工程中的关键挑战。在人口稠密和具有代谢功能的组织内,血管网络的发展促进了营养物质的运输和废物的清除,因此可以长期保持细胞活力。尽管在过去的几年中在制造复杂的组织结构中取得了巨大的进步,但是在基于水凝胶的工程组织结构中控制血管形成的方法仍然受到限制。在这里,我们报告三维(3D)微成型技术,利用生物印染的琼脂糖模板纤维来制造具有光交联水凝胶结构内各种结构特征的微通道网络。使用提出的方法,我们能够成功地在甲基丙烯酸明胶(GelMA),星形聚乙二醇-丙交酯丙烯酸酯(SPELA),聚乙二醇二甲基丙烯酸酯(PEGDMA)和聚乙烯二醇)二丙烯酸酯(PEGDA)水凝胶的浓度不同。特别地,GelMA水凝胶被用作模型来证明所制造的血管网络在改善载有细胞的组织构建物中的质量运输,细胞活力和分化方面的功能。另外,证实了在所制造的通道内成功形成了内皮单层。总体而言,我们提出的策略代表了一种有效的水凝胶构造血管化技术,可用于组织工程和芯片上的器官

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