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Direct Bioprinting of Vessel-Like Tubular Microfluidic Channels

机译:血管样微流控通道的直接生物印记

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摘要

Despite the progress in tissue engineering, several challenges must be addressed for organ printing to become a reality. The most critical challenge is the integration of a vascular network, which is also a problem that the majority of tissue engineering technologies are facing. An embedded microfluidic channel network is probably the most promising solution to this problem. However, the available microfluidic channel fabrication technologies either have difficulty achieving a three-dimensional complex structure or are difficult to integrate within cell printing process in tandem. In this paper, a novel printable vessel-like microfluidic channel fabrication method is introduced that enables direct bioprinting of cellular microfluidic channels in form of hollow tubes. Alginate and chitosan hydrogels were used to fabricate microfluidic channels showing the versatility of the process. Geometric characterization was performed to understand effect of biomaterial and its flow rheology on geometric properties. Microfluidic channels were printed and embedded within bulk hydrogel to test their functionality through perfusion of cell type oxygenized media. Cell viability experiments were conducted and showed great promise of the microfluidic channels for development of vascular networks.
机译:尽管组织工程学方面取得了进步,但要使器官打印成为现实,仍必须解决几个挑战。最关键的挑战是血管网络的集成,这也是大多数组织工程技术都面临的问题。嵌入式微流体通道网络可能是此问题最有希望的解决方案。然而,可用的微流体通道制造技术要么难以实现三维复杂结构,要么难以串联集成在细胞印刷过程中。在本文中,介绍了一种新颖的可打印的容器样微流控通道制造方法,该方法能够以空心管的形式直接生物打印细胞微流控通道。用藻酸盐和壳聚糖水凝胶制造微流体通道,显示出该方法的多功能性。进行几何表征以了解生物材料及其流动流变学对几何性质的影响。印刷微流体通道并将其嵌入块状水凝胶中,以通过灌注细胞类型的氧化介质来测试其功能。进行了细胞活力实验,并显示了微流体通道对血管网络发展的巨大希望。

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