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Creating Perfused Functional Vascular Channels Using 3D Bio-Printing Technology

机译:使用3D生物打印技术创建灌注的功能性血管通道

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摘要

We developed a methodology using 3D bio-printing technology to create a functional in vitro vascular channel with perfused open lumen using only cells and biological matrices. The fabricated vasculature has a tight, confluent endothelium lining, presenting barrier function for both plasma protein and high-molecular weight dextran molecule. The fluidic vascular channel is capable of supporting the viability of tissue up to 5mm in distance at 5 million cells/mL density under the physiological flow condition. In static-cultured vascular channels, active angiogenic sprouting from the vessel surface was observed whereas physiological flow strongly suppressed this process. Gene expression analysis were reported in this study to show the potential of this vessel model in vascular biology research. The methods have great potential in vascularized tissue fabrication using 3D bio-printing technology as the vascular channel is simultaneously created while cells and matrix are printed around the channel in desired 3D patterns. It can also serve as a unique experimental tool for investigating fundamental mechanisms of vascular remodeling with extracellular matrix and maturation process under 3D flow condition.
机译:我们开发了一种使用3D生物打印技术的方法,以仅使用细胞和生物基质创建具有灌注开放腔的功能性体外血管通道。人造血管具有紧密的融合内皮衬里,对血浆蛋白和高分子量右旋糖酐分子均表现出屏障功能。在生理流动条件下,流体血管通道能够以5百万个细胞/ mL的密度支持长达5mm距离的组织的活力。在静态培养的血管通道中,从血管表面观察到活跃的血管生成萌芽,而生理流强烈抑制了该过程。在这项研究中报道了基因表达分析,以显示该血管模型在血管生物学研究中的潜力。该方法在使用3D生物打印技术制造血管化组织中具有巨大潜力,因为同时创建了血管通道,而细胞和基质则以所需的3D模式被打印在通道周围。它也可以用作研究3D流动条件下细胞外基质与成熟过程的血管重塑基本机制的独特实验工具。

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