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Biofabrication Under Fluorocarbon: A Novel Freeform Fabrication Technique to Generate High Aspect Ratio Tissue-Engineered Constructs

机译:碳氟化合物下的生物制造:一种新的自由形式制造技术来生成高纵横比的组织工程构造。

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摘要

Bioprinting is a recent development in tissue engineering, which applies rapid prototyping techniques to generate complex living tissues. Typically, cell-containing hydrogels are dispensed layer-by-layer according to a computer-generated three-dimensional model. The lack of mechanical stability of printed hydrogels hinders the fabrication of high aspect ratio constructs. Here we present submerged bioprinting, a novel technique for freeform fabrication of hydrogels in liquid fluorocarbon. The high buoyant density of fluorocarbons supports soft hydrogels by floating. Hydrogel constructs of up to 30-mm height were generated. Using 3% (w/v) agarose as the hydrogel and disposable syringe needles as nozzles, the printer produced features down to 570-μm diameter with a lateral dispensing accuracy of 89 μm. We printed thin-walled hydrogel cylinders measuring 4.8 mm in height, with an inner diameter of ∼2.9 mm and a minimal wall thickness of ∼650 μm. The technique was successfully applied in printing a model of an arterial bifurcation. We extruded under fluorocarbon, cellularized alginate tubes with 5-mm outer diameter and 3-cm length. Cells grew vigorously and formed clonal colonies within the 7-day culture period. Submerged bioprinting thus seems particularly suited to fabricate hollow structures with a high aspect ratio like vascular grafts for cardiovascular tissue engineering as well as branching or cantilever-like structures, obviating the need for a solid support beneath the overhanging protrusions.
机译:生物打印是组织工程学的最新进展,它应用快速原型技术来生成复杂的活组织。通常,根据计算机生成的三维模型,将含细胞的水凝胶逐层分配。印刷水凝胶缺乏机械稳定性阻碍了高纵横比构造的制造。在这里,我们介绍了浸没式生物印刷,这是一种在液态碳氟化合物中自由制备水凝胶的新型技术。碳氟化合物的高浮力密度通过漂浮支撑软水凝胶。产生了高达30mm高度的水凝胶构建体。使用3%(w / v)的琼脂糖作为水凝胶,使用一次性注射器针头作为喷嘴,该打印机产生的特征直径小至570μm,横向分配精度为89μm。我们印刷了高度为4.8毫米的薄壁水凝胶圆柱体,内径约为2.9毫米,最小壁厚约为650微米。该技术已成功应用于打印动脉分叉模型。我们在氟碳纤维藻酸盐管下挤出,外径为5毫米,长度为3厘米。细胞在7天的培养期内迅速生长并形成克隆菌落。因此,浸没式生物印刷似乎特别适合于制造具有高长宽比的空心结构,例如用于心血管组织工程的血管移植物以及分支或悬臂状结构,从而无需在悬垂突起下方使用固体支撑物。

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