首页> 美国卫生研究院文献>Journal of Functional Biomaterials >Blood-Vessel Mimicking Structures by Stereolithographic Fabrication of Small Porous Tubes Using Cytocompatible Polyacrylate Elastomers Biofunctionalization and Endothelialization
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Blood-Vessel Mimicking Structures by Stereolithographic Fabrication of Small Porous Tubes Using Cytocompatible Polyacrylate Elastomers Biofunctionalization and Endothelialization

机译:通过使用细胞相容性聚丙烯酸酯弹性体的小孔管立体光刻加工生物功能化和内皮化的血管模拟结构

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摘要

Blood vessel reconstruction is still an elusive goal for the development of in vitro models as well as artificial vascular grafts. In this study, we used a novel photo-curable cytocompatible polyacrylate material (PA) for freeform generation of synthetic vessels. We applied stereolithography for the fabrication of arbitrary 3D tubular structures with total dimensions in the centimeter range, 300 µm wall thickness, inner diameters of 1 to 2 mm and defined pores with a constant diameter of approximately 100 µm or 200 µm. We established a rinsing protocol to remove remaining cytotoxic substances from the photo-cured PA and applied thio-modified heparin and RGDC-peptides to functionalize the PA surface for enhanced endothelial cell adhesion. A rotating seeding procedure was introduced to ensure homogenous endothelial monolayer formation at the inner luminal tube wall. We showed that endothelial cells stayed viable and adherent and aligned along the medium flow under fluid-flow conditions comparable to native capillaries. The combined technology approach comprising of freeform additive manufacturing (AM), biomimetic design, cytocompatible materials which are applicable to AM, and biofunctionalization of AM constructs has been introduced as BioRap® technology by the authors.
机译:对于体外模型以及人造血管移植物的开发,血管重建仍然是一个遥不可及的目标。在这项研究中,我们使用一种新型的光固化细胞相容性聚丙烯酸酯材料(PA)来自由生成合成容器。我们将立体光刻技术用于制造任意3D管状结构,其总尺寸在厘米范围内,壁厚为300 µm,内径为1至2 mm,并且定义的孔的直径恒定为约100 µm或200 µm。我们建立了漂洗协议,以从光固化的PA中去除残留的细胞毒性物质,并应用硫代修饰的肝素和RGDC肽功能化PA表面,以增强内皮细胞的粘附性。引入旋转接种程序以确保在内腔管壁上形成均匀的内皮单层。我们显示内皮细胞在与天然毛细血管相当的流体流动条件下保持存活和粘附并沿培养基流排列。作者将结合自由形式的增材制造(AM),仿生设计,适用于AM的细胞相容性材料以及AM构建体的生物功能化等组合技术方法作为BioRap ®技术进行了介绍。

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