微通道
材料科学
生物医学工程
流体学
微流控
挤压
喷嘴
纳米技术
球体
复合材料
机械工程
化学
电气工程
工程类
医学
体外
生物化学
作者
Qing Gao,Zhenjie Liu,Zhiwei Lin,Jingjiang Qiu,Yu Liu,An Liu,Yidong Wang,Meixiang Xiang,Bing Chen,Jianzhong Fu,Yong He
出处
期刊:ACS Biomaterials Science & Engineering
[American Chemical Society]
日期:2017-01-18
卷期号:3 (3): 399-408
被引量:225
标识
DOI:10.1021/acsbiomaterials.6b00643
摘要
In this study, 3D hydrogel-based vascular structures with multilevel fluidic channels (macro-channel for mechanical stimulation and microchannel for nutrient delivery and chemical stimulation) were fabricated by extrusion-based three-dimensional (3D) bioprinting, which could be integrated into organ-on-chip devices that would better simulate the microenvironment of blood vessels. In this approach, partially cross-linked hollow alginate filaments loading fibroblasts and smooth muscle cells were extruded through a coaxial nozzle and then printed along a rotated rod template, and endothelial cells were seeded into the inner wall. Because of the fusion of adjacent hollow filaments, two-level fluidic channels, including a macro-channel in the middle formed from the cylindrical template and a microchannel around the wall resulted from the hollow filaments were formed. By this method, different shapes of vessellike structures of millimeter diameter were printed. The structures printed using 4% alginate exhibited ultimate strength of 0.184 MPa, and L929 mouse fibroblasts encapsulated in the structures showed over 90% survival within 1 week. As a proof of concept, an envisioned load system of both mechanical and chemical stimulation was demonstrated. In addition, a vascular circulation flow system, a cerebral artery surgery simulator, and a cell coculture model were fabricated to demonstrate potential tissue engineering applications of these printed structures.
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