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首页> 外文期刊>Lab on a chip >Stereolithographic hydrogel printing of 3D culture chips with biofunctionalized complex 3D perfusion networks
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Stereolithographic hydrogel printing of 3D culture chips with biofunctionalized complex 3D perfusion networks

机译:3D培养芯片的立体镀水凝胶印刷与生物功能化复合3D灌注网络

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摘要

Three-dimensional (3D) in vitro models capturing both the structural and dynamic complexity of the in vivo situation are in great demand as an alternative to animal models. Despite tremendous progress in engineering complex tissue/organ models in the past decade, approaches that support the required freedom in design, detail and chemistry for fabricating truly 3D constructs have remained limited. Here, we report a stereolithographic high-resolution 3D printing technique utilizing poly(ethylene glycol) diacrylate (PEGDA, MW 700) to manufacture diffusion-open and mechanically stable hydrogel constructs as self-contained chips, where confined culture volumes are traversed and surrounded by perfusable vascular-like networks. An optimized resin formulation enables printing of hydrogel chips holding perfusable microchannels with a cross-section as small as 100 mu m x 100 mu m, and the printed microchannels can be steadily perfused for at least one week. In addition, the integration of multiple independently perfusable and structurally stable channel systems further allows for easy combination of different bulk material volumes at exact relative spatial positions. We demonstrate this structural and material flexibility by embedding a highly compliant cell-laden gelatin hydrogel within the confines of a 3D printed resilient PEGDA hydrogel chip of intermediate compliance. Overall, our proposed strategy represents an automated, cost-effective and high resolution technique to manufacture complex 3D constructs containing microfluidic perfusion networks for advanced in vitro models.
机译:三维(3D)体外模型捕获体内情况的结构和动态复杂性,作为动物模型的替代方案。尽管过去十年工程复杂组织/器官模型具有巨大进展,但支持设计,细节和化学制造真正3D构建体所需自由的方法仍然有限。在这里,我们报告了利用聚(乙二醇)二丙烯酸酯(PEGDA,MW 700)来制造扩散 - 开放和机械稳定的水凝胶构建体作为独立芯片的立体刻度高分辨率3D打印技术,其中包括狭窄的培养体积遍历并包围令我义的血管状网络。优化的树脂配方使得能够用横截面保持可灌注微通道的水凝胶芯片,横截面小至100μm×100μm,并且印刷的微通道可以稳定地灌注至少一周。另外,多个独立灌注和结构稳定的通道系统的集成还允许在精确的相对空间位置轻松地组合不同的散装材料体积。我们通过在中间顺应性的3D印刷弹性PEGDA水凝胶芯片的限制内嵌入高度柔和的细胞 - 升起的明胶水凝胶来证明这种结构和材料的灵活性。总体而言,我们的拟议策略代表了一种自动化,成本效益和高分辨率高,用于制造含有用于高级体外模型的微流体灌注网络的复杂3D构建体。

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