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Microfabrication of AngioChip, a biodegradable polymer scaffold with microfluidic vasculature

机译:血管芯片的微型加工,一种具有微流体脉管系统的可生物降解的聚合物支架

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摘要

Microengineered biomimetic systems for organ-on-a-chip or tissue engineering purposes often fail as a result of an inability to recapitulate the in vivo environment, specifically the presence of a well-defined vascular system. To address this limitation, we developed an alternative method to cultivate three-dimensional (3D) tissues by incorporating a microfabricated scaffold, termed AngioChip, with a built-in perfusable vascular network. Here, we provide a detailed protocol for fabricating the AngioChip scaffold, populating it with endothelial cells and parenchymal tissues, and applying it in organ-on-a-chip drug testing in vitro and surgical vascular anastomosis in vivo. The fabrication of the AngioChip scaffold is achieved by a 3D stamping technique, in which an intricate microchannel network can be embedded within a 3D scaffold. To develop a vascularized tissue, endothelial cells are cultured in the lumen of the AngioChip network, and parenchymal cells are encapsulated in hydrogels that are amenable to remodeling around the vascular network to form functional tissues. Together, these steps yield a functional, vascularized network in vitro over a 14-d period. Finally, we demonstrate the functionality of AngioChip-vascularized hepatic and cardiac tissues, and describe direct surgical anastomosis of the AngioChip vascular network on the hind limb of a Lewis rat model.
机译:由于无法延长体内环境,特别是存在明确定义的血管系统的存在,微能介入的用于器官或组织工程目的的生物摩擦系统通常失败。为了解决这些限制,我们通过用内置灌注的血管网络掺入血管芯片的微制造支架,开发了一种替代方法来培养三维(3D)组织。在这里,我们提供了一种制造血管芯片支架的详细方案,用内皮细胞和实质组织填充它,并在体内体外和外科手术血管吻合术中施加在芯片药物测试中。通过3D冲压技术实现昂昔芯芯片支架的制造,其中复杂的微通道网络可以嵌入3D支架内。为了开发血管化组织,内皮细胞在血管芯片网络的内腔中培养,并且实质细胞包封在水凝胶中,该水凝胶中均可围绕血管网络重塑以形成功能组织。这些步骤在一起,在14-D期间在体外产生功能性血管化网络。最后,我们展示了血管膜 - 血管化肝癌和心脏组织的功能,并描述了Lewis大鼠模型的后肢的血管芯片血管网络的直接外科吻合。

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