Department of Biomedical Engineering, Technion-Israel Institute of Technology.
Department of Biomedical Engineering, Technion-Israel Institute of Technology.
Acta Biomater. 2023 Jun;163:182-193. doi: 10.1016/j.actbio.2022.05.026. Epub 2022 May 18.
Vascularization of 3D engineered tissues poses a great challenge in the field of tissue engineering. One promising approach for vascularizing engineered tissue is cocultivation with endothelial cells (ECs), which spontaneously self-assemble into a natural capillary network in the presence of supportive cells. However, the ECs do not self-assemble according to physiological hierarchy which is required to support blood supply. This work describes the design and fabrication of an AngioTube, a biodegradable engineered macro-vessel surrounded by cylindrical micro-channel array, which is designed to support physiological flow distribution and enable the integration with living capillaries. The well-defined geometry of the engineered micro-channels guides endothelial cells to form patent micro-vessels which sprouted in accordance with the channel orientation. Three different in-vitro models were used to demonstrate anastomosis of these engineered micro-vessels with self-assembled vascular networks. Finally, in-vivo functionality was demonstrated by direct anastomosis with the femoral artery in a rat hindlimb model. This unique approach proposes a new micro-fabrication strategy which introduces uncompromised micro-fluidic device geometrical accuracy at the tissue-scale level. STATEMENT OF SIGNIFICANCE: This study proposes a micro-fabrication strategy suitable for processing real-scale cylindrical implants with very high accuracy, which will enable translation of the high-resolution geometry of micro-fluidic devices to clinically relevant implants containing functional multi-scale vascular networks. Moreover, this approach promises to advance the field of tissue engineering by opening new opportunities to explore the impact of well controlled and uncompromised 3D micro-geometry on cellular behavior.
三维工程组织的血管化在组织工程领域是一个巨大的挑战。血管化工程组织的一种很有前途的方法是与内皮细胞(EC)共培养,在支持细胞存在的情况下,EC 会自发地自我组装成自然的毛细血管网络。然而,EC 不会按照支持血液供应所需的生理层次结构进行自我组装。这项工作描述了 AngioTube 的设计和制造,这是一种可生物降解的工程化大血管,周围环绕着圆柱形微通道阵列,旨在支持生理流量分布并实现与活毛细血管的整合。工程微通道的明确定义的几何形状引导内皮细胞形成专利微脉管,这些微脉管按照通道方向发芽。使用了三种不同的体外模型来证明这些工程化微脉管与自发形成的血管网络的吻合。最后,通过直接与大鼠后肢模型的股动脉吻合,证明了体内功能。这种独特的方法提出了一种新的微制造策略,该策略在组织尺度上引入了无损微流控器件几何精度。意义声明:本研究提出了一种适用于处理具有非常高精度的真实圆柱植入物的微制造策略,这将使微流控器件的高分辨率几何形状能够转化为包含功能多尺度血管网络的临床相关植入物。此外,这种方法有望通过探索经过良好控制和无损的 3D 微观几何对细胞行为的影响,为组织工程领域开辟新的机会。