Gu Zeming, Xie Mingjun, Lv Shang, Liu Nian, He Jing, Li Yuanrong, Zhu Yuanbo, Fu Jianzhong, Lin Hui, Xie Chaoqi, He Yong
State Key Laboratory of Fluid Power and Mechatronic Systems, School of Mechanical Engineering, Zhejiang University, Hangzhou 310027, China.
Key Laboratory of 3D Printing Process and Equipment of Zhejiang Province, School of Mechanical Engineering, Zhejiang University, Hangzhou 310027, China.
Int J Bioprint. 2022 Sep 22;8(4):619. doi: 10.18063/ijb.v8i4.619. eCollection 2022.
Vessel-on-a-chips, which can be used to study microscale fluid dynamics, tissue-level biological molecules delivery and intercellular communication under favorable three-dimensional (3D) extracellular matrix microenvironment, are increasingly gaining traction. However, not many of them can allow for long-term perfusion and easy observation of angiogenesis process. Since angiogenesis is necessary for the expansion of tumor, antiangiogenic drugs play a significant role in cancer treatment. In this study, we established an innovative and reliable antiangiogenic drug screening chip that was highly modularly integrated for long-term perfusion (up to 10 days depending on the hydrogel formula) and real-time monitoring. To maintain an unobstructed flow of cell-laden tubes for subsequent perfusion culture on the premise of excellent bioactivities, a polycaprolactone stent inspired by coronary artery stents was introduced to hold up the tubular lumen from the inside, while the perfusion chip was also elaborately designed to allow for convenient observation. After 3 days of perfusion screening, distinct differences in human umbilical vein endothelial cell sprouting were observed for a gradient of concentrations of bevacizumab, which pointed to the effectiveness and reliability of the drug screening perfusion system. Overall, a perfusion system for antiangiogenic drug screening was developed, which can not only conduct drug evaluation, but also be potentially useful in other vessel-mimicking scenarios in the area of tissue engineering, drug screening, pharmacokinetics, and regenerative medicine.
芯片血管可用于在良好的三维(3D)细胞外基质微环境下研究微观流体动力学、组织水平的生物分子递送和细胞间通讯,越来越受到关注。然而,其中能够实现长期灌注并便于观察血管生成过程的并不多。由于血管生成是肿瘤生长所必需的,抗血管生成药物在癌症治疗中发挥着重要作用。在本研究中,我们建立了一种创新且可靠的抗血管生成药物筛选芯片,该芯片高度模块化集成,可进行长期灌注(根据水凝胶配方可达10天)并实时监测。为了在保持优异生物活性的前提下,维持载细胞管的通畅以便后续进行灌注培养,引入了受冠状动脉支架启发的聚己内酯支架从内部支撑管腔,同时灌注芯片也经过精心设计以便于观察。经过3天的灌注筛选,观察到不同浓度梯度的贝伐单抗对人脐静脉内皮细胞发芽有明显差异,这表明药物筛选灌注系统的有效性和可靠性。总体而言,开发了一种用于抗血管生成药物筛选的灌注系统,该系统不仅可以进行药物评估,还可能在组织工程、药物筛选、药代动力学和再生医学领域的其他血管模拟场景中发挥作用。