电气导管
生物加工
自愈水凝胶
生物医学工程
机械生物学
血栓形成
血管网
材料科学
组织工程
医学
解剖
外科
计算机科学
电信
高分子化学
血栓形成
作者
Di Wang,Sushila Maharjan,Xiao Kuang,Zixuan Wang,Luis Santiago Mille,Ming Tao,Peng Yu,Xia Cao,Liming Lian,Li Lv,Jacqueline Jialu He,Guosheng Tang,Hyunwoo Yuk,C. Keith Ozaki,Xuanhe Zhao,Yu Shrike Zhang
出处
期刊:Science Advances
[American Association for the Advancement of Science (AAAS)]
日期:2022-10-26
卷期号:8 (43): eabq6900-eabq6900
被引量:174
标识
DOI:10.1126/sciadv.abq6900
摘要
Three-dimensional (3D) bioprinting of vascular tissues that are mechanically and functionally comparable to their native counterparts is an unmet challenge. Here, we developed a tough double-network hydrogel (bio)ink for microfluidic (bio)printing of mono- and dual-layered hollow conduits to recreate vein- and artery-like tissues, respectively. The tough hydrogel consisted of energy-dissipative ionically cross-linked alginate and elastic enzyme–cross-linked gelatin. The 3D bioprinted venous and arterial conduits exhibited key functionalities of respective vessels including relevant mechanical properties, perfusability, barrier performance, expressions of specific markers, and susceptibility to severe acute respiratory syndrome coronavirus 2 pseudo-viral infection. Notably, the arterial conduits revealed physiological vasoconstriction and vasodilatation responses. We further explored the feasibility of these conduits for vascular anastomosis. Together, our study presents biofabrication of mechanically and functionally relevant vascular conduits, showcasing their potentials as vascular models for disease studies in vitro and as grafts for vascular surgeries in vivo, possibly serving broad biomedical applications in the future.
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