微通道
材料科学
微流控
生物医学工程
细菌纤维素
多孔性
纳米技术
纤维素
复合材料
化学工程
医学
工程类
作者
Hongbin Li,Feng Cheng,Wanlu Li,Xia Cao,Zixuan Wang,Mian Wang,Juan Antonio Robledo-Lara,Junlong Liao,Carolina Chávez-Madero,Shabir Hassan,Jingwei Xie,Grissel Trujillo‐de Santiago,Mario Moisés Álvarez,Jinmei He,Yu Shrike Zhang
出处
期刊:Biofabrication
[IOP Publishing]
日期:2020-08-20
卷期号:12 (4): 045027-045027
被引量:25
标识
DOI:10.1088/1758-5090/abb11e
摘要
Abstract We report a method for expanding microchannel-embedded paper devices using a precisely controlled gas-foaming technique for the generation of volumetric tissue models in vitro . We successfully fabricated hollow, perfusable microchannel patterns contained in a densely entangled network of bacterial cellulose nanofibrils using matrix-assisted sacrificial three-dimensional printing, and demonstrated the maintenance of their structural integrity after gas-foaming-enabled expansion in an aqueous solution of NaBH 4 . The resulting expanded microchannel-embedded paper devices showed multilayered laminar structures with controllable thicknesses as a function of both NaBH 4 concentration and expansion time. With expansion, the thickness and porosity of the bacterial cellulose network were significantly increased. As such, cellular infiltration was promoted comparing to as-prepared, non-expanded devices. This simple technique enables the generation of truly volumetric, cost-effective human-based tissue models, such as vascularized tumor models, for potential applications in preclinical drug screening and personalized therapeutic selection.
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