材料科学
脚手架
3D打印
3D生物打印
组织工程
明胶
自愈水凝胶
硬组织
生物相容性材料
纳米技术
软组织
生物医学工程
计算机科学
复合材料
化学
工程类
牙科
高分子化学
病理
医学
生物化学
作者
Sarah Van Belleghem,Leopoldo Torres,Marco Santoro,Bhushan Mahadik,Arley Wolfand,Peter Kofinas,John P. Fisher
标识
DOI:10.1002/adfm.201907145
摘要
Abstract Despite recent advances in clinical procedures, the repair of soft tissue remains a reconstructive challenge. Current technologies such as synthetic implants and dermal flap autografting result in inefficient shape retention and unpredictable aesthetic outcomes. 3D printing, however, can be leveraged to produce superior soft tissue grafts that allow enhanced host integration and volume retention. Here, a novel dual bioink 3D printing strategy is presented that utilizes synthetic and natural materials to create stable, biomimetic soft tissue constructs. A double network ink composed of covalently cross‐linked poly(ethylene) glycol and ionically cross‐linked alginate acts as a physical support network that promotes cell growth and enables long‐term graft shape retention. This is coupled with a cell‐laden, biodegradable gelatin methacrylate bioink in a hybrid printing technique, and the composite scaffolds are evaluated in their mechanical properties, shape retention, and cytotoxicity. Additionally, a new shape analysis technique utilizing CloudCompare software is developed that expands the available toolbox for assessing scaffold aesthetic properties. With this dynamic 3D bioprinting strategy, complex geometries with robust internal structures can be easily modulated by varying the print ratio of nondegradable to sacrificial strands. The versatility of this hybrid printing fabrication platform can inspire the design of future multimaterial regenerative implants.
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