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Wet 3D printing of biodegradable porous scaffolds to enable room-temperature deposition modeling of polymeric solutions for regeneration of articular cartilage

材料科学 脚手架 聚酯纤维 可生物降解聚合物 组织工程 PLGA公司 熔融沉积模型 生物医学工程 再生(生物学) 软骨 多孔性 3D打印 聚合物 复合材料 纳米技术 解剖 细胞生物学 医学 生物 纳米颗粒
作者
Xiaoye Yu,Peng Wang,Jingming Gao,Ye Fu,Qunsong Wang,Jun Chen,Shiyi Chen,Jiandong Ding
出处
期刊:Biofabrication [IOP Publishing]
卷期号:16 (3): 035007-035007 被引量:1
标识
DOI:10.1088/1758-5090/ad3a12
摘要

Abstract Tissue engineering has emerged as an advanced strategy to regenerate various tissues using different raw materials, and thus it is desired to develop more approaches to fabricate tissue engineering scaffolds to fit specific yet very useful raw materials such as biodegradable aliphatic polyester like poly (lactide- co -glycolide) (PLGA). Herein, a technique of ‘wet 3D printing’ was developed based on a pneumatic extrusion three-dimensional (3D) printer after we introduced a solidification bath into a 3D printing system to fabricate porous scaffolds. The room-temperature deposition modeling of polymeric solutions enabled by our wet 3D printing method is particularly meaningful for aliphatic polyester, which otherwise degrades at high temperature in classic fuse deposition modeling. As demonstration, we fabricated a bilayered porous scaffold consisted of PLGA and its mixture with hydroxyapatite for regeneration of articular cartilage and subchondral bone. Long-term in vitro and in vivo degradation tests of the scaffolds were carried out up to 36 weeks, which support the three-stage degradation process of the polyester porous scaffold and suggest faster degradation in vivo than in vitro . Animal experiments in a rabbit model of articular cartilage injury were conducted. The efficacy of the scaffolds in cartilage regeneration was verified through histological analysis, micro-computed tomography (CT) and biomechanical tests, and the influence of scaffold structures (bilayer versus single layer) on in vivo tissue regeneration was examined. This study has illustrated that the wet 3D printing is an alternative approach to biofabricate tissue engineering porous scaffolds based on biodegradable polymers.

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