Embedding aligned nanofibrous architectures within 3D-printed polycaprolactone scaffolds for directed cellular infiltration and tissue regeneration

聚己内酯 脚手架 3D生物打印 材料科学 静电纺丝 再生(生物学) 3d打印 细胞外基质 生物医学工程 生物加工 复合数 组织工程 渗透(HVAC) 纳米技术 化学 细胞生物学 复合材料 工程类 聚合物 生物 生物化学
作者
Zijie Meng,Xingdou Mu,Jiankang He,Juliang Zhang,Rui Ling,Dichen Li
出处
期刊:International journal of extreme manufacturing [IOP Publishing]
卷期号:5 (2): 025001-025001 被引量:46
标识
DOI:10.1088/2631-7990/acbd6c
摘要

Abstract Three-dimensional (3D) printing provides a promising way to fabricate biodegradable scaffolds with designer architectures for the regeneration of various tissues. However, the existing 3D-printed scaffolds commonly suffer from weak cell-scaffold interactions and insufficient cell organizations due to the limited resolution of the 3D-printed features. Here, composite scaffolds with mechanically-robust frameworks and aligned nanofibrous architectures are presented and hybrid manufactured by combining techniques of 3D printing, electrospinning, and unidirectional freeze-casting. It was found that the composite scaffolds provided volume-stable environments and enabled directed cellular infiltration for tissue regeneration. In particular, the nanofibrous architectures with aligned micropores served as artificial extracellular matrix materials and improved the attachment, proliferation, and infiltration of cells. The proposed scaffolds can also support the adipogenic maturation of adipose-derived stem cells (ADSCs) in vitro . Moreover, the composite scaffolds were found to guide directed tissue infiltration and promote nearby neovascularization when implanted into a subcutaneous model of rats, and the addition of ADSCs further enhanced their adipogenic potential. The presented hybrid manufacturing strategy might provide a promising way to produce additional topological cues within 3D-printed scaffolds for better tissue regeneration.
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