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Direct three-dimensional printing of polymeric scaffolds with nanofibrous topography

机译:用纳米纤维形貌直接三维印刷聚合物支架

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摘要

Three-dimensional (3D) printing is a powerful manufacturing tool for making 3D structures with well defined architectures for a wide range of applications. The field of tissue engineering has also adopted this technology to fabricate scaffolds for tissue regeneration. The ability to control architecture of scaffolds, e.g. matching anatomical shapes and having defined pore size, has since been improved significantly. However, the material surface of these scaffolds is smooth and does not resemble that found in natural extracellular matrix (ECM), in particular, the nanofibrous morphology of collagen. This natural nanoscale morphology plays a critical role in cell behaviour. Here, we have developed a new approach to directly fabricate polymeric scaffolds with an ECM-like nanofibrous topography and defined architectures using extrusion-based 3D printing. 3D printed tall scaffolds with interconnected pores were created with disparate features spanning from nanometres to centimetres. Our approach removes the need for a sacrificial mould and subsequent mould removal compared to previous methods. Moreover, the nanofibrous topography of the 3D printed scaffolds significantly enhanced protein absorption, cell adhesion and differentiation of human mesenchymal stem cells when compared to those with smooth material surfaces. These 3D printed scaffolds with both defined architectures and nanoscale ECM-mimicking morphologies have potential applications in cartilage and bone regeneration.
机译:三维(3D)印刷是一种强大的制造工具,用于制作具有良好定义架构的3D结构,可用于各种应用。组织工程领域还采用该技术制造用于组织再生的支架。控制脚手架架构的能力,例如匹配解剖结构并具有定义的孔径,因此已显着提高。然而,这些支架的材料表面是光滑的,并且不像在天然细胞外基质(ECM)中发现,特别是胶原蛋白的纳米纤维形态。这种天然纳米级形态在细胞行为中起着关键作用。在这里,我们开发了一种新方法,可以用基于挤出的3D印刷用ECM样纳米纤维形貌和定义的架构直接制造聚合物支架和定义的架构。 3D使用从纳米到厘米的不同特征产生具有相互连接的孔的印刷高支架。我们的方法除去了与先前的方法相比,对牺牲模具和随后的模具去除。此外,与具有光滑材料表面相比,3D印刷支架的纳米纤维地形显着增强了人间充质干细胞的蛋白质吸收,细胞粘附和分化。这些3D印刷的具有定义架构和纳米级ECM模拟形态的支架具有潜在的软骨和骨再生的应用。

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