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Osteogenic Differentiation of Human Mesenchymal Stem cells in a 3D Woven Scaffold

机译:人间充质干细胞在3D编织支架中的成骨分化。

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摘要

Fiber-based scaffolds produced by textile manufacturing technology offer versatile materials for tissue engineering applications since a wide range of crucial scaffold parameters, including porosity, pore size and interconnectivity, can be accurately controlled using 3D weaving. In this study, we developed a weavable, bioactive biodegradable composite fiber from poly (lactic acid) (PLA) and hydroxyapatite powder by melt spinning. Subsequently, scaffolds of these fibers were fabricated by 3D weaving. The differentiation of human mesenchymal stem cells (hMSCs) in vitro was studied on the 3D scaffolds and compared with differentiation on 2D substrates having the same material composition. Our data showed that the 3D woven scaffolds have a major impact on hMSCs proliferation and activation. The 3D architecture supports the differentiation of the hMSCs into osteoblast cells and enhances the production of mineralized bone matrix. The present study further confirms that a 3D scaffold promotes hMSCs differentiation into the osteoblast–lineage and bone mineralization.
机译:纺织制造技术生产的基于纤维的脚手架为组织工程应用提供了多种材料,因为可以使用3D编织精确控制包括孔隙度,孔径和互连性在内的各种关键脚手架参数。在这项研究中,我们通过熔融纺丝从聚乳酸(PLA)和羟基磷灰石粉末开发了一种可编织,生物活性的可生物降解复合纤维。随后,通过3D编织来制造这些纤维的支架。在3D支架上研究了人间充质干细胞(hMSCs)的体外分化,并与具有相同材料组成的2D基质的分化进行了比较。我们的数据显示3D编织支架对hMSC的增殖和活化具有重大影响。 3D架构支持将hMSC分化为成骨细胞,并增强矿化骨基质的产生。本研究进一步证实了3D支架可促进hMSC分化为成骨细胞谱系和骨矿化。

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