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首页> 外文期刊>ACS applied materials & interfaces >Three-Dimensional Printed Scaffolds with Controlled Micro-/Nanoporous Surface Topography Direct Chondrogenic and Osteogenic Differentiation of Mesenchymal Stem Cells
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Three-Dimensional Printed Scaffolds with Controlled Micro-/Nanoporous Surface Topography Direct Chondrogenic and Osteogenic Differentiation of Mesenchymal Stem Cells

机译:具有受控微/纳米电孔表面形貌的三维印刷支架直接软弱性和骨质发生分化的间充质干细胞

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The effect of topography in three-dimensional (3D) printed polymer scaffolds on stem cell differentiation is a significantly underexplored area. Compared to two-dimensional (2D) biomaterials on which various well-defined topographies have been incorporated and shown to direct a range of cell behaviors including adhesion, cytoskeleton organization, and differentiation, incorporating topographical features to 3D polymer scaffolds is challenging due to the difficulty of accessing the inside of a porous scaffold. Only the roughened strut surface has been introduced to 3D printed porous scaffolds. Here, a rapid, single-step 3D printing method to fabricate polymeric scaffolds consisting of microstruts (ca. 60 mu m) with micro-/nanosurface pores (0.2-2.4 mu m) has been developed based on direct ink writing of an agitated viscous polymer solution. The density, size, and alignment of these pores can be controlled by changing the degree of agitation or the speed of printing. Three-dimensional printed scaffolds with micro-/nanoporous struts enhanced chondrogenic and osteogenic differentiation of mesenchymal stem cells (MSCs) without soluble differentiation factors. The topography also selectively affected adhesion, morphology, and differentiation of MSC to chondrogenic and osteogenic lineages depending on the composition of the differentiation medium. This fabrication method can potentially be used for a wide range of polymers where desirable architecture and topography are required.
机译:在干细胞分化上的三维(3D)印刷聚合物支架上的地形在三维(3D)印刷的聚合物支架上是显着的望远镜未曝光的区域。与二维(2D)生物材料相比,在其上掺入了各种明确的饰面并显示指向包括粘附,细胞骨架组织和分化的一系列细胞行为,并将地形特征掺入3D​​聚合物支架的疑惑进入多孔脚手架的内部。只引入了粗糙的支柱表面以3D印刷多孔支架。这里,基于搅拌粘性的直接墨水写入,开发了一种快速的单步三维印刷方法,用于制造由微/纳米孔孔(0.2-2.4μm)的微/纳米孔孔(0.2-2.4μm)组成的聚合物支架(0.2-2.4μm)。聚合物溶液。这些孔的密度,尺寸和对准可以通过改变搅拌程度或印刷速度来控制。具有微/纳米孔支柱的三维印刷支架增强了间充质干细胞(MSCs)的软骨内和成骨分化而不可溶的分化因子。根据分化介质的组成,地形还选择性地影响了MSC与软骨内和骨质发生谱系的粘附性,形貌和分化。该制造方法可能用于各种聚合物,包括所需的架构和地形。

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