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Fabrication of a thick three-dimensional scaffold with an open cellular-like structure using airbrushing and thermal cross-linking of molded short nanofibers

机译:使用喷枪和塑料的短纳米纤维的喷热和热交联制造厚的三维支架的制造具有开放的细胞状结构

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摘要

Nanoscale fibers mimicking the extracellular matrix of natural tissue can be produced by conventional electrospinning, but this approach results in two-dimensional thin dense fibrous mats which can hinder effective cell infiltration. The aim of the present study was to design a thick, three-dimensional (3D) cylindrical scaffold with an open pore structure assembled from short polycaprolactone (PCL) fibers using a facile airbrushing approach. In addition, magnesium particles were incorporated into the PCL solution to both enhance the mechanical properties of the scaffold and stimulate cellular activity following cell seeding. Separated short composite airbrushed fibers were assembled into a 3D cylindrical structure by cold-press molding and thermal cross-linking. The microstructure, chemical composition, porosity and thermal properties were subsequently investigated, along with changes in mechanical performance following immersion in PBS for 60 d. The results showed that the assembled 3D fibrous 10 mm thick cylindrical matrix had an interconnected fibrous network structure with 31.5%-60% porosity. Encapsulation of theMgparticles into the 3D assembled fibrous scaffold enhanced the mechanical properties of the plain PCL scaffolds. The results also demonstrated controlled release ofMgions into the PBS media for up to 60 d, as evaluated by changes inMgion concentration and pHof the media. In addition, the 3D fibrous assembled matrix was shown to support human osteoblast-like cell adhesion, proliferation and penetration. The results suggest that this novel fabrication method of biodegradable thick 3D scaffolds with an open pore structure is promising for the production of a new generation of 3D scaffolds for tissue regeneration applications.
机译:纳米级纤维可以通过常规的静电纺丝产生模仿天然组织的细胞外基质,但这种方法导致二维薄致密纤维垫,这可能阻碍有效的细胞浸润。本研究的目的是设计一种厚的三维(3D)圆柱形支架,其具有由宽多己内酯(PCL)纤维组装的开口孔结构使用宽面喷笔方法。此外,镁颗粒掺入PCL溶液中,以增强支架的机械性能并在细胞播种后刺激细胞活性。通过冷压成型和热交联,将分离的短复合气囊纤维组装成3D圆柱形结构。随后研究了微观结构,化学成分,孔隙率和热性质,以及在PBS中浸没60d后的机械性能的变化。结果表明,组装的3D纤维10mm厚的圆柱形基质具有互连的纤维网络结构,孔隙率为31.5%-60%。将HOMGARTINGY封装到3D组装的纤维支架中,增强了普通PCL支架的机械性能。结果还证明了将PBS培养基的控制释放至多60d,如通过变化的浓度和培养基的pHOF的变化评价。此外,显示3D纤维组装基质以支持人骨赘样细胞粘附,增殖和渗透。结果表明,这种具有开放孔隙结构的可生物降解厚3D支架的新型制造方法是对组织再生应用的新一代3D支架的生产。

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