首页> 外文OA文献 >Novel 3D Electrospun Scaffolds with Fibers Oriented Randomly and Evenly in Three Dimensions to Closely Mimic the Unique Architectures of Extracellular Matrices in Soft Tissues: Fabrication and Mechanism Study
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Novel 3D Electrospun Scaffolds with Fibers Oriented Randomly and Evenly in Three Dimensions to Closely Mimic the Unique Architectures of Extracellular Matrices in Soft Tissues: Fabrication and Mechanism Study

机译:三维随机均匀定向的新型三维电纺支架,可以近似模拟软组织中细胞外基质的独特结构:制作和机理研究

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摘要

In this work, novel electrospun scaffolds with fibers oriented randomly and evenly in three dimensions (3D) including in the thickness direction were developed based on the principle of electrostatic repulsion. This unique structure is different from most electrospun scaffolds with fibers oriented mainly in one direction. The structure of novel 3D scaffolds could more closely mimic the 3D randomly oriented fibrous architectures in many native extracellular matrices (ECMs). The cell culture results of this study indicated that, instead of becoming flattened cells when cultured in conventional electrospun scaffolds, the cells cultured on novel 3D scaffolds could develop into stereoscopic topographies, which highly simulated in vivo 3D cellular morphologies and are believed to be of vital importance for cells to function and differentiate appropriately. Also, due to the randomly oriented fibrous structure, improvement of nearly 5 times in cell proliferation could be observed when comparing our 3D scaffolds with 2D counterparts after 7 days of cell culture, while most currently reported 3D scaffolds only showed 1.5- to 2.5-fold improvement for the similar comparison. One mechanism of this fabrication process has also been proposed and showed that the rapid delivery of electrons on the fibers was the crucial factor for formation of 3D architectures.
机译:在这项工作中,基于静电排斥的原理,开发了新颖的电纺支架,其纤维在包括厚度方向在内的三个维度(3D)中随机且均匀地定向。这种独特的结构与大多数电纺支架不同,后者的纤维主要沿一个方向取向。新型3D支架的结构可以更紧密地模仿许多天然细胞外基质(ECM)中的3D随机取向的纤维结构。这项研究的细胞培养结果表明,在常规的电纺支架中培养的细胞不会变成扁平的细胞,而是在新型3D支架上培养的细胞可以发展成为立体形貌,可以高度模拟体内3D细胞形态,并且被认为是至关重要的。细胞正常运作和分化的重要性。同样,由于随机定向的纤维结构,在细胞培养7天后将我们的3D支架与2D支架进行比较时,可以观察到近5倍的细胞增殖改善,而目前大多数报道的3D支架仅显示1.5到2.5倍进行类似比较的改进。还提出了这种制造过程的一种机制,该机制表明电子在纤维上的快速传递是形成3D结构的关键因素。

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