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Fabrication of electrospun nanofibrous scaffolds with 3D controllable geometric shapes

机译:具有3D可控几何形状的静电纺纳米纤维支架的制造

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摘要

Electrospinning has become widely used in tissue engineering due to its ability to fabricate nanofibrous scaffolds that can simulate the extracellular matrix. However, it is a challenge to develop three-dimensional (3D) electrospun nanofibrous scaffolds with controllable geometric shapes. In this study, we present a novel method in which 3D printing is combined with electrospinning to fabricate 3D shaped scaffolds. Using gas foaming technology, two-dimensional electrospun scaffolds were treated with a NaBH4/methanol solution inside a 3D printed mold, which resulted in a 3D porous layered scaffold with the designed geometric shape. The in vitro biocompatibility analysis results indicate that the 3D scaffolds fabricated by the present method were favorable for cell attachment and growth. In addition, as proof of concept, cells were seeded on the 3D scaffolds using 3D bioprinting to obtain controlled deposition. The experimental results show that cells were initially encapsulated in the hydrogel and then migrated accurately back onto the scaffolds. These strategy will allow for novel design and mass production of electrospun nanofibrous scaffolds, which could have potential applications in tissue engineering and regenerative medicine. (C) 2018 Elsevier Ltd. All rights reserved.
机译:由于静电纺丝能够制造可模拟细胞外基质的纳米纤维支架,因此静电纺丝已广泛用于组织工程。然而,开发具有可控几何形状的三维(3D)电纺纳米纤维支架是一个挑战。在这项研究中,我们提出了一种新颖的方法,其中3D打印与静电纺丝相结合以制造3D形状的支架。使用气体发泡技术,在3D打印模具中用NaBH4 /甲醇溶液处理二维电纺支架,从而得到具有设计几何形状的3D多孔层状支架。体外生物相容性分析结果表明,通过本方法制备的3D支架有利于细胞附着和生长。另外,作为概念证明,使用3D生物打印将细胞接种在3D支架上以获得受控的沉积。实验结果表明,细胞最初被包裹在水凝胶中,然后准确地迁移回支架上。这些策略将允许电纺纳米纤维支架的新颖设计和批量生产,这可能在组织工程和再生医学中具有潜在的应用。 (C)2018 Elsevier Ltd.保留所有权利。

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