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Engineering the Microstructure of Electrospun Fibrous Scaffolds by Microtopography

机译:通过微形貌工程学设计电纺纤维支架的微观结构

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摘要

Controlling the structure and organization of electrospun fibers is desirable for fabricating scaffolds and materials with defined microstructures. However, the effects of microtopography on the deposition and, in turn, the organization of the electrospun fibers are not well understood. In this study, conductive polydimethylsiloxane (PDMS) templates with different micropatterns were fabricated by combining photolithography, silicon wet etching, and PDMS molding techniques. The fiber organization was varied by fine-tuning the microtopography of the electrospinning collector. Fiber conformity and alignment were influenced by the depth and the slope of microtopography features, resulting in scaffolds comprising either an array of microdomains with different porosity and fiber alignment or an array of microwells. Microtopography affected the fiber organization for hundreds of micrometers below the scaffold surface, resulting in scaffolds with distinct surface properties on each side. In addition, the fiber diameter was also affected by the fiber conformity. The effects of the fiber arrangement in the scaffolds on the morphology, migration, and infiltration of cells were examined by in vitro and in vivo experiments. Cell morphology and organization were guided by the fibers in the microdomains, and cell migration was enhanced by the aligned fibers and the three-dimensional scaffold structure. Cell infiltration was correlated with the microdomain porosity. Microscale control of the fiber organization and the porosity at the surface and through the thickness of the fibrous scaffolds, as demonstrated by the results of this study, provides a powerful means of engineering the three-dimensional structure of electrospun fibrous scaffolds for cell and tissue engineering.
机译:控制电纺纤维的结构和组织对于制造具有确定的微结构的支架和材料是理想的。然而,人们对微观形貌对沉积的影响以及电纺纤维的组织还没有被很好地理解。在这项研究中,通过组合光刻,硅湿法刻蚀和PDMS成型技术,制作了具有不同微图案的导电聚二甲基硅氧烷(PDMS)模板。通过微调静电纺丝收集器的微观形貌可以改变纤维的组织。纤维的一致性和排列受到微形貌特征的深度和斜率的影响,导致支架包含具有不同孔隙率和纤维排列的微区阵列或微孔阵列。微观形貌影响了支架表面以下数百微米的纤维组织,导致支架的每一面都具有独特的表面特性。另外,纤维直径也受到纤维适形性的影响。通过体外和体内实验检查了支架中纤维排列对细胞形态,迁移和浸润的影响。细胞形态和组织是由微区中的纤维所引导,并且通过排列的纤维和三维支架结构增强了细胞迁移。细胞浸润与微区孔隙率相关。这项研究的结果表明,对纤维组织和表面多孔性以及通过纤维支架的厚度进行的微观控制,为工程化用于细胞和组织工程的电纺纤维支架的三维结构提供了强有力的手段。 。

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