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Short-Term Degradation of Bi-Component Electrospun Fibers: Qualitative and Quantitative Evaluations via AFM Analysis

机译:双组分电纺纤维的短期降解:通过AFM分析进行定性和定量评估

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摘要

Electrospun polymeric fibers are currently used as 3D models for in vitro applications in biomedical areas, i.e., tissue engineering, cell and drug delivery. The high customization of the electrospinning process offers numerous opportunities to manipulate and control surface area, fiber diameter, and fiber density to evaluate the response of cells under different morphological and/or biochemical stimuli. The aim of this study was to investigate—via atomic force microscopy (AFM)—the chemical and morphological changes in bi-component electrospun fibers (BEFs) during the in vitro degradation process using a biological medium. BEFs were fabricated by electrospinning a mixture of synthetic-polycaprolactone (PCL)-and natural polymers (gelatin) into a binary solution. During the hydrolytic degradation of protein, no significant remarkable effects were recognized in terms of fiber integrity. However, increases in surface roughness as well as a decrease in fiber diameter as a function of the degradation conditions were detected. We suggest that morphological and chemical changes due to the local release of gelatin positively influence cell behavior in culture, in terms of cell adhesion and spreading, thus working to mimic the native microenvironment of natural tissues.
机译:电纺合物聚合物纤维目前用作生物医学区域的体外应用的3D模型,即组织工程,细胞和药物递送。静电纺丝工艺的高定制提供了许多机会操纵和控制表面积,纤维直径和纤维密度,以评估细胞在不同形态和/或生化刺激下的响应。本研究的目的是通过原子力显微镜(AFM) - 使用生物培养基在体外降解过程中的双组分电纺纤维(BEF)的化学和形态学变化。通过将合成聚碳酮酮(PCL) - 和天然聚合物(明胶)的混合物静电纺丝成二元溶液来制造BEF。在蛋白质的水解降解期间,在纤维完整性方面没有明显识别显着的显着作用。然而,检测到表面粗糙度的增加以及随着劣化条件的函数的纤维直径的降低。我们建议在细胞粘附和展开方面,在培养的局部释放细胞对细胞行为的局部释放而导致的形态学和化学变化,从而为天然组织的天然微环境进行模拟。

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