首页> 外文期刊>Journal of Polymer Research >Scaffolds with tuneable hydrophilicity from electrospun microfibers of polylactide and poly(ethylene glycol) mixtures: morphology, drug release behavior, and biocompatibility
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Scaffolds with tuneable hydrophilicity from electrospun microfibers of polylactide and poly(ethylene glycol) mixtures: morphology, drug release behavior, and biocompatibility

机译:聚乳酸和聚乙二醇混合物的电纺超细纤维具有可调节的亲水性的支架:形态,药物释放行为和生物相容性

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摘要

Electrospun mats were obtained from different mixtures of polylactide (PLA) and poly(ethylene glycol) (PEG). Processing conditions were optimized for all compositions and the resulting microanofiber morphologies (i.e., diameter size and surface texture) were characterized by scanning electron microscopy (SEM). NMR and FTIR spectroscopies were employed to verify the final compositions, and thermal properties were evaluated by DSC and TGA. XPS spectroscopy revealed that PEG was mainly deposited on the surfaces of the electrospun microanofibers, leading to smooth textures. Interestingly, PLA/PEG scaffold solubility in ethanol was very different to that in water, since a significant amount of PEG was effectively retained in the PLA matrix after immersion in ethanol whereas only a low level of PEG was retained in the PLA matrix after immersion in water. The hydrophilicities of the scaffolds obtained from PLA/PEG mixtures were consequently higher than that of the PLA, even after exposure to water. As PEG can be used as a sacrificial polymer due to its high solubility in water, it was possible to increase the porosity of PLA/PEG scaffolds. PLA/PEG scaffolds loaded with triclosan (TCS) had very different release profiles in hydrophilic (e.g., PBS) and hydrophobic (e.g., S?rensen/ethanol 30:70v/v) media, while differences were small between scaffolds with different PLA/PEG ratios. TCS-loaded scaffolds exhibited good antibacterial properties for all compositions and allowed the adhesion of epithelial cells (i.e., MDCK and VERO). Significant differences in cell proliferation were found between unloaded and TCS-loaded scaffolds due to the clear improvement in cell colonization observed with increasing PEG content.
机译:从聚丙交酯(PLA)和聚乙二醇(PEG)的不同混合物中获得电纺垫。针对所有组合物优化加工条件,并通过扫描电子显微镜(SEM)表征所得的微/纳米纤维形态(即,直径尺寸和表面纹理)。使用NMR和FTIR光谱法验证最终组成,并通过DSC和TGA评估热性能。 XPS光谱显示PEG主要沉积在电纺微纤维/纳米纤维的表面,从而产生光滑的质地。有趣的是,PLA / PEG支架在乙醇中的溶解度与在水中的溶解度有很大不同,因为浸入乙醇后有效地将大量PEG保留在PLA基质中,而将PLA / PEG支架浸入乙醇后仅保留了低水平的PEG。水。因此,即使暴露于水,从PLA / PEG混合物获得的支架的亲水性也高于PLA。由于PEG由于其在水中的高溶解度而可以用作牺牲聚合物,因此有可能增加PLA / PEG支架的孔隙率。载有三氯生(TCS)的PLA / PEG支架在亲水性(例如PBS)和疏水性(例如S?rensen /乙醇30:70v / v)介质中的释放曲线有很大不同,而具有不同PLA / PEG比率。装载了TCS的支架对所有组合物均表现出良好的抗菌性能,并能粘附上皮细胞(即MDCK和VERO)。由于随PEG含量增加观察到的细胞定殖明显改善,因此在未装载的支架和TCS装载的支架之间发现了细胞增殖的显着差异。

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