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首页> 外文期刊>Materials science & engineering, C. Materials for Biogical applications >Biocompatibility and drug release behavior of scaffolds prepared by coaxial electrospinning of poly(butylene succinate) and polyethylene glycol
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Biocompatibility and drug release behavior of scaffolds prepared by coaxial electrospinning of poly(butylene succinate) and polyethylene glycol

机译:聚丁二酸丁二醇酯和聚乙二醇同轴静电纺丝制备的支架的生物相容性和药物释放行为

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Scaffolds constituted by electrospun microfibers of poly(ethylene glycol) (PEG) and poly(butylene succinate) (PBS) were studied. Specifically, coaxial microfibers having different core-shell distributions and compositions were considered as well as uniaxial microanofibers prepared from mixtures of both polymers. Processing conditions were optimized for all geometries and compositions and resulting morphologies (i.e. diameter and surface texture) characterized by scanning electron microscopy. Chemical composition, molecular interactions and thermal properties were evaluated by FTIR, NMR, XPS and differential scanning calorimetry. The PEG component of electrospun fibers could be solubilized by immersion of scaffolds in aqueous medium, giving rise to high porosity and hydrophobic samples. Nevertheless, a small amount of PEG was retained in the PBS matrix, suggesting some degree of mixing. Solubilization was slightly dependent on fiber structure: specifically, the distribution of PEG in the core or shell of coaxial fibers led to higher or lower retention levels, respectively. Scaffolds could be effectively loaded with hydrophobic drugs having antibacterial and anticarcinogenic activities like triclosan and curcumin, respectively. Their release was highly dependent on their chemical structure and medium composition. Thus, low and high release rates were observed in phosphate buffer saline (SS) and SS/ethanol (30:70 v/v), respectively. Slight differences in the release of triclosan were found depending on fiber distribution and composition. Antibacterial activity and biocompatibility were evaluated for both loaded and unloaded scaffolds. (C) 2015 Elsevier B.V. All rights reserved.
机译:研究了由静电纺丝的聚乙二醇(PEG)和聚丁二酸丁二酯(PBS)构成的支架。具体地,考虑具有不同核-壳分布和组成的同轴微纤维以及由两种聚合物的混合物制备的单轴微/纳米纤维。针对所有几何形状和组成以及通过扫描电子显微镜表征的所得形态(即直径和表面纹理)优化了加工条件。通过FTIR,NMR,XPS和差示扫描量热法评估化学成分,分子相互作用和热性能。可以通过将支架浸入水性介质中来溶解电纺纤维的PEG组分,从而产生高孔隙率和疏水性样品。但是,PBS基质中保留了少量的PEG,表明存在一定程度的混合。增溶作用在某种程度上取决于纤维结构:具体地说,PEG在同轴纤维芯或壳中的分布分别导致较高或较低的保留水平。支架可以有效地负载疏水性药物,分别具有三氯生和姜黄素等具有抗菌和抗癌活性。它们的释放高度依赖于它们的化学结构和培养基组成。因此,分别在磷酸盐缓冲盐水(SS)和SS /乙醇(30:70 v / v)中观察到了低释放速率和高释放速率。根据纤维分布和组成,发现三氯生的释放略有差异。评估了有载和无载支架的抗菌活性和生物相容性。 (C)2015 Elsevier B.V.保留所有权利。

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