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Poly(ε-caprolactone)/Chitosan Nanostructures for Cell Cultivation

机译:聚(ε-己内酮)/壳聚糖纳米结构用于细胞培养

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Hybridization of synthetic poly (ε-caprolactone) (PCL) and natural chitosan polymers to develop PCL/chitosan core-shell nanostructures for cell cultivation was aimed in this study. Coaxial electrospinning method was used for the fabrication of the nanostructures. The characterizations of the samples were done by X-ray photoelectron spectroscopy (XPS) analyses and mechanical tests. XPS analysis of the PCL/chitosan core-shell structures exhibited the characteristic peaks of PCL and chitosan polymers. The cell culture studies, MTT assay and Confocal Laser Scanning Microscopy (CLSM), carried out with L929 ATCC CCL-1 mouse fibroblast cell line, proved the biocompatibility of all materials. The cell viability on the hybrid nanostructures was ~two times better then on tissue culture polystyrene (TCPS) because of its three dimensional (3D) extracellular matrix (ECM)-like structure compared to 2D flat surface of commercially cell compatible TCPS. The performance was ~two times and ~ten times better compared to single PCL and single chitosan, respectively, even though both fabricated similarly by electrospinning as non-woven fibrous structures, because were either too hydrophobic or too hydrophilic to maintain cell attachment points.
机译:本研究鉴定了合成聚(ε-己内酮)(PCL)和天然壳聚糖聚合物以开发PCL /壳聚糖核 - 壳纳米结构的杂交。同轴电纺丝方法用于制造纳米结构。通过X射线光电子能谱(XPS)分析和机械测试来完成样品的特征。 PCL /壳聚糖核心壳结构的XPS分析表现出PCL和壳聚糖聚合物的特征峰。用L929 ATCC CCL-1小鼠成纤维细胞系进行的细胞培养研究,MTT测定和共聚焦激光扫描显微镜(CLSM)证明了所有材料的生物相容性。在杂交纳米结构上的细胞活力〜〜2倍,然后在组织培养聚苯乙烯(TCP)上,因为其三维(3D)细胞外基质(ECM) - 样结构相比,与商业细胞相容的TCP的2D平坦表面相比。对于单个PCL和单一壳聚糖,性能分别是〜两倍,〜10倍,即使通过静电纺丝般的纤维结构类似地制造,因为它们太疏水或过亲水以维持细胞附着点。

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