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用于神经组织工程的电纺聚己内酯/壳聚糖支架:物理化学表征及雪旺细胞生物相容性

Electrospun polycaprolactone/chitosan scaffolds for nerve tissue engineering: physicochemical characterization and Schwann cell biocompatibility.

作者信息

Bolaina-Lorenzo Ena, Martínez-Ramos Cristina, Monleón-Pradas Manuel, Herrera-Kao Wilberth, Cauich-Rodríguez Juan V, Cervantes-Uc José M

机构信息

Unidad de Materiales, Centro de Investigación Científica de Yucatán A.C., Calle 43 No. 130 x 32 y 34, Col. Chuburná de Hidalgo, C.P. 97205, Mérida, Yucatán, Mexico.

出版信息

Biomed Mater. 2016 Dec 9;12(1):015008. doi: 10.1088/1748-605X/12/1/015008.

DOI:10.1088/1748-605X/12/1/015008
PMID:27934786
Abstract

Electrospun polycaprolactone (PCL)/chitosan (CH) blend scaffolds with different CH weight ratios were prepared to study the effect of scaffold composition on its physicochemical and biological properties. Scanning electron microscopy showed bead-free homogeneous randomly arranged nanofibers whose average diameter decreased from 240 to 110 nm with increasing CH content. The infrared spectra of the PCL/CH blends were very similar to the neat PCL scaffold. Energy-dispersive x-ray spectroscopy analysis confirmed the presence of carbon, oxygen and nitrogen in the scaffolds, although fluorine-from chemicals used as solvent-was also detected. The water contact angle decreased from 113° (for PCL) to 52° with increasing chitosan content. The biocompatibility was evaluated using fibroblasts and Schwann cell (SC) cultures. Cytotoxicity assays using fibroblasts demonstrated that electrospun scaffolds could be considered as non-cytotoxic material. Biocompatibility tests also revealed that the SCs adhered to scaffolds with different CH content, although the formulation containing CH at 5 wt% exhibited the highest proliferation on days 1 and 3. A better cell distribution was observed in the CH/PCL blends than in the neat PCL or CH scaffolds, where the cells were clustered. Immunochemistry analysis confirmed that SCs expressed the specific p75 cell marker on the scaffolds, suggesting that PCL/CH scaffolds would be good candidates for peripheral nerve tissue engineering.

摘要

制备了具有不同壳聚糖(CH)重量比的电纺聚己内酯(PCL)/壳聚糖(CH)共混支架,以研究支架组成对其物理化学和生物学性质的影响。扫描电子显微镜显示无珠的均匀随机排列的纳米纤维,其平均直径随着CH含量的增加从240nm减小到110nm。PCL/CH共混物的红外光谱与纯PCL支架非常相似。能量色散X射线光谱分析证实支架中存在碳、氧和氮,尽管也检测到了来自用作溶剂的化学物质中的氟。随着壳聚糖含量的增加,水接触角从113°(对于PCL)降至52°。使用成纤维细胞和雪旺细胞(SC)培养物评估生物相容性。使用成纤维细胞的细胞毒性试验表明,电纺支架可被视为无细胞毒性材料。生物相容性测试还表明,SCs粘附于具有不同CH含量的支架,尽管含5wt%CH的配方在第1天和第3天表现出最高的增殖。在CH/PCL共混物中观察到比纯PCL或CH支架更好的细胞分布,在纯PCL或CH支架中细胞聚集。免疫化学分析证实SCs在支架上表达特异性p75细胞标记物,表明PCL/CH支架将是周围神经组织工程的良好候选材料。

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