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首页> 外文期刊>Biomedical materials >Gelatin nanoparticles loaded poly(?-caprolactone) nanofibrous semi-synthetic scaffolds for bone tissue engineering
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Gelatin nanoparticles loaded poly(?-caprolactone) nanofibrous semi-synthetic scaffolds for bone tissue engineering

机译:明胶纳米颗粒负载的聚(ε-己内酯)纳米纤维半合成支架,用于骨组织工程

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摘要

Nanofibrous semi-synthetic polymeric nanocomposite scaffolds were engineered by incorporating a maximum of 15 wt% biopolymeric gelatin nanoparticles (nGs) into the synthetic polymer poly(?-caprolactone) (PCL) prior to electrospinning. The effect of nGs in altering the physico-chemical properties, cell material interaction and biodegradability of the scaffolds was evaluated. Experimental results showed that the inherent hydrophobicity of PCL scaffolds remained unaltered even after the incorporation of hydrophilic nGs. However, breakdown of the continuous nanofibers into lengths less than 7 νm occurred within four to eight weeks in the presence of nGs in contrast with the greater than two year time frame for the degradation of PCL fibers alone that is known from the literature. In terms of cell-material interaction, human mesenchymal stem cells (hMSCs) were found to attach and spread better and faster on PCL-nG scaffolds compared to PCL scaffolds. However, there was no difference in hMSC proliferation and differentiation into osteogenic lineage between the scaffolds. These results indicate that PCL-nG nanofibrous nanocomposite scaffolds are an improvement over PCL scaffolds for bone tissue engineering applications in that the PCL-nG scaffolds provide improved cell interaction and are able to degrade and resorb more efficiently.
机译:通过在静电纺丝之前将最多15 wt%的生物聚合物明胶纳米颗粒(nGs)掺入到合成聚合物聚(ε-己内酯)(PCL)中,来设计纳米纤维半合成聚合物纳米复合材料支架。评估了nGs在改变支架的理化性质,细胞材料相互作用和生物降解性方面的作用。实验结果表明,即使加入亲水性nGs,PCL支架的固有疏水性也保持不变。然而,与连续的纳米纤维分解成小于7μm的长度在nGs存在下发生在四到八周之内,相比之下,从文献中得知,单独降解PCL纤维的时间超过两年。在细胞材料相互作用方面,与PCL支架相比,发现人间充质干细胞(hMSCs)在PCL-nG支架上附着并更快更好地扩散。但是,支架之间的hMSC增殖和分化为成骨细胞谱系没有差异。这些结果表明,PCL-nG纳米纤维纳米复合材料支架比用于骨组织工程应用的PCL支架有所改进,因为PCL-nG支架提供了改善的细胞相互作用,并且能够更有效地降解和吸收。

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