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Hollow Fiber Membranes of PCL and PCL/Graphene as Scaffolds with Potential to Develop In Vitro Blood—Brain Barrier Models

机译:PCL和PCL /石墨烯的中空纤维膜作为支架具有在体外血脑屏障模型中发育的潜力

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摘要

There is a huge interest in developing novel hollow fiber (HF) membranes able to modulate neural differentiation to produce in vitro blood–brain barrier (BBB) models for biomedical and pharmaceutical research, due to the low cell-inductive properties of the polymer HFs used in current BBB models. In this work, poly(ε-caprolactone) (PCL) and composite PCL/graphene (PCL/G) HF membranes were prepared by phase inversion and were characterized in terms of mechanical, electrical, morphological, chemical, and mass transport properties. The presence of graphene in PCL/G membranes enlarged the pore size and the water flux and presented significantly higher electrical conductivity than PCL HFs. A biocompatibility assay showed that PCL/G HFs significantly increased C6 cells adhesion and differentiation towards astrocytes, which may be attributed to their higher electrical conductivity in comparison to PCL HFs. On the other hand, PCL/G membranes produced a cytotoxic effect on the endothelial cell line HUVEC presumably related with a higher production of intracellular reactive oxygen species induced by the nanomaterial in this particular cell line. These results prove the potential of PCL HF membranes to grow endothelial cells and PCL/G HF membranes to differentiate astrocytes, the two characteristic cell types that could develop in vitro BBB models in future 3D co-culture systems.
机译:由于所使用的聚合物HF的低电池感应性能,对能够调节神经分化的新型中空纤维(HF)膜来制定神经分化的血管膜(BBB)模型的巨大兴趣,以产生用于生物医学和药物研究的体外血脑屏障(BBB)模型在当前的BBB模型中。在该工作中,通过相倒反应制备聚(ε-己内酯)(PCL)和复合PCL /石墨烯(PCL / G)HF膜,并以机械,电气,形态,化学和大规模运输性能表征。 PCL / G膜中的石墨烯的存在扩大了孔径和水通量,并呈现比PCL HFS显着更高的电导率。生物相容性测定表明,PCL / G HFS显着增加了C6细胞粘附和朝向星形胶质细胞的分化,其与PCL HF相比,它们的电导率较高。另一方面,PCL / G膜对内皮细胞系HUVEC产生了细胞毒性作用,其可能与在该特定细胞系中纳米材料诱导的细胞内反应性氧物质的更高生产相关。这些结果证明了PCL HF膜的潜力将内皮细胞和PCL / G HF膜生长以区分星形胶质细胞,这两种特征细胞类型可以在未来的3D共同培养系统中在体外BBB模型中发展。

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