柔性,生物相容性PET片:真核细胞附着,增殖和分化的平台

S. Samanta, D. Gaad, E. Cabet, A. Lilienbaum, Ajay Singh, D. K. Aswal, M. Chehimi
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引用次数: 1

摘要

透明、柔韧、双轴取向的聚对苯二甲酸乙二醇酯(PET)薄片被生物活性聚合物-纤维连接蛋白表层修饰,用于细胞的附着和肌肉纤维的生长。为此,PET薄片接枝了原位生成的相应重氮化合物中的4-(二甲氨基)苯基(DMA)基团。芳基化薄片作为二苯甲酮的大给氢体,并通过表面限制自由基光聚合生长聚2-羟基甲基丙烯酸乙酯(PHEMA)顶层。PET-PHEMA薄片通过1,1-羰基二咪唑偶联进一步接枝纤维连接蛋白(FBN)。然后将具有生物活性的PET-PHEMA-I-FBN作为真核细胞附着、增殖和分化的平台,几天后,真核细胞获得了长度为~120µm,厚度为~45µm的显著肌肉纤维。我们证明,与原始PET或标准显微镜玻片相比,PET- phema产生快速生长的细胞,随后是具有优异分化水平的肌纤维。当HEMA/EGDMA初始浓度比为9/1时,PHEMA链与乙二醇二甲基丙烯酸酯交联时,这种积极作用进一步增强。这项工作最终表明,原位生成的重氮盐为有效的紫外线诱导的生物相容性涂层的嫁接提供了芳基层,有利于细胞附着和肌肉纤维的生长。除了这项工作之外,重氮偶联剂构成了下一代工艺的基石,用于构建灵活的细胞粘附平台及其使用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Flexible, Biocompatible PET Sheets: a Platform for Attachment, Proliferation and Differentiation of Eukaryotic Cells
Transparent, flexible, biaxially oriented polyethylene terephthalate (PET) sheets were modified by bioactive polymer-fibronectin top layers for the attachment of cells and growth of muscle fibers. Towards this end, PET sheets were grafted with 4-(dimethylamino)phenyl (DMA) groups from the in situ generated corresponding diazonium compound. The arylated sheets served as macro-hydrogen donors for benzophenone and the growth of poly(2-hydroxy ethyl methacrylate) (PHEMA) top layer by surface-confined free radical photopolymerization. The PET-PHEMA sheets were further grafted with fibronectin (FBN) through the 1,1-carbonyldiimidazole coupling procedures. The bioactive PET-PHEMA-I-FBN was then employed as a platform for the attachment, proliferation and differentiation of eukaryotic cells which after a few days gave remarkable muscle fibers, of ~120 µm length and ~45 µm thickness. We demonstrate that PET-PHEMA yields a fast growth of cells followed by muscle fibers of excellent levels of differentiation compared to pristine PET or standard microscope glass slides. The positive effect is exacerbated by crosslinking PHEMA chains with ethylene glycol dimethacrylate at initial HEMA/EGDMA concentration ratio = 9/1. This works conclusively shows that in situ generated diazonium salts provide aryl layers for the efficient UV-induced grafting of biocompatible coating that beneficially serve as platform for cell attachment and growth of muscle fibers. Beyond this work, diazonium coupling agents constitute the corner stone of next generation processes for building flexible platforms for cell adhesion and uses thereof.
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