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首页> 外文期刊>Materials science & engineering >Fabrication, characterization and cytocompatibility assessment of gelatin nanofibers coated with a polymer thin film by initiated chemical vapor deposition
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Fabrication, characterization and cytocompatibility assessment of gelatin nanofibers coated with a polymer thin film by initiated chemical vapor deposition

机译:通过引发化学气相沉积法制备的涂有聚合物薄膜的明胶纳米纤维的制备,表征和细胞相容性评估

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摘要

The presence of various functional groups in the structure of gelatin nanofibers (GNFs) has made it a suitable candidate for biomedical applications, yet its fast dissolution in aqueous media has been a real challenge for years. In the present work, we propose an efficient procedure to improve the durability of the GNFs. The electrospun GNFs were coated with poly(ethylene glycol dimethacrylate) (pEGDMA) using initiated chemical vapor deposition (iCVD) as a completely dry polymerization method. Morphological and chemical analysis revealed that an ultrathin layer formed around nanofibers (iCVD-GNFs) which has covalently bonded to gelatin chains. Against the instant dissolution of GNFs, the in vitro biodegradability test showed the iCVD-GNFs, to a large extent, preserve their morphology after 14 days of immersion and did not lose its integrity even after 31 days. In vitro cell culture studies, also, revealed cytocompatibility of the iCVD-GNFs for human fibroblast cells (hFC), as well as higher cell proliferation on the iCVD-GNFs compared to control made from tissue culture plate (TCP). Furthermore, contact angle measurements indicated that the hydrophilic GNFs became hydrophobic after the iCVD, yet FE-SEM images of cell-seeded iCVD-GNFs showed satisfactory cell adhesion. Taken together, the proposed method paves a promising way for the production of water-resistant GNFs utilized in biomedical applications; for instance, tissue engineering scaffolds and wound dressings.
机译:明胶纳米纤维(GNFs)结构中各种官能团的存在使其成为生物医学应用的合适候选者,然而其在水性介质中的快速溶解多年来一直是一个真正的挑战。在目前的工作中,我们提出了一种有效的程序来改善GNF的耐用性。使用引发的化学气相沉积(iCVD)作为完全干式聚合方法,将静电纺丝的GNF涂有聚二甲基丙烯酸乙二醇酯(pEGDMA)。形态和化学分析表明,在纳米纤维(iCVD-GNF)周围形成了一层超薄层,该层已经与明胶链共价键合。针对GNFs的即时溶解,体外生物降解性测试显示,iCVD-GNFs在浸入14天后在很大程度上保留了其形态,即使经过31天也没有失去其完整性。体外细胞培养研究也显示了iCVD-GNF与人成纤维细胞(hFC)的细胞相容性,以及与组织培养板(TCP)制成的对照相比,iCVD-GNF的细胞增殖更高。此外,接触角测量表明,亲水性GNF在iCVD之后变为疏水性,而细胞接种iCVD-GNF的FE-SEM图像显示令人满意的细胞粘附。综上所述,所提出的方法为生产用于生物医学应用的耐水GNF铺平了有前途的方法。例如,组织工程支架和伤口敷料。

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  • 来源
    《Materials science & engineering》 |2020年第5期|110623.1-110623.14|共14页
  • 作者

  • 作者单位

    Isfahan Univ Technol Dept Text Engn Esfahan 8415683111 Iran;

    Graz Univ Technol Inst Solid State Phys NAWI Graz A-8010 Graz Austria|BioTechMed Graz Austria;

    Ontario Tech Univ Fac Engn & Appl Sci Silicon Hall Micro Nano Mfg Facil Toronto ON Canada|ACECR Royan Inst Biotechnol Dept Cellular Biotechnol Cell Sci Res Ctr Esfahan Iran;

    Isfahan Univ Technol Innovat Management & Technol Commercializat Ctr Esfahan 8415683111 Iran;

    Karl Franzens Univ Graz Inst Pharmaceut Sci Dept Pharmaceut Technol A-8010 Graz Austria;

    ACECR Royan Inst Biotechnol Dept Cellular Biotechnol Cell Sci Res Ctr Esfahan Iran;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Electrospinning; Gelatin; Biodegradation; Initiated chemical vapor deposition;

    机译:电纺;明胶;生物降解;启动化学气相沉积;

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