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Cold atmospheric plasma (CAP)-modified and bioactive protein-loaded core-shell nanofibers for bone tissue engineering applications

机译:用于骨组织工程应用的冷大气等离子体(帽)制型和生物活性蛋白负载的芯壳纳米纤维

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摘要

Coaxial electrospinning is a novel technique for producing core-shell nanofibers that provide a robust structure and deliver hydrophilic bioactive agents. Optimization of parameters used in the coaxial electrospinning process allows for the fabrication of uniform and bead-free polyvinyl alcohol (PVA)/poly (L-lactic acid) (PLLA) core-shell nanofibers. Herein, a cold atmospheric plasma (CAP) process was used to enhance the surface features of electrospun core-shell nanofibers for increased surface pore size and altered surface hydrophilicity. After CAP treatment, the scaffolds' water contact angle was reduced from 110 degrees to 50 degrees and its protein and water adsorption were significantly elevated. The changes in hydrophilicity and improved scaffold surface area dramatically enhanced cell attachment and proliferation of fibroblasts and osteoblasts. Also, the increased levels of alkaline phosphatase (ALP) activity, total protein content and calcium deposition from mesenchymal stem cells (MSCs) indicated a higher osteoinductivity of the CAP-modified nanofibrous scaffold. Most importantly, the increased nanofiber surface pore size induced by the CAP treatment further contributed to significant variations in drug release profiles. The CAP-treated scaffolds showed more rapid release kinetics compared to untreated scaffolds, which eventually led to complete drug release. These results indicated that the CAP-treated and bioactive protein-loaded core-shell nanofibers could be a valuable regenerative medicine and drug delivery system for improved bone tissue engineering.
机译:同轴电纺丝是一种用于生产核 - 壳纳面纤维的新技术,其提供鲁棒结构并提供亲水性生物活性剂。同轴电纺工艺中使用的参数的优化允许制造均匀和胎珠聚乙烯醇(PVA)/聚(L-乳酸)(PLLA)核壳纳米纤维。这里,使用冷常压等离子体(帽)工艺来增强电纺芯壳纳米纤维的表面特征,用于增加表面孔径和改变的表面亲水性。盖帽处理后,支架的水接触角从110度降低至50度,其蛋白质和水吸附显着升高。亲水性和改进的支架表面积的变化显着增强了成纤维细胞和成骨细胞的细胞附着和增殖。此外,碱性磷酸酶(ALP)活性的增加,总蛋白质含量和来自间充质干细胞(MSCs)的钙沉积的水平表明帽改性的纳米纤维支架的更高骨诱导性。最重要的是,由帽处理引起的纳米纤维表面孔径增加进一步有助于药物释放型材的显着变化。与未处理的支架相比,帽处理的支架显示出更多的快速释放动力学,最终导致完全药物释放。这些结果表明,帽处理和生物活性蛋白负载的核壳纳米纤维可以是改善骨组织工程的有价值的再生药物和药物递送系统。

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  • 来源
    《Biomaterials Science》 |2019年第6期|共10页
  • 作者单位

    Northeastern Univ Dept Chem Engn Boston MA 02115 USA;

    Northeastern Univ Dept Chem Engn Boston MA 02115 USA;

    Northeastern Univ Dept Chem Engn Boston MA 02115 USA;

    Northeastern Univ Dept Chem Engn Boston MA 02115 USA;

    Northeastern Univ Dept Chem Engn Boston MA 02115 USA;

    George Washington Univ Dept Mech &

    Aerosp Engn Washington DC 20052 USA;

    Northeastern Univ Dept Chem Engn Boston MA 02115 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子生物学;
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