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首页> 外文期刊>Biomacromolecules >Medium Chain-Length Polyhydroxyalkanoate Copolymer Modified by Bacterial Cellulose for Medical Devices
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Medium Chain-Length Polyhydroxyalkanoate Copolymer Modified by Bacterial Cellulose for Medical Devices

机译:通过用于医疗装置的细菌纤维素改性的中链长聚羟基烷酸酯共聚物

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摘要

Medium chain-length polyhydroxyalkanoates (mPHAs) are flexible elastomeric biopolymers with valuable properties for biomedical applications like artificial arteries and other medical implants. However, an environmentally friendly and high productivity process together with the tuning of the mechanical and biological properties of mPHAs are mandatory for this purpose. Here, for the first time, a melt processing technique was applied for the preparation of bionanocomposites starting from poly(3-hydroxyoctanoate) (PHO) and bacterial cellulose nanofibers (BC). The incorporation of only 3 wt % BC in PHO improved its thermal stability with 25 degrees C and reinforced it, increasing the Young's modulus with 76% and the tensile strength with 44%. The percolation threshold calculated with the aspect ratio of the fibers after melt processing was very low and dose to 3 wt %. We showed that this bionanocomposite is able to preserve the ductile behavior during storage, no important aging being noted between 3 h and one month after compression-molding. Moreover, this study is the first to investigate the melt processability of PHO nanocomposite for tube extrusion. In addition, biocompatibility study showed no proinflammatory immune response and better cell adhesion for PHO/BC nanocomposite with 3 wt % BC and demonstrated the high feasibility of this bionanocomposite for in vivo application of tissue-engineered blood vessels.
机译:中链长聚羟基烷酸酯(MPHA)是柔性弹性体生物聚合物,具有诸如人造动脉等医疗植入物等生物医学应用的有价值的性能。然而,对于此目的,强制性地与MPHA的机械和生物特性的调节一起进行环保和高生产率。此处,首次施加熔融加工技术,用于制备从聚(3-羟基乙酸)(PHO)和细菌纤维素纳米纤维(BC)开始的脱硫复合物。在PHO中仅加入3wt%的BC,用25℃改善其热稳定性,并加强其,增加杨氏模量,76%,拉伸强度具有44%。用熔融加工后纤维的纵横比计算的渗透阈值非常低,剂量为3wt%。我们表明,该均脱硫复合物能够在储存期间保持延性行为,在压缩成型后3小时和一个月之间未指出重要的老龄化。此外,该研究是首先研究Pho纳米复合物用于管挤出的熔体加工性。此外,生物相容性研究表明,具有3wt%BC的PHO / BC纳米复合材料的促炎免疫应答和更好的细胞粘附性,并证明了该二酮相复合材料的高可行性,用于体内应用组织工程血管。

著录项

  • 来源
    《Biomacromolecules》 |2017年第10期|共11页
  • 作者单位

    Natl Inst R&

    D Chem &

    Petrochem Polymer Dept 202 Splaiul Independentei Bucharest 060021 Romania;

    Natl Inst Chem Pharmaceut R&

    D 112 Calea Vitan Bucharest 031299 Romania;

    Natl Inst R&

    D Chem &

    Petrochem Polymer Dept 202 Splaiul Independentei Bucharest 060021 Romania;

    Natl Inst R&

    D Chem &

    Petrochem Polymer Dept 202 Splaiul Independentei Bucharest 060021 Romania;

    Natl Inst R&

    D Chem &

    Petrochem Polymer Dept 202 Splaiul Independentei Bucharest 060021 Romania;

    Cantacuzino Natl Inst R&

    D Microbiol &

    Immunol 103 Splaiul Independentei Bucharest 050096 Romania;

    Natl Inst Chem Pharmaceut R&

    D 112 Calea Vitan Bucharest 031299 Romania;

    Natl Inst R&

    D Chem &

    Petrochem Polymer Dept 202 Splaiul Independentei Bucharest 060021 Romania;

    Univ Politehn Bucuresti Sci &

    Engn Oxide Mat &

    Nanomat 1-7 Gh Polizu St Bucharest 011061 Romania;

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

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