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首页> 外文期刊>Journal of Porous Materials >Bi-layered porous constructs of PCL-coated 45S5 bioactive glass and electrospun collagen-PCL fibers
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Bi-layered porous constructs of PCL-coated 45S5 bioactive glass and electrospun collagen-PCL fibers

机译:PCL涂层45S5生物活性玻璃和电纺胶原PCL纤维的双层多孔结构

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摘要

A simple yet promising approach to construct bi-layered scaffolds using bioactive ceramics and biodegradable polymers is presented. This method involves two versatile fabrication techniques used in the field of TE: foam replication process and electrospinning. By the foam replication method, three-dimensional 45S5 bioactive glass (BG)-based scaffolds with high porosity, in the range of 95.8 ± 0.9 %, were produced. To improve the mechanical properties of the BG scaffolds, dip-coating using polycaprolactone (PCL) was performed, which led to a significant increase in the compressive strength of the scaffolds. In order to develop a bi-layered construct, bead-less submicrometric fibers of collagen-PCL were electrospun over the PCL-coated BG scaffolds. Surface morphology, surface properties and mechanical strength of the bi-layered construct were evaluated using scanning electron microscopy analysis, contact angle measurements and compressive strength testing, respectively. In vitro degradation of the collagen-PCL fibers in phosphate buffered saline and in vitro bioactivity of the bi-layered constructs in simulated body fluid were investigated. Formation of hydroxyapatite on the PCL-coated BG and along the morphology of the collagen-PCL fibers was ascertained using different characterization techniques. The bi-layered construct is intended for interface tissue engineering applications where the PCL-coated BG scaffold, which is highly bioactive, can serve as a support for the bone side and the composite collagen-PCL submicrometric fibers are intended for the cartilage side.
机译:提出了一种使用生物活性陶瓷和可生物降解的聚合物构造双层支架的简单而有希望的方法。该方法涉及TE领域中使用的两种通用制造技术:泡沫复制工艺和静电纺丝。通过泡沫复制法,生产出具有98.5±0.9%的高孔隙率的三维45S5生物活性玻璃(BG)基支架。为了改善BG支架的机械性能,使用聚己内酯(PCL)进行了浸涂,这导致了支架的抗压强度的显着提高。为了开发双层构建体,将胶原蛋白-PCL的无珠子亚微米纤维电纺在PCL涂层的BG支架上。分别使用扫描电子显微镜分析,接触角测量和抗压强度测试来评估双层构造的表面形态,表面性质和机械强度。研究了胶原蛋白-PCL纤维在磷酸盐缓冲液中的体外降解以及双层构建体在模拟体液中的体外生物活性。使用不同的表征技术确定了羟基磷灰石在PCL涂层的BG上以及沿着胶原PCL纤维的形态的形成。双层构造旨在用于界面组织工程应用,其中具有高度生物活性的PCL涂层BG支架可作为骨侧的支撑物,而复合胶原PCL亚微米纤维则用于软骨侧。

著录项

  • 来源
    《Journal of Porous Materials》 |2015年第5期|1215-1226|共12页
  • 作者单位

    Department of Materials Science and Engineering Institute of Biomaterials University of Erlangen-Nuremberg">(1);

    Department of Materials Science and Engineering Institute of Polymer Materials University of Erlangen-Nuremberg">(2);

    Department of Materials Science and Engineering Institute of Polymer Materials University of Erlangen-Nuremberg">(2);

    Department of Plastic and Hand Surgery Laboratory for Tissue Engineering and Regenerative Medicine University Hospital Erlangen University of Erlangen-Nuremberg">(3);

    Department of Materials Science and Engineering Institute of Biomaterials University of Erlangen-Nuremberg">(1);

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

    Osteochondral region; Electrospinning; In vitro degradation; Bioactivity; Scaffold;

    机译:骨软骨区域;电纺;体外降解;生物活性脚手架;

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