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首页> 外文期刊>Journal of biomedical materials research. Part B, Applied biomaterials. >In vitro/in vivo biocompatibility and mechanical properties of bioactive glass nanofiber and poly(epsilon-caprolactone) composite materials.
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In vitro/in vivo biocompatibility and mechanical properties of bioactive glass nanofiber and poly(epsilon-caprolactone) composite materials.

机译:生物活性玻璃纳米纤维和聚(ε-己内酯)复合材料的体外/体内生物相容性和力学性能。

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In this study, a poly(epsilon-caprolactone) (PCL)/bioactive glass (BG) nanocomposite was fabricated using BG nanofibers (BGNFs) and compared with an established composite fabricated using microscale BG particles. The BGNFs were generated using sol-gel precursors via the electrospinning process, chopped into short fibers and then incorporated into the PCL organic matrix by dissolving them in a tetrahydrofuran solvent. The biological and mechanical properties of the PCL/BGNF composites were evaluated and compared with those of PCL/BG powder (BGP). Because the PCL/BG composite containing 20 wt % BG showed the highest level of alkaline phosphatase (ALP) activity, all evaluations were performed at this concentration except for that of the ALP activity itself. In vitro cell tests using the MC3T3 cell line demonstrated the enhanced biocompatibility of the PCL/BGNF composite compared with the PCL/BGP composite. Furthermore, the PCL/BGNF composite showed a significantly higher level of bioactivity compared with the PCL/BGP composite. In addition, the results of the in vivo animal experiments using Sprague-Dawley albino rats revealed the good bone regeneration capability of the PCL/BGNF composite when implanted in a calvarial bone defect. In the result of the tensile test, the stiffness of the PCL/BG composite was further increased when the BGNFs were incorporated. These results indicate that the PCL/BGNF composite has greater bioactivity and mechanical stability when compared with the PCL/BG composite and great potential as a bone regenerative material.
机译:在这项研究中,使用BG纳米纤维(BGNF)制备了聚(ε-己内酯)(PCL)/生物活性玻璃(BG)纳米复合材料,并将其与使用微米级BG颗粒制造的复合材料进行了比较。 BGNF是使用溶胶-凝胶前驱体通过静电纺丝工艺生成的,切成短纤维,然后通过将它们溶解在四氢呋喃溶剂中而掺入PCL有机基质中。评估了PCL / BGNF复合材料的生物学和机械性能,并将其与PCL / BG粉(BGP)的生物学和机械性能进行了比较。因为包含20 wt%BG的PCL / BG复合材料显示出最高水平的碱性磷酸酶(ALP)活性,所以除ALP活性本身的浓度外,所有评估均在此浓度下进行。使用MC3T3细胞系进行的体外细胞测试表明,与PCL / BGP复合材料相比,PCL / BGNF复合材料具有更高的生物相容性。此外,与PCL / BGP复合材料相比,PCL / BGNF复合材料显示出更高的生物活性。此外,使用Sprague-Dawley白化病大鼠进行的体内动物实验结果表明,当植入颅盖骨缺损中时,PCL / BGNF复合材料具有良好的骨再生能力。拉伸试验的结果是,当掺入BGNF时,PCL / BG复合材料的刚度进一步提高。这些结果表明,与PCL / BG复合材料相比,PCL / BGNF复合材料具有更高的生物活性和机械稳定性,并且具有作为骨再生材料的巨大潜力。

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