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首页> 外文期刊>Polymer Degradation and Stability >Delayed degradation of poly(lactide-co-glycolide) accelerates hydrolysis of poly(e-caprolactone) in ternary composite scaffolds
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Delayed degradation of poly(lactide-co-glycolide) accelerates hydrolysis of poly(e-caprolactone) in ternary composite scaffolds

机译:聚丙交酯-乙交酯的延迟降解促进三元复合支架中聚己内酯的水解

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摘要

Currently available biodegradable scaffolds do not ensure mechanical stability combined with degradation profile needed for an optimal support of bone tissue regeneration. In the present study a step towards scaffolds with tuned degradation rates was made by correlating the lactide to glycolide ratio of the PLGA part of ternary composite scaffolds with the resulting hydrolysis kinetics. The scaffolds were composed of a poly(e-caprolactone) (PCL) matrix containing 5 wt% of tricalcium phosphate and 25 wt% of PLGAs with three different lactide to glycolide ratios. The scaffolds were fabricated using Fused Deposition Modelling and subsequently incubated in phosphate buffered saline and simulated body fluid for up to 81 weeks. Degradation was analysed by taking change of mass of the samples, water absorption, pH, molecular weight, mechanical properties, surface morphology and crystallinity as indices. Our findings suggest that the degradation rate of the ternary composite scaffolds was inversely correlated to the degradation rate of the PLGA: slower degrading PLGAs were retained longer in the PCL matrix and caused its more advanced hydrolysis. The release of acidic degradation products of the PLGA hindered precipitation of calcium phosphates (CaPs). A late-reinforcement phenomenon was observed simultaneously with precipitation of the CaPs. Thus the ternary composite system represents a suitable tool to tune degradation rate of polyesters for applications as biodegradable implants or tissue engineering constructs.
机译:当前可用的可生物降解的支架不能确保机械稳定性以及为骨组织再生的最佳支持所需的降解曲线。在本研究中,通过将三元复合支架的PLGA部分的丙交酯与乙交酯之比与所得水解动力学相关联,迈向了具有可调节降解速率的支架。支架由聚(ε-己内酯)(PCL)基质组成,该基质包含5 wt%的磷酸三钙和25 wt%的PLGA,丙交酯与乙交酯的比率不同。使用融合沉积模型制造支架,然后在磷酸盐缓冲液和模拟体液中孵育长达81周。以样品质量,吸水率,pH,分子量,机械性能,表面形态和结晶度的变化为指标分析降解。我们的发现表明三元复合支架的降解速率与PLGA的降解速率成反比:降解速度较慢的PLGA在PCL基质中保留的时间更长,并导致其更高级的水解。 PLGA酸性降解产物的释放阻碍了磷酸钙(CaPs)的沉淀。在CaPs沉淀的同时观察到后期增强现象。因此,三元复合体系代表一种合适的工具,用于调节聚酯的降解速率,以用作可生物降解的植入物或组织工程构造。

著录项

  • 来源
    《Polymer Degradation and Stability》 |2016年第2期|119-127|共9页
  • 作者单位

    Faculty of Materials Science and Engineering, Warsaw University of Technology, Woloska Street 141, 02-507 Warsaw, Poland;

    Laboratory for Biointerfaces, EMPA, Swiss Federal Laboratories for Materials Science and Technology, Lerchenfeldstrasse 5, 9014 St. Callen, Switzerland;

    Faculty of Materials Science and Engineering, Warsaw University of Technology, Woloska Street 141, 02-507 Warsaw, Poland;

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

    Degradation rate; Mechanical properties; Scaffolds; Composite; Polycaprolactone;

    机译:降解率;机械性能脚手架综合;聚己内酯;

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