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Performance of bioactive PMMA-based bone cement under load-bearing conditions: an in vivo evaluation and FE simulation

机译:承载条件下基于生物活性PMMA的骨水泥的性能:体内评估和有限元模拟

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摘要

In the past, bioactive bone cement was investigated in order to improve the durability of cemented arthroplasties by strengthening the bone-cement interface. As direct bone-cement bonding may theoretically lead to higher stresses within the cement, the question arises, whether polymethylmethacrylate features suitable mechanical properties to withstand altered stress conditions? To answer this question, in vivo experiments and finite element simulations were conducted. Twelve rabbits were divided into two groups examining either bioactive polymethylmethacrylate-based cement with unchanged mechanical properties or commercially available polymethylmethacrylate cement. The cements were tested under load-bearing conditions over a period of 7 months, using a spacer prosthesis cemented into the femur. For the finite element analyses, boundary conditions of the rabbit femur were simulated and analyses were performed with respect to different loading scenarios. Calculations of equivalent stress distributions within the cements were applied, with a completely bonded cement surface for the bioactive cement and with a continuously interfering fibrous tissue layer for the reference cement. The bioactive cement revealed good in vivo bioactivity. In the bioactive cement group two failures (33%), with complete break-out of the prosthesis occurred, while none in the reference group. Finite element analyses of simulated bioactive cement fixation showed an increase in maximal equivalent stress by 49.2 to 109.4% compared to the simulation of reference cement. The two failures as well as an increase in calculated equivalent stress highlight the importance of fatigue properties of polymethylmethacrylate in general and especially when developing bioactive cements designated for load-bearing conditions.
机译:过去,对生物活性骨水泥进行了研究,目的是通过加强骨水泥界面来提高骨水泥成形术的耐用性。由于直接的骨水泥粘结理论上可能导致水泥内部更高的应力,因此产生了一个问题,即聚甲基丙烯酸甲酯是否具有合适的机械性能以承受变化的应力条件?为了回答这个问题,进行了体内实验和有限元模拟。将十二只兔子分为两组,分别检查具有机械性能不变的生物活性聚甲基丙烯酸甲酯水泥或可商购的聚甲基丙烯酸甲酯水泥。使用一个固定在股骨中的垫片假体,在承重条件下对水泥进行了7个月的测试。对于有限元分析,模拟了兔股骨的边界条件,并针对不同的载荷情况进行了分析。进行了水泥内部等效应力分布的计算,对生物活性水泥使用了完全粘结的水泥表面,对参考水泥使用了连续干扰的纤维组织层。该生物活性水泥显示出良好的体内生物活性。在生物活性胶粘剂组中,发生了两次失败(33%),完全修复了假体,而在参考组中没有发生。与参考水泥的模拟相比,模拟生物活性水泥固定的有限元分析显示,最大等效应力增加了49.2%至109.4%。两次失效以及计算出的等效应力的增加突出了一般而言,尤其是在开发用于承载条件的生物活性水泥时,聚甲基丙烯酸甲酯疲劳性能的重要性。

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  • 来源
    《Journal of materials science》 |2016年第9期|138.1-138.8|共8页
  • 作者单位

    Univ Hosp Munich LMU, Dept Orthoped Surg Phys Med & Rehabil, Campus Grosshadern,Marchioninistr 15, D-81377 Munich, Germany;

    InnoTERE GmbH, Pharmapk Radebeul,Meissner Str 191, D-01445 Radebeul, Germany;

    Univ Hosp Munich LMU, Dept Orthoped Surg Phys Med & Rehabil, Campus Grosshadern,Marchioninistr 15, D-81377 Munich, Germany;

    Univ Hosp Munich LMU, Dept Orthoped Surg Phys Med & Rehabil, Campus Grosshadern,Marchioninistr 15, D-81377 Munich, Germany;

    Univ Hosp Munich LMU, Dept Orthoped Surg Phys Med & Rehabil, Campus Grosshadern,Marchioninistr 15, D-81377 Munich, Germany;

    Univ Hosp Munich LMU, Dept Orthoped Surg Phys Med & Rehabil, Campus Grosshadern,Marchioninistr 15, D-81377 Munich, Germany;

    InnoTERE GmbH, Pharmapk Radebeul,Meissner Str 191, D-01445 Radebeul, Germany;

    Walter Brendel Ctr Expt Med, Marchioninistr 27, D-81377 Munich, Germany;

    Univ Hosp Munich LMU, Dept Orthoped Surg Phys Med & Rehabil, Campus Grosshadern,Marchioninistr 15, D-81377 Munich, Germany;

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