Donik Žiga, Nečemer Branko, Vesenjak Matej, Glodež Srečko, Kramberger Janez
Faculty of Mechanical Engineering, University of Maribor, Smetanova ul. 17, 2000 Maribor, Slovenia.
Materials (Basel). 2021 Oct 13;14(20):6016. doi: 10.3390/ma14206016.
Bioresorbable stents (BRS) represent the latest generation of vascular scaffolds used for minimally invasive interventions. They aim to overcome the shortcomings of established bare-metal stents (BMS) and drug-eluting stents (DES). Recent advances in the field of bioprinting offer the possibility of combining biodegradable polymers to produce a composite BRS. Evaluation of the mechanical performance of the novel composite BRS is the focus of this study, based on the idea that they are a promising solution to improve the strength and flexibility performance of single material BRS. Finite element analysis of stent crimping and expansion was performed. Polylactic acid (PLA) and polycaprolactone (PCL) formed a composite stent divided into four layers, resulting in sixteen unique combinations. A comparison of the mechanical performance of the different composite configurations was performed. The resulting stresses, strains, elastic recoil, and foreshortening were evaluated and compared to existing experimental results. Similar behaviour was observed for material configurations that included at least one PLA layer. A pure PCL stent showed significant elastic recoil and less shortening compared to PLA and composite structures. The volumetric ratio of the materials was found to have a more significant effect on recoil and foreshortening than the arrangement of the material layers. Composite BRS offer the possibility of customising the mechanical behaviour of scaffolds. They also have the potential to support the fabrication of personalised or plaque-specific stents.
生物可吸收支架(BRS)代表了用于微创介入的新一代血管支架。它们旨在克服现有裸金属支架(BMS)和药物洗脱支架(DES)的缺点。生物打印领域的最新进展提供了将可生物降解聚合物结合以生产复合BRS的可能性。基于新型复合BRS是改善单一材料BRS强度和柔韧性性能的有前景解决方案这一理念,对其机械性能的评估是本研究的重点。进行了支架压接和扩张的有限元分析。聚乳酸(PLA)和聚己内酯(PCL)形成了一个分为四层的复合支架,产生了16种独特组合。对不同复合结构的机械性能进行了比较。评估了由此产生的应力、应变、弹性回缩和缩短情况,并与现有的实验结果进行了比较。对于包含至少一层PLA的材料结构,观察到了类似的行为。与PLA和复合结构相比,纯PCL支架显示出显著弹性回缩且缩短较少。发现材料的体积比相比材料层的排列对回缩和缩短有更显著的影响。复合BRS提供了定制支架机械行为的可能性。它们还有潜力支持个性化或斑块特异性支架的制造。