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Influence of Stent Flexibility on Artery Wall Stress and Wall Shear Stress in Bifurcation Lesions

机译:支架柔韧性对分叉病变中动脉壁应力和壁剪应力的影响

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Purpose:Stent flexibility can influence clinical outcome, especially in bifurcation lesions. For instance, an overly rigid stent can impose mechanical stress on the artery at the stent edges and alter both arterial geometry and blood flow dynamics in bifurcations. This study investigated the influence of stent flexibility on vessel geometry, histology, wall stress, and blood flow dynamics in arterial bifurcations.Materials and Methods:We compared arterial angulation, stenosis, histopathology, simulated wall shear stress (WSS), and simulated blood flow velocity distribution in swine coronary artery bifurcations following placement of the less flexible Multi-link 8 or more flexible Kaname stent (4.1 ± 0.5 vs 1.5 ± 0.1 mN, p 0.05, t-test). Stents were implanted into six coronary artery bifurcations each using the single-stent crossover technique without side branch strut dilatation. Outcomes were examined after 28 days.Results:Implantation of both stents significantly increased site angulation (Multi-link 8: 148° ± 8° to 172° ± 2°, p 0.05, paired t-test; Kaname: 152° ± 5° to 164° ± 4°, p 0.05, paired t-test), but the change tended to be greater after Multi-link 8 stent implantation (24° ± 15° vs 11° ± 7°, p = 0.1, t-test), suggesting greater straightening of the bifurcation. The Multi-link 8 stent induced greater neointimal thickness than the Kaname stent (0.53 ± 0.3 mm vs 0.26 ± 0.1 mm, p 0.05, t-test). The distribution of neointimal hyperplasia following stent implantation as revealed by longitudinal histopathology matched the distribution of WSS simulated using computational fluid dynamics (CFD). The endothelium at low WSS areas exhibited aberrant cell morphology and leukocyte adhesion. A CFD model of a curved bifurcation suggested that the region of low WSS is expanded by artery straightening.Conclusion:In bifurcated lesions, stent flexibility influences not only mechanical stress on the artery but also WSS, which may induce local neointimal hyperplasia.? 2020 Saito et al.
机译:用途:支架的灵活性可以影响临床结果,尤其是在分叉病变。例如,一个过于刚性支架可以在支架边缘处的动脉施加的机械应力和改变都分岔动脉的几何形状和血流动力学。本实验研究的支架灵活性的影响上容器的几何形状,组织学,壁应力,和在动脉bifurcations.Materials和方法的血流动力学:我们比较动脉角度,狭窄,组织病理学,模拟壁剪切应力(WSS),和模拟血流以下的不灵活的多链路8的放置或多个柔性支架金目(4.1±0.5 VS 1.5±0.1的Mn,p <0.05,t检验)在猪冠状动脉分叉的速度分布。支架植入到使用没有侧分支支柱扩张的单支架交叉技术6个冠状动脉分支的每个。结果分别在28天。结果检查:植入两个支架显著增加站点角度(多链路8:148°±8°到172°±2°,P <0.05,配对t检验;金目:152°±5 °至164°±4°,p <0.05,配对t检验),但变化趋于后多连杆为大于8支架植入(24°±15°对11°±7°,p = 0.1,叔-test),表明分叉的更大的矫直。多连杆8支架诱导的更大的内膜厚度比金目支架(0.53±0.3毫米与0.26±0.1毫米,P <0.05,t检验)。新内膜增生的通过匹配WSS的分布纵向组织病理学所揭示的支架植入后的分布利用计算流体动力学(CFD)模拟。在低WSS区域内皮表现出异常细胞形态和白细胞粘附。弯曲的分叉的CFD模型表明,低WSS的区域由动脉straightening.Conclusion扩展:在分叉病变,支架灵活性不仅影响机械应力在动脉上,而且WSS,这可能引起局部新生内膜增生。? 2020 Saito等。

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