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本文引用的文献

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Stent Design Affects Femoropopliteal Artery Deformation.支架设计影响股浅动脉的变形。
Ann Surg. 2019 Jul;270(1):180-187. doi: 10.1097/SLA.0000000000002747.
2
Prevalence of Calcification in Human Femoropopliteal Arteries and its Association with Demographics, Risk Factors, and Arterial Stiffness.人体股浅动脉钙化的流行情况及其与人口统计学、危险因素和动脉僵硬度的关系。
Arterioscler Thromb Vasc Biol. 2018 Apr;38(4):e48-e57. doi: 10.1161/ATVBAHA.117.310490. Epub 2018 Jan 25.
3
Strategy of Metal-Polymer Composite Stent To Accelerate Biodegradation of Iron-Based Biomaterials.金属-聚合物复合支架加速铁基生物材料降解的策略。
ACS Appl Mater Interfaces. 2018 Jan 10;10(1):182-192. doi: 10.1021/acsami.7b15206. Epub 2017 Dec 27.
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The development of bioresorbable composite polymeric implants with high mechanical strength.具有高强度机械性能的可生物吸收复合聚合物植入物的开发。
Nat Mater. 2018 Jan;17(1):96-103. doi: 10.1038/nmat5016. Epub 2017 Nov 20.
5
Constitutive modeling of human femoropopliteal artery biaxial stiffening due to aging and diabetes.衰老和糖尿病导致的人体股腘动脉双轴硬化的本构模型
Acta Biomater. 2017 Dec;64:50-58. doi: 10.1016/j.actbio.2017.09.042. Epub 2017 Sep 30.
6
Effect of aging on mechanical stresses, deformations, and hemodynamics in human femoropopliteal artery due to limb flexion.由于肢体弯曲导致的人类股浅动脉的老化对机械应力、变形和血液动力学的影响。
Biomech Model Mechanobiol. 2018 Feb;17(1):181-189. doi: 10.1007/s10237-017-0953-z. Epub 2017 Aug 16.
7
Comparison of femoropopliteal artery stents under axial and radial compression, axial tension, bending, and torsion deformations.对比轴向和径向压缩、轴向拉伸、弯曲和扭转变形下的股浅动脉支架。
J Mech Behav Biomed Mater. 2017 Nov;75:160-168. doi: 10.1016/j.jmbbm.2017.07.017. Epub 2017 Jul 13.
8
Limb flexion-induced axial compression and bending in human femoropopliteal artery segments.肢体弯曲引起的人股浅动脉节段轴向压缩和弯曲。
J Vasc Surg. 2018 Feb;67(2):607-613. doi: 10.1016/j.jvs.2017.01.071. Epub 2017 May 16.
9
Limb flexion-induced twist and associated intramural stresses in the human femoropopliteal artery.人体股腘动脉中肢体屈曲引起的扭转及相关壁内应力。
J R Soc Interface. 2017 Mar;14(128). doi: 10.1098/rsif.2017.0025.
10
Stent placement in the superficial femoral and proximal popliteal arteries with the innova self-expanding bare metal stent system.使用Innova自膨式裸金属支架系统在股浅动脉和腘动脉近端放置支架。
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镍钛诺支架在股浅动脉中的应用:从材料、设计和性能的力学角度探讨

Nitinol Stents in the Femoropopliteal Artery: A Mechanical Perspective on Material, Design, and Performance.

机构信息

Department of Surgery, 987690 Nebraska Medical Center, University of Nebraska Medical Center, Omaha, NE, 68198-7690, USA.

出版信息

Ann Biomed Eng. 2018 May;46(5):684-704. doi: 10.1007/s10439-018-1990-1. Epub 2018 Feb 22.

DOI:10.1007/s10439-018-1990-1
PMID:29470746
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5975366/
Abstract

Endovascular stenting has matured into a commonly used treatment for peripheral arterial disease (PAD) due to its minimally invasive nature and associated reductions in short-term morbidity and mortality. The mechanical properties of the superelastic Nitinol alloy have played a major role in the explosion of peripheral artery stenting, with modern stents demonstrating reasonable resilience and durability. Yet in the superficial femoral and popliteal arteries, even the newest generation Nitinol stents continue to demonstrate clinical outcomes that leave significant room for improvement. Restenosis and progression of native arterial disease often lead to recurrence of symptoms and reinterventions that increase morbidity and health care expenditures. One of the main factors thought to be associated with stent failure in the femoropopliteal artery (FPA) is the unique and highly dynamic mechanical environment of the lower limb. Clinical and experimental data demonstrate that the FPA undergoes significant deformations with limb flexion. It is hypothesized that the inability of many existing stent designs to conform to these deformations likely plays a role in reconstruction failure, as repetitive movements of the leg and thigh combine with mechanical mismatch between the artery and the stent and result in mechanical damage to both the artery and the stent. In this review we will identify challenges and provide a mechanical perspective of FPA stenting, and then discuss current research directions with promise to provide a better understanding of Nitinol, specific features of stent design, and improved characterization of the biomechanical environment of the FPA to facilitate development of better stents for patients with PAD.

摘要

血管内支架置入术由于其微创性以及与短期发病率和死亡率降低相关,已成为治疗外周动脉疾病 (PAD) 的常用治疗方法。超弹性 Nitinol 合金的机械性能在外周动脉支架置入术中发挥了重要作用,现代支架具有合理的弹性和耐用性。然而,在股浅动脉和腘动脉中,即使是最新一代的 Nitinol 支架,其临床结果仍有很大的改善空间。再狭窄和原发性动脉疾病的进展常导致症状复发和再次干预,从而增加发病率和医疗保健支出。股浅动脉 (FPA) 支架失败的一个主要因素被认为是下肢独特且高度动态的机械环境。临床和实验数据表明,FPA 在肢体弯曲时会发生明显变形。据推测,许多现有支架设计无法适应这些变形,这可能是重建失败的原因之一,因为腿部和大腿的重复运动与动脉和支架之间的机械不匹配相结合,导致动脉和支架都受到机械损伤。在这篇综述中,我们将确定挑战并提供 FPA 支架的机械角度,然后讨论当前有希望提供更好理解 Nitinol、支架设计的特定特征以及改善 FPA 生物力学环境的特征的研究方向,以促进为 PAD 患者开发更好的支架。