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可生物降解冠状动脉支架的发展进展:转化医学视角

Advances in the development of biodegradable coronary stents: A translational perspective.

作者信息

Zong Jiabin, He Quanwei, Liu Yuxiao, Qiu Min, Wu Jiehong, Hu Bo

机构信息

Department of Neurology, Union Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, 430022, China.

出版信息

Mater Today Bio. 2022 Jul 19;16:100368. doi: 10.1016/j.mtbio.2022.100368. eCollection 2022 Dec.

Abstract

Implantation of cardiovascular stents is an important therapeutic method to treat coronary artery diseases. Bare-metal and drug-eluting stents show promising clinical outcomes, however, their permanent presence may create complications. In recent years, numerous preclinical and clinical trials have evaluated the properties of bioresorbable stents, including polymer and magnesium-based stents. Three-dimensional (3D) printed-shape-memory polymeric materials enable the self-deployment of stents and provide a novel approach for individualized treatment. Novel bioresorbable metallic stents such as iron- and zinc-based stents have also been investigated and refined. However, the development of novel bioresorbable stents accompanied by clinical translation remains time-consuming and challenging. This review comprehensively summarizes the development of bioresorbable stents based on their preclinical/clinical trials and highlights translational research as well as novel technologies for stents (e.g., bioresorbable electronic stents integrated with biosensors). These findings are expected to inspire the design of novel stents and optimization approaches to improve the efficacy of treatments for cardiovascular diseases.

摘要

心血管支架植入是治疗冠状动脉疾病的一种重要治疗方法。裸金属支架和药物洗脱支架显示出良好的临床效果,然而,它们的永久存在可能会引发并发症。近年来,大量的临床前和临床试验评估了生物可吸收支架的性能,包括聚合物支架和镁基支架。三维(3D)打印形状记忆聚合物材料能够实现支架的自我展开,并为个性化治疗提供了一种新方法。新型生物可吸收金属支架,如铁基和锌基支架,也已得到研究和改进。然而,新型生物可吸收支架的开发及其临床转化仍然耗时且具有挑战性。本综述全面总结了基于临床前/临床试验的生物可吸收支架的发展,并强调了转化研究以及支架的新技术(如集成生物传感器的生物可吸收电子支架)。这些发现有望激发新型支架的设计和优化方法,以提高心血管疾病的治疗效果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a29f/9352968/3806e281d292/ga1.jpg

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