Nanotechnology in development of next generation of stent and related medical devices: Current and future aspects.

Paromita Islam, Sabrina Schaly, Ahmed Kh Abosalha, Jacqueline Boyajian, Rahul Thareja, Waqar Ahmad, Dominique Shum-Tim, Satya Prakash
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Abstract

Coronary stents have saved millions of lives in the last three decades by treating atherosclerosis especially, by preventing plaque protrusion and subsequent aneurysms. They attenuate the vascular SMC proliferation and promote reconstruction of the endothelial bed to ensure superior revascularization. With the evolution of modern stent types, nanotechnology has become an integral part of stent technology. Nanocoating and nanosurface fabrication on metallic and polymeric stents have improved their drug loading capacity as well as other mechanical, physico-chemical, and biological properties. Nanofeatures can mimic the natural nanofeatures of vascular tissue and control drug-delivery. This review will highlight the role of nanotechnology in addressing the challenges of coronary stents and the recent advancements in the field of related medical devices. Different generations of stents carrying nanoparticle-based formulations like liposomes, lipid-polymer hybrid NPs, polymeric micelles, and dendrimers are discussed highlighting their roles in local drug delivery and anti-restenotic properties. Drug nanoparticles like Paclitaxel embedded in metal stents are discussed as a feature of first-generation drug-eluting stents. Customized precision stents ensure safe delivery of nanoparticle-mediated genes or concerted transfer of gene, drug, and/or bioactive molecules like antibodies, gene mimics via nanofabricated stents. Nanotechnology can aid such therapies for drug delivery successfully due to its easy scale-up possibilities. However, limitations of this technology such as their potential cytotoxic effects associated with nanoparticle delivery that can trigger hypersensitivity reactions have also been discussed in this review. This article is categorized under: Implantable Materials and Surgical Technologies > Nanotechnology in Tissue Repair and Replacement Therapeutic Approaches and Drug Discovery > Nanomedicine for Cardiovascular Disease Therapeutic Approaches and Drug Discovery > Emerging Technologies.

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纳米技术在下一代支架和相关医疗设备开发中的应用:当前与未来。
过去三十年来,冠状动脉支架通过治疗动脉粥样硬化,特别是通过防止斑块突出和随后的动脉瘤,挽救了数百万人的生命。冠状动脉支架可减轻血管内膜增生,促进内皮床的重建,从而确保良好的血管再通。随着现代支架类型的发展,纳米技术已成为支架技术不可或缺的一部分。在金属和聚合物支架上进行纳米涂层和纳米表面制造,提高了支架的载药能力以及其他机械、物理化学和生物特性。纳米特性可模仿血管组织的天然纳米特性并控制药物输送。本综述将重点介绍纳米技术在应对冠状动脉支架挑战方面的作用,以及相关医疗器械领域的最新进展。文章讨论了不同年代的支架所采用的基于纳米粒子的制剂,如脂质体、脂聚合杂化 NPs、聚合物胶束和树枝状分子,重点介绍了它们在局部给药和抗血管再狭窄方面的作用。讨论了嵌入金属支架的药物纳米粒子(如紫杉醇),这是第一代药物洗脱支架的一个特点。定制的精密支架可确保安全输送纳米粒子介导的基因,或通过纳米制造的支架协同转移基因、药物和/或生物活性分子(如抗体、基因模拟物)。由于纳米技术易于放大,因此可以帮助此类疗法成功实现药物输送。不过,本综述也讨论了这种技术的局限性,如纳米粒子递送可能引发超敏反应,从而产生潜在的细胞毒性效应。本文归类于植入材料和外科技术 > 纳米技术在组织修复和替代中的应用 治疗方法和药物开发 > 纳米医学治疗心血管疾病 治疗方法和药物开发 > 新兴技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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