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

Author:

Islam Paromita1ORCID,Schaly Sabrina1ORCID,Abosalha Ahmed Kh.12ORCID,Boyajian Jacqueline1ORCID,Thareja Rahul1ORCID,Ahmad Waqar1,Shum‐Tim Dominique3ORCID,Prakash Satya1

Affiliation:

1. Biomedical Technology and Cell Therapy Research Laboratory, Department of Biomedical Engineering, Faculty of Medicine and Health Sciences McGill University Montreal Quebec Canada

2. Pharmaceutical Technology Department, Faculty of Pharmacy Tanta University Tanta Egypt

3. Division of Cardiac Surgery, Royal Victoria Hospital McGill University Health Centre, McGill University, Faculty of Medicine and Health Sciences Montreal Quebec Canada

Abstract

AbstractCoronary 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

Funder

Natural Sciences and Engineering Research Council of Canada

Canadian Institutes of Health Research

Publisher

Wiley

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