Nanodiamond Decorated PEO Oxide Coatings on NiTi Alloy

Author:

Grundsteins Karlis1,Diedkova Kateryna12,Korniienko Viktoriia12ORCID,Stoppel Anita3,Balakin Sascha3ORCID,Jekabsons Kaspars1ORCID,Riekstina Una1ORCID,Waloszczyk Natalia4,Kołkowska Agata4,Varava Yuliia24,Opitz Jörg3ORCID,Simka Wojciech4ORCID,Beshchasna Natalia3ORCID,Pogorielov Maksym12ORCID

Affiliation:

1. Institute of Atomic Physics and Spectroscopy, University of Latvia, 3 Jelgavas St., LV-1004 Riga, Latvia

2. Biomedical Research Centre, Sumy State University, 2 Rymskogo-Korsakova St., 40007 Sumy, Ukraine

3. Fraunhofer Institute for Ceramic Technologies and Systems IKTS, 01109 Dresden, Germany

4. Faculty of Chemistry, Silesian University of Technology, 9 Strzody St., 44-100 Gliwice, Poland

Abstract

Cardiovascular diseases (CVDs) remain a leading cause of death in the European population, primarily attributed to atherosclerosis and subsequent complications. Although statin drugs effectively prevent atherosclerosis, they fail to reduce plaque size and vascular stenosis. Bare metal stents (BMS) have shown promise in acute coronary disease treatment but are associated with restenosis in the stent. Drug-eluting stents (DES) have improved restenosis rates but present long-term complications. To overcome these limitations, nanomaterial-based modifications of the stent surfaces have been explored. This study focuses on the incorporation of detonation nanodiamonds (NDs) into a plasma electrolytic oxidation (PEO) coating on nitinol stents to enhance their performance. The functionalized ND showed a high surface-to-volume ratio and was incorporated into the oxide layer to mimic high-density lipoproteins (HDL) for reverse cholesterol transport (RCT). We provide substantial characterization of DND, including stability in two media (acetone and water), Fourier transmission infrared spectroscopy, and nanoparticle tracking analysis. The characterization of the modified ND revealed successful functionalization and adequate suspension stability. Scanning electron microscopy with EDX demonstrated successful incorporation of DND into the ceramic layer, but the formation of a porous surface is possible only in the high-voltage PEO. The biological assessment demonstrated the biocompatibility of the decorated nitinol surface with enhanced cell adhesion and proliferation. This study presents a novel approach to improving the performance of nitinol stents using ND-based surface modifications, providing a promising avenue for cardiovascular disease.

Funder

M-Era.Net project Hybbistent

Publisher

MDPI AG

Subject

General Materials Science,General Chemical Engineering

Reference43 articles.

1. Epidemiology of Cardiovascular Disease in Europe;Townsend;Nat. Rev. Cardiol.,2022

2. European Society of Cardiology: Cardiovascular Disease Statistics 2019;Timmis;Eur. Heart J.,2020

3. Atherosclerosis;Libby;Nat. Rev. Dis. Prim.,2019

4. Cardiovascular Stents: Overview, Evolution, and next Generation;Borhani;Prog. Biomater.,2018

5. Absorbable Polymer Stent Technologies for Vascular Regeneration;Grabow;J. Chem. Technol. Biotechnol.,2010

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