Cargando…

Surface modification and direct plasma amination of L605 CoCr alloys: on the optimization of the oxide layer for application in cardiovascular implants

Stents are cardiovascular devices used to treat atherosclerosis, and are deployed into narrowed arteries and implanted by expansion to reopen the biological lumen. Nevertheless, complications after implantation are still observed in 10–14% of the implantations. Therefore, functionalizing these devic...

Descripción completa

Detalles Bibliográficos
Autores principales: Diaz-Rodriguez, Sergio, Chevallier, Pascale, Paternoster, Carlo, Montaño-Machado, Vanessa, Noël, Céline, Houssiau, Laurent, Mantovani, Diego
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9059826/
https://www.ncbi.nlm.nih.gov/pubmed/35516133
http://dx.doi.org/10.1039/c8ra08541b
_version_ 1784698387282526208
author Diaz-Rodriguez, Sergio
Chevallier, Pascale
Paternoster, Carlo
Montaño-Machado, Vanessa
Noël, Céline
Houssiau, Laurent
Mantovani, Diego
author_facet Diaz-Rodriguez, Sergio
Chevallier, Pascale
Paternoster, Carlo
Montaño-Machado, Vanessa
Noël, Céline
Houssiau, Laurent
Mantovani, Diego
author_sort Diaz-Rodriguez, Sergio
collection PubMed
description Stents are cardiovascular devices used to treat atherosclerosis, and are deployed into narrowed arteries and implanted by expansion to reopen the biological lumen. Nevertheless, complications after implantation are still observed in 10–14% of the implantations. Therefore, functionalizing these devices with active molecules to improve the interfacial effects with the surrounding tissue strongly impacts their success. A plasma-based procedure to directly graft biomolecules to the surface of cobalt chromium alloys, without any polymeric coating, has been recently reported. Assuring the stability of the coating during plastic deformation generated during the implantation whilst avoiding the corrosion of the surface is crucial. This study explores different surface treatments to be used as a pre-treatment for this novel procedure. The effects of (i) electropolishing, (ii) thermal treatments, and (iii) the plasma immersion ion implantation of oxygen on the chemical composition, roughness, wettability and efficiency during the plasma-amination procedure whilst avoiding cracks after deformation, thus maintaining corrosion resistant behaviour, were investigated by XPS, AFM, ToF-SIMS imaging and depth profile, and WCA. Furthermore, the hemocompatibility of the surface and cell viability assays were also performed. Results showed that all of the treatments created a different surface chemical composition: EP mainly of chromium oxide, PIII with a layer of cobalt oxide and TT with a mixture of oxides, as observed by XPS and ToF-SIMS. Moreover, EP was the process that generated a surface with the highest efficiency to amination and the most corrosion resistance among the treatments, and it appeared as the most suitable pre-treatment for stent functionalization.
format Online
Article
Text
id pubmed-9059826
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-90598262022-05-04 Surface modification and direct plasma amination of L605 CoCr alloys: on the optimization of the oxide layer for application in cardiovascular implants Diaz-Rodriguez, Sergio Chevallier, Pascale Paternoster, Carlo Montaño-Machado, Vanessa Noël, Céline Houssiau, Laurent Mantovani, Diego RSC Adv Chemistry Stents are cardiovascular devices used to treat atherosclerosis, and are deployed into narrowed arteries and implanted by expansion to reopen the biological lumen. Nevertheless, complications after implantation are still observed in 10–14% of the implantations. Therefore, functionalizing these devices with active molecules to improve the interfacial effects with the surrounding tissue strongly impacts their success. A plasma-based procedure to directly graft biomolecules to the surface of cobalt chromium alloys, without any polymeric coating, has been recently reported. Assuring the stability of the coating during plastic deformation generated during the implantation whilst avoiding the corrosion of the surface is crucial. This study explores different surface treatments to be used as a pre-treatment for this novel procedure. The effects of (i) electropolishing, (ii) thermal treatments, and (iii) the plasma immersion ion implantation of oxygen on the chemical composition, roughness, wettability and efficiency during the plasma-amination procedure whilst avoiding cracks after deformation, thus maintaining corrosion resistant behaviour, were investigated by XPS, AFM, ToF-SIMS imaging and depth profile, and WCA. Furthermore, the hemocompatibility of the surface and cell viability assays were also performed. Results showed that all of the treatments created a different surface chemical composition: EP mainly of chromium oxide, PIII with a layer of cobalt oxide and TT with a mixture of oxides, as observed by XPS and ToF-SIMS. Moreover, EP was the process that generated a surface with the highest efficiency to amination and the most corrosion resistance among the treatments, and it appeared as the most suitable pre-treatment for stent functionalization. The Royal Society of Chemistry 2019-01-17 /pmc/articles/PMC9059826/ /pubmed/35516133 http://dx.doi.org/10.1039/c8ra08541b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Diaz-Rodriguez, Sergio
Chevallier, Pascale
Paternoster, Carlo
Montaño-Machado, Vanessa
Noël, Céline
Houssiau, Laurent
Mantovani, Diego
Surface modification and direct plasma amination of L605 CoCr alloys: on the optimization of the oxide layer for application in cardiovascular implants
title Surface modification and direct plasma amination of L605 CoCr alloys: on the optimization of the oxide layer for application in cardiovascular implants
title_full Surface modification and direct plasma amination of L605 CoCr alloys: on the optimization of the oxide layer for application in cardiovascular implants
title_fullStr Surface modification and direct plasma amination of L605 CoCr alloys: on the optimization of the oxide layer for application in cardiovascular implants
title_full_unstemmed Surface modification and direct plasma amination of L605 CoCr alloys: on the optimization of the oxide layer for application in cardiovascular implants
title_short Surface modification and direct plasma amination of L605 CoCr alloys: on the optimization of the oxide layer for application in cardiovascular implants
title_sort surface modification and direct plasma amination of l605 cocr alloys: on the optimization of the oxide layer for application in cardiovascular implants
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9059826/
https://www.ncbi.nlm.nih.gov/pubmed/35516133
http://dx.doi.org/10.1039/c8ra08541b
work_keys_str_mv AT diazrodriguezsergio surfacemodificationanddirectplasmaaminationofl605cocralloysontheoptimizationoftheoxidelayerforapplicationincardiovascularimplants
AT chevallierpascale surfacemodificationanddirectplasmaaminationofl605cocralloysontheoptimizationoftheoxidelayerforapplicationincardiovascularimplants
AT paternostercarlo surfacemodificationanddirectplasmaaminationofl605cocralloysontheoptimizationoftheoxidelayerforapplicationincardiovascularimplants
AT montanomachadovanessa surfacemodificationanddirectplasmaaminationofl605cocralloysontheoptimizationoftheoxidelayerforapplicationincardiovascularimplants
AT noelceline surfacemodificationanddirectplasmaaminationofl605cocralloysontheoptimizationoftheoxidelayerforapplicationincardiovascularimplants
AT houssiaulaurent surfacemodificationanddirectplasmaaminationofl605cocralloysontheoptimizationoftheoxidelayerforapplicationincardiovascularimplants
AT mantovanidiego surfacemodificationanddirectplasmaaminationofl605cocralloysontheoptimizationoftheoxidelayerforapplicationincardiovascularimplants