Physical Properties of Electropolished CoCrMo Alloy Coated with Biodegradable Polymeric Coatings Releasing Heparin after Prolonged Exposure to Artificial Urine.

CoCrMo alloy artificial urine biodegradable polymer coatings corrosion resistance metallic biomaterials

Journal

Materials (Basel, Switzerland)
ISSN: 1996-1944
Titre abrégé: Materials (Basel)
Pays: Switzerland
ID NLM: 101555929

Informations de publication

Date de publication:
14 May 2021
Historique:
received: 22 03 2021
revised: 02 05 2021
accepted: 12 05 2021
entrez: 2 6 2021
pubmed: 3 6 2021
medline: 3 6 2021
Statut: epublish

Résumé

In this study, we aimed to determine the effect of long-term exposure to artificial urine on the physical properties of CoCrMo alloy with biodegradable heparin-releasing polymeric coatings. Variants of polymer coatings of poly(L,L-lactide-ɛ-caprolactone) (P(L,L-L/CL)) and poly(D,L-lactide-ɛ-caprolactone) (P(D,L-L/CL)) constituting the base for heparin-releasing (HEP) polyvinyl alcohol (PVA) coatings were analyzed. The coatings were applied by the dip-coating method. Heparin was used to counteract the incrustation process in the artificial urine. The study included tests of wettability, resistance to pitting and crevice corrosion, determination of the mass density of metal ions penetrating into the artificial urine, and the kinetics of heparin release. In addition, microscopic observations of surface roughness and adhesion to the metal substrate were performed. Electrolytically polished CoCrMo samples (as a reference level) and samples with polymer coatings were used for the tests. The tests were conducted on samples in the initial state and after 30, 60, and 90 days of exposure to artificial urine. The analysis of the test results shows that the polymer coatings contribute by improving the resistance of the metal substrate to pitting and crevice corrosion in the initial state and reducing (as compared with the metal substrate) the mass density of metal ion release into the artificial urine. Moreover, the PVA + HEP coating, regardless of the base polymer coatings used, contributes to a reduction in the incrustation process in the first 30 days of exposure to the artificial urine.

Identifiants

pubmed: 34069039
pii: ma14102551
doi: 10.3390/ma14102551
pmc: PMC8156080
pii:
doi:

Types de publication

Journal Article

Langues

eng

Subventions

Organisme : Narodowe Centrum Nauki
ID : 2018/02/X/ST8/03061

Références

Acta Bioeng Biomech. 2017;19(2):73-78
pubmed: 28869626
BMC Urol. 2019 Dec 27;19(1):137
pubmed: 31881875
Acta Bioeng Biomech. 2019;21(4):83-92
pubmed: 32022799
J Biomed Mater Res A. 2020 Apr;108(4):1006-1015
pubmed: 31925896
Langmuir. 2013 Jun 11;29(23):6911-9
pubmed: 23631433
Curr Urol Rep. 2018 Apr 10;19(5):35
pubmed: 29637309
Urol Res. 2002 Sep;30(4):227-32
pubmed: 12202940
Materials (Basel). 2020 Apr 09;13(7):
pubmed: 32283745
Eur Urol. 2010 Mar;57(3):480-6
pubmed: 19232816
J Endourol. 1998 Dec;12(6):493-500
pubmed: 9895250
J Urol. 2009 Sep;182(3):1194-200
pubmed: 19625060
Int Braz J Urol. 2014 Mar-Apr;40(2):225-31
pubmed: 24856490
Acta Bioeng Biomech. 2017;19(1):173-179
pubmed: 28552934
J Mech Behav Biomed Mater. 2020 May;105:103706
pubmed: 32279850
Urology. 2007 Dec;70(6):1057-9
pubmed: 18158013
Int J Pharm. 2011 Aug 30;415(1-2):34-52
pubmed: 21640806
Sensors (Basel). 2016 Aug 09;16(8):
pubmed: 27517924
Sensors (Basel). 2016 Jun 02;16(6):
pubmed: 27271619
Colloids Surf B Biointerfaces. 2020 Dec;196:111280
pubmed: 32781418
J Endourol. 2006 May;20(5):300-4
pubmed: 16724898
J Dent Res. 1994 May;73(5):1061-71
pubmed: 8006233

Auteurs

Wojciech Kajzer (W)

Department of Biomaterials and Medical Devices Engineering, Faculty of Biomedical Engineering, Silesian University of Technology, 41-800 Zabrze, Poland.

Janusz Szewczenko (J)

Department of Biomaterials and Medical Devices Engineering, Faculty of Biomedical Engineering, Silesian University of Technology, 41-800 Zabrze, Poland.

Anita Kajzer (A)

Department of Biomaterials and Medical Devices Engineering, Faculty of Biomedical Engineering, Silesian University of Technology, 41-800 Zabrze, Poland.

Marcin Basiaga (M)

Department of Biomaterials and Medical Devices Engineering, Faculty of Biomedical Engineering, Silesian University of Technology, 41-800 Zabrze, Poland.

Joanna Jaworska (J)

Centre of Polymer and Carbon Materials, Polish Academy of Sciences, 41-819 Zabrze, Poland.

Katarzyna Jelonek (K)

Centre of Polymer and Carbon Materials, Polish Academy of Sciences, 41-819 Zabrze, Poland.

Katarzyna Nowińska (K)

Department of Applied Geology, Faculty of Mining, Safety Engineering and Industrial Automation, Silesian University of Technology, 44-100 Gliwice, Poland.

Marcin Kaczmarek (M)

Department of Biomaterials and Medical Devices Engineering, Faculty of Biomedical Engineering, Silesian University of Technology, 41-800 Zabrze, Poland.

Ada Orłowska (A)

Department of Biomaterials and Medical Devices Engineering, Faculty of Biomedical Engineering, Silesian University of Technology, 41-800 Zabrze, Poland.

Classifications MeSH