Hemocompatibile thin films assessed under blood flow shear forces

2022
journal article
article
4
dc.abstract.enThe aim of this study was to minimize the risk of life-threatening thromboembolism in the ventricle through the use of a new biomimetic heart valve based on metal–polymer composites. Finite volume element simulations of blood adhesion to the material were carried out, encompassing radial flow and the cone and plane test together with determination of the effect of boundary conditions. Both tilt-disc and bicuspid valves do not have optimized blood flow due to their design based on rigid valve materials (leaflet made of pyrolytic carbon). The main objective was the development of materials with specific properties dedicated to contact with blood. Materials were evaluated by dynamic tests using blood, concentrates, and whole human blood. Hemostability tests under hydrodynamic conditions were related to the mechanical properties of thin-film materials obtained from tribological tests. The quality of the coatings was high enough to avoid damage to the coating even as they were exposed up to maximum loading. Analysis towards blood concentrates of the hydrogenated carbon sample and the nitrogen-doped hydrogenated carbon sample revealed that the interaction of the coating with erythrocytes was the strongest. Hemocompatibility evaluation under hydrodynamic conditions confirmed very good properties of the developed coatings.
dc.affiliationWydział Lekarski : Zakład Biologii Molekularnej i Genetyki Klinicznejpl
dc.cm.date2022-11-09T23:21:10Z
dc.cm.id110126pl
dc.cm.idOmegaUJCMe7f51f67b5f14d20a859b08629bf6d1cpl
dc.contributor.authorMajor, Romanpl
dc.contributor.authorWilczek, Grażynapl
dc.contributor.authorWięcek, Justynapl
dc.contributor.authorGawlikowski, Maciejpl
dc.contributor.authorPlutecka, Hanna - 133175 pl
dc.contributor.authorKasperkiewicz, Katarzynapl
dc.contributor.authorKot, Marcinpl
dc.contributor.authorPomorska, Małgorzatapl
dc.contributor.authorOstrowski, Romanpl
dc.contributor.authorKopernik, Magdalenapl
dc.date.accession2022-10-26pl
dc.date.accessioned2022-11-09T23:21:10Z
dc.date.available2022-11-09T23:21:10Z
dc.date.issued2022pl
dc.date.openaccess0
dc.description.accesstimew momencie opublikowania
dc.description.number17pl
dc.description.versionostateczna wersja wydawcy
dc.description.volume27pl
dc.identifier.articleid5696pl
dc.identifier.doi10.3390/molecules27175696pl
dc.identifier.eissn1420-3049pl
dc.identifier.issn1420-3049pl
dc.identifier.urihttps://ruj.uj.edu.pl/xmlui/handle/item/303465
dc.identifier.weblinkhttps://www.mdpi.com/1420-3049/27/17/5696pl
dc.languageengpl
dc.language.containerengpl
dc.pbn.affiliationDziedzina nauk medycznych i nauk o zdrowiu : nauki medyczne
dc.rightsUdzielam licencji. Uznanie autorstwa 4.0 Międzynarodowa
dc.rights.licenceCC-BY
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/legalcode.pl
dc.share.typeOtwarte czasopismo
dc.source.integratorfalse
dc.subject.enblood-material interaction
dc.subject.enthin coatings
dc.subject.enradial flow chamber
dc.subject.enblood shear stress
dc.subject.ennanoindentation
dc.subject.enImpact-R
dc.subject.enhemocompatibility
dc.subject.enheart valve
dc.subtypeArticlepl
dc.titleHemocompatibile thin films assessed under blood flow shear forcespl
dc.title.journalMoleculespl
dc.typeJournalArticlepl
dspace.entity.typePublication
dc.abstract.en
The aim of this study was to minimize the risk of life-threatening thromboembolism in the ventricle through the use of a new biomimetic heart valve based on metal–polymer composites. Finite volume element simulations of blood adhesion to the material were carried out, encompassing radial flow and the cone and plane test together with determination of the effect of boundary conditions. Both tilt-disc and bicuspid valves do not have optimized blood flow due to their design based on rigid valve materials (leaflet made of pyrolytic carbon). The main objective was the development of materials with specific properties dedicated to contact with blood. Materials were evaluated by dynamic tests using blood, concentrates, and whole human blood. Hemostability tests under hydrodynamic conditions were related to the mechanical properties of thin-film materials obtained from tribological tests. The quality of the coatings was high enough to avoid damage to the coating even as they were exposed up to maximum loading. Analysis towards blood concentrates of the hydrogenated carbon sample and the nitrogen-doped hydrogenated carbon sample revealed that the interaction of the coating with erythrocytes was the strongest. Hemocompatibility evaluation under hydrodynamic conditions confirmed very good properties of the developed coatings.
dc.affiliationpl
Wydział Lekarski : Zakład Biologii Molekularnej i Genetyki Klinicznej
dc.cm.date
2022-11-09T23:21:10Z
dc.cm.idpl
110126
dc.cm.idOmegapl
UJCMe7f51f67b5f14d20a859b08629bf6d1c
dc.contributor.authorpl
Major, Roman
dc.contributor.authorpl
Wilczek, Grażyna
dc.contributor.authorpl
Więcek, Justyna
dc.contributor.authorpl
Gawlikowski, Maciej
dc.contributor.authorpl
Plutecka, Hanna - 133175
dc.contributor.authorpl
Kasperkiewicz, Katarzyna
dc.contributor.authorpl
Kot, Marcin
dc.contributor.authorpl
Pomorska, Małgorzata
dc.contributor.authorpl
Ostrowski, Roman
dc.contributor.authorpl
Kopernik, Magdalena
dc.date.accessionpl
2022-10-26
dc.date.accessioned
2022-11-09T23:21:10Z
dc.date.available
2022-11-09T23:21:10Z
dc.date.issuedpl
2022
dc.date.openaccess
0
dc.description.accesstime
w momencie opublikowania
dc.description.numberpl
17
dc.description.version
ostateczna wersja wydawcy
dc.description.volumepl
27
dc.identifier.articleidpl
5696
dc.identifier.doipl
10.3390/molecules27175696
dc.identifier.eissnpl
1420-3049
dc.identifier.issnpl
1420-3049
dc.identifier.uri
https://ruj.uj.edu.pl/xmlui/handle/item/303465
dc.identifier.weblinkpl
https://www.mdpi.com/1420-3049/27/17/5696
dc.languagepl
eng
dc.language.containerpl
eng
dc.pbn.affiliation
Dziedzina nauk medycznych i nauk o zdrowiu : nauki medyczne
dc.rights
Udzielam licencji. Uznanie autorstwa 4.0 Międzynarodowa
dc.rights.licence
CC-BY
dc.rights.uri
http://creativecommons.org/licenses/by/4.0/legalcode.pl
dc.share.type
Otwarte czasopismo
dc.source.integrator
false
dc.subject.en
blood-material interaction
dc.subject.en
thin coatings
dc.subject.en
radial flow chamber
dc.subject.en
blood shear stress
dc.subject.en
nanoindentation
dc.subject.en
Impact-R
dc.subject.en
hemocompatibility
dc.subject.en
heart valve
dc.subtypepl
Article
dc.titlepl
Hemocompatibile thin films assessed under blood flow shear forces
dc.title.journalpl
Molecules
dc.typepl
JournalArticle
dspace.entity.type
Publication
Affiliations

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