Mechanisms of fibrinogen adsorption at solid substrates at lower pH

2013
journal article
article
45
dc.abstract.otherAdsorption of fibrinogen was theoretically studied using the three-dimensional random sequential adsorption (RSA) model. Fibrinogen molecule shape was approximated by the bead model considering the presence of flexible side arms. Various cases were considered inter alia, the side-on adsorption mechanisms and the simultaneous side-on/end-on adsorption mechanism. The latter mechanisms is pertinent to fibrinogen adsorption at lower pH (below isoelectric point of 5.8) where the entire molecule is positively charged. Extensive calculations enabled one to determine the jamming surface concentration (coverage) of molecules adsorbed under the side-on and end-on orientations as well as the total coverage. For the simultaneous side-on/end-on model the maximum surface concentration was $7.29 \times 10(3) \mu m^{-2}$ corresponding to the protein coverage of 4.12 mg $m^{-2}$ (without considering hydration). Additionally, the surface blocking functions for different adsorption regimes were determined and analytically approximated for the entire range of coverage by the interpolating polynomials. Using these blocking functions, fibrinogen adsorption kinetics for diffusion controlled transport conditions was evaluated. Comparison of these theoretical results with experimental data was made. It was demonstrated that the simultaneous side-on/end-on model properly reflects the maximum coverage of fibrinogen adsorbed on latex particles determined via the electrokinetic (electrophoretic mobility) and AFM measurements. Also, streaming potential measurements of fibrinogen adsorption kinetics on mica were successfully interpreted in terms of this model. The theoretical results derived in this work have implications for basic science providing information on mechanisms of anisotropic protein adsorption.pl
dc.affiliationWydział Fizyki, Astronomii i Informatyki Stosowanej : Instytut Fizyki im. Mariana Smoluchowskiegopl
dc.contributor.authorCieśla, Michał - 101020 pl
dc.contributor.authorAdamczyk, Zbigniewpl
dc.contributor.authorBarbasz, Jakub - 160063 pl
dc.contributor.authorWasilewska, Monikapl
dc.date.accessioned2015-05-27T12:17:06Z
dc.date.available2015-05-27T12:17:06Z
dc.date.issued2013pl
dc.description.number23pl
dc.description.physical7005-7016pl
dc.description.volume29pl
dc.identifier.doi10.1021/la4012789pl
dc.identifier.eissn1520-5827pl
dc.identifier.issn0743-7463pl
dc.identifier.urihttp://ruj.uj.edu.pl/xmlui/handle/item/8259
dc.languageengpl
dc.language.containerengpl
dc.rightsDodaję tylko opis bibliograficzny*
dc.rights.licencebez licencji
dc.rights.uri*
dc.subtypeArticlepl
dc.titleMechanisms of fibrinogen adsorption at solid substrates at lower pHpl
dc.title.journalLangmuirpl
dc.typeJournalArticlepl
dspace.entity.typePublication
dc.abstract.otherpl
Adsorption of fibrinogen was theoretically studied using the three-dimensional random sequential adsorption (RSA) model. Fibrinogen molecule shape was approximated by the bead model considering the presence of flexible side arms. Various cases were considered inter alia, the side-on adsorption mechanisms and the simultaneous side-on/end-on adsorption mechanism. The latter mechanisms is pertinent to fibrinogen adsorption at lower pH (below isoelectric point of 5.8) where the entire molecule is positively charged. Extensive calculations enabled one to determine the jamming surface concentration (coverage) of molecules adsorbed under the side-on and end-on orientations as well as the total coverage. For the simultaneous side-on/end-on model the maximum surface concentration was $7.29 \times 10(3) \mu m^{-2}$ corresponding to the protein coverage of 4.12 mg $m^{-2}$ (without considering hydration). Additionally, the surface blocking functions for different adsorption regimes were determined and analytically approximated for the entire range of coverage by the interpolating polynomials. Using these blocking functions, fibrinogen adsorption kinetics for diffusion controlled transport conditions was evaluated. Comparison of these theoretical results with experimental data was made. It was demonstrated that the simultaneous side-on/end-on model properly reflects the maximum coverage of fibrinogen adsorbed on latex particles determined via the electrokinetic (electrophoretic mobility) and AFM measurements. Also, streaming potential measurements of fibrinogen adsorption kinetics on mica were successfully interpreted in terms of this model. The theoretical results derived in this work have implications for basic science providing information on mechanisms of anisotropic protein adsorption.
dc.affiliationpl
Wydział Fizyki, Astronomii i Informatyki Stosowanej : Instytut Fizyki im. Mariana Smoluchowskiego
dc.contributor.authorpl
Cieśla, Michał - 101020
dc.contributor.authorpl
Adamczyk, Zbigniew
dc.contributor.authorpl
Barbasz, Jakub - 160063
dc.contributor.authorpl
Wasilewska, Monika
dc.date.accessioned
2015-05-27T12:17:06Z
dc.date.available
2015-05-27T12:17:06Z
dc.date.issuedpl
2013
dc.description.numberpl
23
dc.description.physicalpl
7005-7016
dc.description.volumepl
29
dc.identifier.doipl
10.1021/la4012789
dc.identifier.eissnpl
1520-5827
dc.identifier.issnpl
0743-7463
dc.identifier.uri
http://ruj.uj.edu.pl/xmlui/handle/item/8259
dc.languagepl
eng
dc.language.containerpl
eng
dc.rights*
Dodaję tylko opis bibliograficzny
dc.rights.licence
bez licencji
dc.rights.uri*
dc.subtypepl
Article
dc.titlepl
Mechanisms of fibrinogen adsorption at solid substrates at lower pH
dc.title.journalpl
Langmuir
dc.typepl
JournalArticle
dspace.entity.type
Publication
Affiliations

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