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The effect of reagents mimicking oxidative stress on fibrinogen function
J. Štikarová, R. Kotlín, T. Riedel, J. Suttnar, K. Pimková, L. Chrastinová, JE. Dyr,
Language English Country England, Great Britain
Document type Journal Article, Research Support, Non-U.S. Gov't
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PubMed
24235886
DOI
10.1155/2013/359621
Knihovny.cz E-resources
- MeSH
- Platelet Adhesiveness drug effects physiology MeSH
- Sodium Hypochlorite pharmacology MeSH
- Fibrinogen chemistry metabolism pharmacology MeSH
- Indicators and Reagents chemistry pharmacology MeSH
- Cells, Cultured MeSH
- Peroxynitrous Acid chemistry MeSH
- Humans MeSH
- Malondialdehyde chemistry pharmacology MeSH
- Oxidative Stress drug effects physiology MeSH
- Blood Platelets drug effects metabolism MeSH
- Structure-Activity Relationship MeSH
- Check Tag
- Humans MeSH
- Publication type
- Journal Article MeSH
- Research Support, Non-U.S. Gov't MeSH
Fibrinogen is one of the plasma proteins most susceptible to oxidative modification. It has been suggested that modification of fibrinogen may cause thrombotic/bleeding complications associated with many pathophysiological states of organism. We exposed fibrinogen molecules to three different modification reagents-malondialdehyde, sodium hypochlorite, and peroxynitrite-that are presented to various degrees in different stages of oxidative stress. We studied the changes in fibrin network formation and platelet interactions with modified fibrinogens under flow conditions. The fastest modification of fibrinogen was caused by hypochlorite. Fibers from fibrinogen modified with either reagent were thinner in comparison with control fibers. We found that platelet dynamic adhesion was significantly lower on fibrinogen modified with malondialdehyde and significantly higher on fibrinogen modified either with hypochlorite or peroxynitrite reflecting different prothrombotic/antithrombotic properties of oxidatively modified fibrinogens. It seems that, in the complex reactions ongoing in living organisms at conditions of oxidation stress, hypochlorite modifies proteins (e.g., fibrinogen) faster and more preferentially than malondialdehyde. It suggests that the prothrombotic effects of prior fibrinogen modifications may outweigh the antithrombotic effect of malondialdehyde-modified fibrinogen in real living systems.
References provided by Crossref.org
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