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Hemelipoglycoprotein from the ornate sheep tick, Dermacentor marginatus: structural and functional characterization
J. Dupejova, J. Sterba, M. Vancova, L. Grubhoffer,
Language English Country England, Great Britain
Document type Journal Article, Research Support, Non-U.S. Gov't
NLK
BioMedCentral
from 2008-12-01
BioMedCentral Open Access
from 2008
Directory of Open Access Journals
from 2008
Free Medical Journals
from 2008
PubMed Central
from 2008
Europe PubMed Central
from 2008
ProQuest Central
from 2009-01-01
Open Access Digital Library
from 2008-01-01
Open Access Digital Library
from 2008-01-01
Medline Complete (EBSCOhost)
from 2009-01-01
Health & Medicine (ProQuest)
from 2009-01-01
ROAD: Directory of Open Access Scholarly Resources
from 2008
Springer Nature OA/Free Journals
from 2008-12-01
PubMed
21214898
DOI
10.1186/1756-3305-4-4
Knihovny.cz E-resources
- MeSH
- Dermacentor chemistry metabolism MeSH
- Electrophoresis, Polyacrylamide Gel MeSH
- Glycoproteins chemistry isolation & purification metabolism MeSH
- Glycosylation MeSH
- Hemagglutinins chemistry isolation & purification metabolism MeSH
- Hemeproteins chemistry isolation & purification metabolism MeSH
- Immunoprecipitation MeSH
- Lipoproteins chemistry isolation & purification metabolism MeSH
- Carbohydrate Metabolism MeSH
- Molecular Weight MeSH
- Ornithodoros immunology MeSH
- Sheep MeSH
- Protein Subunits chemistry isolation & purification metabolism MeSH
- Antibodies immunology MeSH
- Carrier Proteins chemistry isolation & purification metabolism MeSH
- Protein Binding MeSH
- Cross Reactions MeSH
- Animals MeSH
- Check Tag
- Male MeSH
- Female MeSH
- Animals MeSH
- Publication type
- Journal Article MeSH
- Research Support, Non-U.S. Gov't MeSH
BACKGROUND: Tick carrier proteins are able to bind, transport, and store host-blood heme, and thus they function also as antioxidants. Nevertheless, the role of carrier proteins in ticks is not fully understood. Some of them are found also in tick males which do not feed on hosts to such an extent such as females (there are differences in male feeding in different tick species) and thus they are not dealing with such an excess of heme; some of the carrier proteins were found in salivary glands where the processing of blood and thus release of heme does not occur. Besides, the carrier proteins bind relatively low amounts of heme (in one case only two molecules of heme per protein) compared to their sizes (above 200 kDa). The main aim of this study is the biochemical characterization of a carrier protein from the ornate sheep tick Dermacentor marginatus, hemelipoglycoprotein, with emphasis on its size in native conditions, its glycosylation and identification of its modifying glycans, and examining its carbohydrate-binding specificity. RESULTS: Hemelipoglycoprotein from D. marginatus plasma was purified in native state by immunoprecipitation and denatured using electroelution from SDS-PAGE separated plasma. The protein (290 kDa) contains two subunits with molecular weights 100 and 95 kDa. It is glycosylated by high-mannose and complex N-glycans HexNAc(2)Hex(9), HexNAc(2)Hex(10), HexNAc(4)Hex(7), and HexNAc(4)Hex(8). The purified protein is able to agglutinate red blood cells and has galactose- and mannose-binding specificity. The protein is recognized by antibodies directed against plasma proteins with hemagglutination activity and against fibrinogen-related lectin Dorin M from the tick Ornithodoros moubata. It forms high-molecular weight complexes with putative fibrinogen-related proteins and other unknown proteins under native conditions in tick plasma. Feeding does not increase its amounts in male plasma. The hemelipoglycoprotein was detected also in hemocytes, salivary glands, and gut. In salivary glands, the protein was present in both glycosylated and nonglycosylated forms. CONCLUSION: A 290 kDa hemelipoglycoprotein from the tick Dermacentor marginatus, was characterized. The protein has two subunits with 95 and 100 kDa, and bears high-mannose and complex N-linked glycans. In hemolymph, it is present in complexes with putative fibrinogen-related proteins. This, together with its carbohydrate-binding activity, suggests its possible involvement in tick innate immunity. In fed female salivary glands, it was found also in a form corresponding to the deglycosylated protein.
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