The host-protein-independent iron uptake by Tritrichomonas foetus
Jazyk angličtina Země Spojené státy americké Médium print
Typ dokumentu časopisecké články, práce podpořená grantem
PubMed
9769245
DOI
10.1006/expr.1998.4327
PII: S0014-4894(98)94327-2
Knihovny.cz E-zdroje
- MeSH
- amilorid farmakologie MeSH
- antiprotozoální látky farmakologie MeSH
- chelátory železa metabolismus farmakologie MeSH
- chlorid amonný farmakologie MeSH
- chlorochin farmakologie MeSH
- fluorid sodný farmakologie MeSH
- kyselina askorbová farmakologie MeSH
- kyselina nitrilotrioctová analogy a deriváty metabolismus MeSH
- laktoferrin metabolismus MeSH
- oxidace-redukce MeSH
- skot MeSH
- transferin metabolismus MeSH
- Tritrichomonas foetus metabolismus MeSH
- železité sloučeniny metabolismus MeSH
- železo metabolismus MeSH
- zvířata MeSH
- Check Tag
- skot MeSH
- zvířata MeSH
- Publikační typ
- časopisecké články MeSH
- práce podpořená grantem MeSH
- Názvy látek
- amilorid MeSH
- antiprotozoální látky MeSH
- chelátory železa MeSH
- chlorid amonný MeSH
- chlorochin MeSH
- ferric nitrilotriacetate MeSH Prohlížeč
- fluorid sodný MeSH
- kyselina askorbová MeSH
- kyselina nitrilotrioctová MeSH
- laktoferrin MeSH
- transferin MeSH
- železité sloučeniny MeSH
- železo MeSH
Iron uptake from a low-molecular-weight chelate Fe(III)-nitriloacetate (Fe-NTA) by anaerobic protozoan parasite Tritrichomonas foetus was investigated and compared with that from iron-saturated lactoferrin and transferrin. The results showed that the iron uptake from Fe-NTA was saturable (Km = 2.7 microM, Vmax = 21.7 fmol. microg-1.min-1) and time, and temperature dependent, thus suggesting involvement of a membrane transport carrier. The accumulation of iron from 59Fe-NTA was inhibited by NaF and iron chelators. Amilorid and inhibitors of endosome acidification did not influence the process. Ascorbate stimulated the uptake while a membrane impermeable chelator of bivalent iron (bathophenanthroline disulfonic acid) was inhibitory, suggesting that prior to transport iron is reduced extracellularly. In accord with this assumption, the reduction of ferric to ferrous iron in the presence of intact T. foetus cells was demonstrated. Dynamics and properties of uptake of iron released from transferrin were similar to those from Fe-NTA, indicating involvement of common mechanisms. Iron uptake from lactoferrin displayed profoundly different characteristics consistent with receptor-mediated endocytosis. Metronidazole-resistant derivative of the investigated T. foetus strain showed marked deficiency in iron acquisition from Fe-NTA and transferrin while its iron uptake from lactoferrin was higher than that of the parent strain. The results presented show that T. foetus possesses at least two independent mechanisms that mediate acquisition of iron.
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