Hydroperoxy fatty acid cycling mediated by mitochondrial uncoupling protein UCP2
Jazyk angličtina Země Spojené státy americké Médium print-electronic
Typ dokumentu časopisecké články, práce podpořená grantem, Research Support, U.S. Gov't, P.H.S.
Grantová podpora
DK 56273
NIDDK NIH HHS - United States
TW01487
FIC NIH HHS - United States
PubMed
15475368
DOI
10.1074/jbc.m405339200
PII: S0021-9258(18)81945-7
Knihovny.cz E-zdroje
- MeSH
- anionty MeSH
- biologické modely MeSH
- buněčná membrána metabolismus MeSH
- časové faktory MeSH
- chemické modely MeSH
- down regulace MeSH
- draslík chemie MeSH
- Escherichia coli metabolismus MeSH
- hydroxylový radikál MeSH
- iontové kanály MeSH
- kinetika MeSH
- komplementární DNA metabolismus MeSH
- kyselina linolová chemie MeSH
- kyselina peroxydusitá MeSH
- kyseliny linolové chemie MeSH
- lidé MeSH
- lipidové peroxidy chemie MeSH
- liposomy chemie metabolismus MeSH
- mastné kyseliny chemie metabolismus MeSH
- membránové transportní proteiny metabolismus fyziologie MeSH
- mitochondriální proteiny metabolismus fyziologie MeSH
- mitochondrie metabolismus MeSH
- plazmidy metabolismus MeSH
- protony MeSH
- puriny chemie MeSH
- reaktivní formy kyslíku MeSH
- transport proteinů MeSH
- uncoupling protein 2 MeSH
- Check Tag
- lidé MeSH
- Publikační typ
- časopisecké články MeSH
- práce podpořená grantem MeSH
- Research Support, U.S. Gov't, P.H.S. MeSH
- Názvy látek
- anionty MeSH
- draslík MeSH
- hydroxylový radikál MeSH
- iontové kanály MeSH
- komplementární DNA MeSH
- kyselina linolová MeSH
- kyselina peroxydusitá MeSH
- kyseliny linolové MeSH
- linoleic acid hydroperoxide MeSH Prohlížeč
- lipidové peroxidy MeSH
- liposomy MeSH
- mastné kyseliny MeSH
- membránové transportní proteiny MeSH
- mitochondriální proteiny MeSH
- protony MeSH
- puriny MeSH
- reaktivní formy kyslíku MeSH
- UCP2 protein, human MeSH Prohlížeč
- uncoupling protein 2 MeSH
Functional activation of mitochondrial uncoupling protein-2 (UCP2) is proposed to decrease reactive oxygen species production. Skulachev and Goglia (Skulachev, V. P., and Goglia, F. (2003) FASEB J. 17, 1585-1591) hypothesized that hydroperoxy fatty acid anions are translocated by UCPs but cannot flip-flop across the membrane. We found that the second aspect is otherwise; the addition of synthesized linoleic acid hydroperoxides (LAOOH, a mix of four isomers) caused a fast flip-flop-dependent acidification of liposomes, comparable with the linoleic acid (LA)-dependent acidification. Using Escherichia coli-expressed UCP2 reconstituted into liposomes we found that LAOOH induced purine nucleotide-sensitive H(+) uniport in UCP2-proteoliposomes with higher affinity than LA (K(m) values 97 microM for LAOOH and 275 microM for LA). In UCP2-proteoliposomes LAOOH also induced purine nucleotide-sensitive K(+) influx balanced by anionic charge transfer, indicating that LAOOH was also transported as an anion with higher affinity than linoleate anion, the K(m) values being 90 and 350 microM, respectively. These data suggest that hydroperoxy fatty acids are transported via UCP2 by a fatty acid cycling mechanism. This may alternatively explain the observed activation of UCP2 by the externally generated superoxide. The ability of LAOOH to induce UCP2-mediated H(+) uniport points to the essential role of superoxide reaction products, such as hydroperoxyl radical, hydroxyl radical, or peroxynitrite, initiating lipoperoxidation, the released products of which support the UCP2-mediated uncoupling and promote the feedback down-regulation of mitochondrial reactive oxygen species production.
Citace poskytuje Crossref.org
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