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ALCAT1 Overexpression Affects Supercomplex Formation and Increases ROS in Respiring Mitochondria
B. Rieger, A. Krajčová, P. Duwe, KB. Busch,
Language English Country United States
Document type Journal Article
NLK
Free Medical Journals
from 2008
Hindawi Publishing Open Access
from 2008-01-01
PubMed Central
from 2008
Europe PubMed Central
from 2008
ProQuest Central
from 2014-01-01
Open Access Digital Library
from 2008-01-01
Open Access Digital Library
from 2008-01-01
Open Access Digital Library
from 2009-01-01
Medline Complete (EBSCOhost)
from 2011-01-01
Health & Medicine (ProQuest)
from 2014-01-01
PubMed
31885824
DOI
10.1155/2019/9186469
Knihovny.cz E-resources
- MeSH
- 1-Acylglycerol-3-Phosphate O-Acyltransferase genetics metabolism MeSH
- Cell Respiration MeSH
- Galactose metabolism MeSH
- HeLa Cells MeSH
- Cardiolipins metabolism MeSH
- Humans MeSH
- Membrane Potential, Mitochondrial MeSH
- Mitochondria metabolism MeSH
- Protein Multimerization genetics MeSH
- Multiprotein Complexes metabolism MeSH
- Oxidative Stress MeSH
- Reactive Oxygen Species metabolism MeSH
- Check Tag
- Humans MeSH
- Publication type
- Journal Article MeSH
Cardiolipin (CL) is a multifunctional dimeric phospholipid that physically interacts with electron transport chain complexes I, III, and IV, and ATP synthase (complex V). The enzyme ALCAT1 catalyzes the conversion of cardiolipin by incorporating polyunsaturated fatty acids into cardiolipin. The resulting CL species are said to be more susceptible to oxidative damage. This is thought to negatively affect the interaction of cardiolipin and electron transport chain complexes, leading to increased ROS production and mitochondrial dysfunction. Furthermore, it is discussed that ALCAT1 itself is upregulated due to oxidative stress. Here, we investigated the effects of overexpression of ALCAT1 under different metabolic conditions. ALCAT1 is located at the ER and mitochondria, probably at contact sites. We found that respiration stimulated by galactose supply promoted supercomplex assembly but also led to increased mitochondrial ROS levels. Endogeneous ALCAT1 protein expression levels showed a fairly high variability. Artificially induced ALCAT1 overexpression reduced supercomplex formation, further promoted ROS production, and prevented upregulation of coupled respiration. Taken together, our data suggest that the amount of the CL conversion enzyme ALCAT1 is critical for coupling mitochondrial respiration and metabolic plasticity.
References provided by Crossref.org
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