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Mitochondrial respiration supports autophagy to provide stress resistance during quiescence
S. Magalhaes-Novais, J. Blecha, R. Naraine, J. Mikesova, P. Abaffy, A. Pecinova, M. Milosevic, R. Bohuslavova, J. Prochazka, S. Khan, E. Novotna, R. Sindelka, R. Machan, M. Dewerchin, E. Vlcak, J. Kalucka, S. Stemberkova Hubackova, A. Benda, J....
Language English Country United States
Document type Journal Article
NLK
Free Medical Journals
from 2005 to 1 year ago
PubMed Central
from 2006 to 1 year ago
Europe PubMed Central
from 2008 to 1 year ago
- MeSH
- Adenosine Triphosphate metabolism MeSH
- Autophagy * MeSH
- Cysteine metabolism MeSH
- Dextrans metabolism MeSH
- Respiration MeSH
- Endothelial Cells metabolism MeSH
- Fibroblasts metabolism MeSH
- Formaldehyde metabolism MeSH
- Phosphatidylethanolamines metabolism MeSH
- Inflammatory Bowel Diseases * metabolism MeSH
- Isothiocyanates MeSH
- Humans MeSH
- Lipopolysaccharides metabolism MeSH
- DNA, Mitochondrial metabolism MeSH
- Mitochondria metabolism MeSH
- Mechanistic Target of Rapamycin Complex 1 metabolism MeSH
- Mice MeSH
- AMP-Activated Protein Kinases metabolism MeSH
- Microtubule-Associated Proteins metabolism MeSH
- Reactive Oxygen Species metabolism MeSH
- Sirolimus MeSH
- Animals MeSH
- Check Tag
- Humans MeSH
- Mice MeSH
- Animals MeSH
- Publication type
- Journal Article MeSH
Mitochondrial oxidative phosphorylation (OXPHOS) generates ATP, but OXPHOS also supports biosynthesis during proliferation. In contrast, the role of OXPHOS during quiescence, beyond ATP production, is not well understood. Using mouse models of inducible OXPHOS deficiency in all cell types or specifically in the vascular endothelium that negligibly relies on OXPHOS-derived ATP, we show that selectively during quiescence OXPHOS provides oxidative stress resistance by supporting macroautophagy/autophagy. Mechanistically, OXPHOS constitutively generates low levels of endogenous ROS that induce autophagy via attenuation of ATG4B activity, which provides protection from ROS insult. Physiologically, the OXPHOS-autophagy system (i) protects healthy tissue from toxicity of ROS-based anticancer therapy, and (ii) provides ROS resistance in the endothelium, ameliorating systemic LPS-induced inflammation as well as inflammatory bowel disease. Hence, cells acquired mitochondria during evolution to profit from oxidative metabolism, but also built in an autophagy-based ROS-induced protective mechanism to guard against oxidative stress associated with OXPHOS function during quiescence.Abbreviations: AMPK: AMP-activated protein kinase; AOX: alternative oxidase; Baf A: bafilomycin A1; CI, respiratory complexes I; DCF-DA: 2',7'-dichlordihydrofluorescein diacetate; DHE: dihydroethidium; DSS: dextran sodium sulfate; ΔΨmi: mitochondrial inner membrane potential; EdU: 5-ethynyl-2'-deoxyuridine; ETC: electron transport chain; FA: formaldehyde; HUVEC; human umbilical cord endothelial cells; IBD: inflammatory bowel disease; LC3B: microtubule associated protein 1 light chain 3 beta; LPS: lipopolysaccharide; MEFs: mouse embryonic fibroblasts; MTORC1: mechanistic target of rapamycin kinase complex 1; mtDNA: mitochondrial DNA; NAC: N-acetyl cysteine; OXPHOS: oxidative phosphorylation; PCs: proliferating cells; PE: phosphatidylethanolamine; PEITC: phenethyl isothiocyanate; QCs: quiescent cells; ROS: reactive oxygen species; PLA2: phospholipase A2, WB: western blot.
Aarhus Institute of Advanced Studies Aarhus University Aarhus C Denmark
Department of Biomedicine Aarhus University Aarhus Denmark
Faculty of Science Charles University Prague Czech Republic
Institute of Biotechnology Czech Academy of Sciences BIOCEV Vestec Czech Republic
Institute of Molecular Genetics Czech Academy of Sciences Prague Czech Republic
Institute of Physiology Czech Academy of Sciences Prague Czech Republic
School of Medical Science Griffith University Southport Qld Australia
VIB KU Leuven Center for Cancer Biology Department of Oncology KU Leuven Leuven Belgium
References provided by Crossref.org
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- $a Mitochondrial oxidative phosphorylation (OXPHOS) generates ATP, but OXPHOS also supports biosynthesis during proliferation. In contrast, the role of OXPHOS during quiescence, beyond ATP production, is not well understood. Using mouse models of inducible OXPHOS deficiency in all cell types or specifically in the vascular endothelium that negligibly relies on OXPHOS-derived ATP, we show that selectively during quiescence OXPHOS provides oxidative stress resistance by supporting macroautophagy/autophagy. Mechanistically, OXPHOS constitutively generates low levels of endogenous ROS that induce autophagy via attenuation of ATG4B activity, which provides protection from ROS insult. Physiologically, the OXPHOS-autophagy system (i) protects healthy tissue from toxicity of ROS-based anticancer therapy, and (ii) provides ROS resistance in the endothelium, ameliorating systemic LPS-induced inflammation as well as inflammatory bowel disease. Hence, cells acquired mitochondria during evolution to profit from oxidative metabolism, but also built in an autophagy-based ROS-induced protective mechanism to guard against oxidative stress associated with OXPHOS function during quiescence.Abbreviations: AMPK: AMP-activated protein kinase; AOX: alternative oxidase; Baf A: bafilomycin A1; CI, respiratory complexes I; DCF-DA: 2',7'-dichlordihydrofluorescein diacetate; DHE: dihydroethidium; DSS: dextran sodium sulfate; ΔΨmi: mitochondrial inner membrane potential; EdU: 5-ethynyl-2'-deoxyuridine; ETC: electron transport chain; FA: formaldehyde; HUVEC; human umbilical cord endothelial cells; IBD: inflammatory bowel disease; LC3B: microtubule associated protein 1 light chain 3 beta; LPS: lipopolysaccharide; MEFs: mouse embryonic fibroblasts; MTORC1: mechanistic target of rapamycin kinase complex 1; mtDNA: mitochondrial DNA; NAC: N-acetyl cysteine; OXPHOS: oxidative phosphorylation; PCs: proliferating cells; PE: phosphatidylethanolamine; PEITC: phenethyl isothiocyanate; QCs: quiescent cells; ROS: reactive oxygen species; PLA2: phospholipase A2, WB: western blot.
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