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Mechanisms of cell death pathway activation following drug-induced inhibition of mitochondrial complex I

Respiratory complex I inhibition by drugs and other chemicals has been implicated as a frequent mode of mitochondria-mediated cell injury. However, the exact mechanisms leading to the activation of cell death pathways are incompletely understood. This study was designed to explore the relative contr...

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Autores principales: Imaizumi, Naoki, Kwang Lee, Kang, Zhang, Carmen, Boelsterli, Urs A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4315936/
https://www.ncbi.nlm.nih.gov/pubmed/25625582
http://dx.doi.org/10.1016/j.redox.2015.01.005
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author Imaizumi, Naoki
Kwang Lee, Kang
Zhang, Carmen
Boelsterli, Urs A.
author_facet Imaizumi, Naoki
Kwang Lee, Kang
Zhang, Carmen
Boelsterli, Urs A.
author_sort Imaizumi, Naoki
collection PubMed
description Respiratory complex I inhibition by drugs and other chemicals has been implicated as a frequent mode of mitochondria-mediated cell injury. However, the exact mechanisms leading to the activation of cell death pathways are incompletely understood. This study was designed to explore the relative contributions to cell injury of three distinct consequences of complex I inhibition, i.e., impairment of ATP biosynthesis, increased formation of superoxide and, hence, peroxynitrite, and inhibition of the mitochondrial protein deacetylase, Sirt3, due to imbalance of the NADH/NAD(+) ratio. We used the antiviral drug efavirenz (EFV) to model drug-induced complex I inhibition. Exposure of cultured mouse hepatocytes to EFV resulted in a rapid onset of cell injury, featuring a no-effect level at 30 µM EFV and submaximal effects at 50 µM EFV. EFV caused a concentration-dependent decrease in cellular ATP levels. Furthermore, EFV resulted in increased formation of peroxynitrite and oxidation of mitochondrial protein thiols, including cyclophilin D (CypD). This was prevented by the superoxide scavenger, Fe-TCP, or the peroxynitrite decomposition catalyst, Fe-TMPyP. Both ferroporphyrins completely protected from EFV-induced cell injury, suggesting that peroxynitrite contributed to the cell injury. Finally, EFV increased the NADH/NAD(+) ratio, inhibited Sirt3 activity, and led to hyperacetylated lysine residues, including those in CypD. However, hepatocytes isolated from Sirt3-null mice were protected against 40 µM EFV as compared to their wild-type controls. In conclusion, these data are compatible with the concept that chemical inhibition of complex I activates multiple pathways leading to cell injury; among these, peroxynitrite formation may be the most critical.
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spelling pubmed-43159362015-02-14 Mechanisms of cell death pathway activation following drug-induced inhibition of mitochondrial complex I Imaizumi, Naoki Kwang Lee, Kang Zhang, Carmen Boelsterli, Urs A. Redox Biol Research Paper Respiratory complex I inhibition by drugs and other chemicals has been implicated as a frequent mode of mitochondria-mediated cell injury. However, the exact mechanisms leading to the activation of cell death pathways are incompletely understood. This study was designed to explore the relative contributions to cell injury of three distinct consequences of complex I inhibition, i.e., impairment of ATP biosynthesis, increased formation of superoxide and, hence, peroxynitrite, and inhibition of the mitochondrial protein deacetylase, Sirt3, due to imbalance of the NADH/NAD(+) ratio. We used the antiviral drug efavirenz (EFV) to model drug-induced complex I inhibition. Exposure of cultured mouse hepatocytes to EFV resulted in a rapid onset of cell injury, featuring a no-effect level at 30 µM EFV and submaximal effects at 50 µM EFV. EFV caused a concentration-dependent decrease in cellular ATP levels. Furthermore, EFV resulted in increased formation of peroxynitrite and oxidation of mitochondrial protein thiols, including cyclophilin D (CypD). This was prevented by the superoxide scavenger, Fe-TCP, or the peroxynitrite decomposition catalyst, Fe-TMPyP. Both ferroporphyrins completely protected from EFV-induced cell injury, suggesting that peroxynitrite contributed to the cell injury. Finally, EFV increased the NADH/NAD(+) ratio, inhibited Sirt3 activity, and led to hyperacetylated lysine residues, including those in CypD. However, hepatocytes isolated from Sirt3-null mice were protected against 40 µM EFV as compared to their wild-type controls. In conclusion, these data are compatible with the concept that chemical inhibition of complex I activates multiple pathways leading to cell injury; among these, peroxynitrite formation may be the most critical. Elsevier 2015-01-16 /pmc/articles/PMC4315936/ /pubmed/25625582 http://dx.doi.org/10.1016/j.redox.2015.01.005 Text en © 2015 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Paper
Imaizumi, Naoki
Kwang Lee, Kang
Zhang, Carmen
Boelsterli, Urs A.
Mechanisms of cell death pathway activation following drug-induced inhibition of mitochondrial complex I
title Mechanisms of cell death pathway activation following drug-induced inhibition of mitochondrial complex I
title_full Mechanisms of cell death pathway activation following drug-induced inhibition of mitochondrial complex I
title_fullStr Mechanisms of cell death pathway activation following drug-induced inhibition of mitochondrial complex I
title_full_unstemmed Mechanisms of cell death pathway activation following drug-induced inhibition of mitochondrial complex I
title_short Mechanisms of cell death pathway activation following drug-induced inhibition of mitochondrial complex I
title_sort mechanisms of cell death pathway activation following drug-induced inhibition of mitochondrial complex i
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4315936/
https://www.ncbi.nlm.nih.gov/pubmed/25625582
http://dx.doi.org/10.1016/j.redox.2015.01.005
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