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Integrative Toxicoproteomics Implicates Impaired Mitochondrial Glutathione Import as an Off-Target Effect of Troglitazone

[Image: see text] Troglitazone, a first-generation thiazolidinedione of antihyperglycaemic properties, was withdrawn from the market due to unacceptable idiosyncratic hepatotoxicity. Despite intensive research, the underlying mechanism of troglitazone-induced liver toxicity remains unknown. Here we...

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Autores principales: Lee, Yie Hou, Goh, Wilson Wen Bin, Ng, Choon Keow, Raida, Manfred, Wong, Limsoon, Lin, Qingsong, Boelsterli, Urs A., Chung, Maxey C. M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2013
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3805328/
https://www.ncbi.nlm.nih.gov/pubmed/23659346
http://dx.doi.org/10.1021/pr400219s
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author Lee, Yie Hou
Goh, Wilson Wen Bin
Ng, Choon Keow
Raida, Manfred
Wong, Limsoon
Lin, Qingsong
Boelsterli, Urs A.
Chung, Maxey C. M.
author_facet Lee, Yie Hou
Goh, Wilson Wen Bin
Ng, Choon Keow
Raida, Manfred
Wong, Limsoon
Lin, Qingsong
Boelsterli, Urs A.
Chung, Maxey C. M.
author_sort Lee, Yie Hou
collection PubMed
description [Image: see text] Troglitazone, a first-generation thiazolidinedione of antihyperglycaemic properties, was withdrawn from the market due to unacceptable idiosyncratic hepatotoxicity. Despite intensive research, the underlying mechanism of troglitazone-induced liver toxicity remains unknown. Here we report the use of the Sod2(+/–) mouse model of silent mitochondrial oxidative-stress-based and quantitative mass spectrometry-based proteomics to track the mitochondrial proteome changes induced by physiologically relevant troglitazone doses. By quantitative untargeted proteomics, we first globally profiled the Sod2(+/–) hepatic mitochondria proteome and found perturbations including GSH metabolism that enhanced the toxicity of the normally nontoxic troglitazone. Short- and long-term troglitazone administration in Sod2(+/–) mouse led to a mitochondrial proteome shift from an early compensatory response to an eventual phase of intolerable oxidative stress, due to decreased mitochondrial glutathione (mGSH) import protein, decreased dicarboxylate ion carrier (DIC), and the specific activation of ASK1-JNK and FOXO3a with prolonged troglitazone exposure. Furthermore, mapping of the detected proteins onto mouse specific protein-centered networks revealed lipid-associated proteins as contributors to overt mitochondrial and liver injury when under prolonged exposure to the lipid-normalizing troglitazone. By integrative toxicoproteomics, we demonstrated a powerful systems approach in identifying the collapse of specific fragile nodes and activation of crucial proteome reconfiguration regulators when targeted by an exogenous toxicant.
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spelling pubmed-38053282013-10-22 Integrative Toxicoproteomics Implicates Impaired Mitochondrial Glutathione Import as an Off-Target Effect of Troglitazone Lee, Yie Hou Goh, Wilson Wen Bin Ng, Choon Keow Raida, Manfred Wong, Limsoon Lin, Qingsong Boelsterli, Urs A. Chung, Maxey C. M. J Proteome Res [Image: see text] Troglitazone, a first-generation thiazolidinedione of antihyperglycaemic properties, was withdrawn from the market due to unacceptable idiosyncratic hepatotoxicity. Despite intensive research, the underlying mechanism of troglitazone-induced liver toxicity remains unknown. Here we report the use of the Sod2(+/–) mouse model of silent mitochondrial oxidative-stress-based and quantitative mass spectrometry-based proteomics to track the mitochondrial proteome changes induced by physiologically relevant troglitazone doses. By quantitative untargeted proteomics, we first globally profiled the Sod2(+/–) hepatic mitochondria proteome and found perturbations including GSH metabolism that enhanced the toxicity of the normally nontoxic troglitazone. Short- and long-term troglitazone administration in Sod2(+/–) mouse led to a mitochondrial proteome shift from an early compensatory response to an eventual phase of intolerable oxidative stress, due to decreased mitochondrial glutathione (mGSH) import protein, decreased dicarboxylate ion carrier (DIC), and the specific activation of ASK1-JNK and FOXO3a with prolonged troglitazone exposure. Furthermore, mapping of the detected proteins onto mouse specific protein-centered networks revealed lipid-associated proteins as contributors to overt mitochondrial and liver injury when under prolonged exposure to the lipid-normalizing troglitazone. By integrative toxicoproteomics, we demonstrated a powerful systems approach in identifying the collapse of specific fragile nodes and activation of crucial proteome reconfiguration regulators when targeted by an exogenous toxicant. American Chemical Society 2013-05-09 2013-06-07 /pmc/articles/PMC3805328/ /pubmed/23659346 http://dx.doi.org/10.1021/pr400219s Text en Copyright © 2013 American Chemical Society Terms of Use (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html)
spellingShingle Lee, Yie Hou
Goh, Wilson Wen Bin
Ng, Choon Keow
Raida, Manfred
Wong, Limsoon
Lin, Qingsong
Boelsterli, Urs A.
Chung, Maxey C. M.
Integrative Toxicoproteomics Implicates Impaired Mitochondrial Glutathione Import as an Off-Target Effect of Troglitazone
title Integrative Toxicoproteomics Implicates Impaired Mitochondrial Glutathione Import as an Off-Target Effect of Troglitazone
title_full Integrative Toxicoproteomics Implicates Impaired Mitochondrial Glutathione Import as an Off-Target Effect of Troglitazone
title_fullStr Integrative Toxicoproteomics Implicates Impaired Mitochondrial Glutathione Import as an Off-Target Effect of Troglitazone
title_full_unstemmed Integrative Toxicoproteomics Implicates Impaired Mitochondrial Glutathione Import as an Off-Target Effect of Troglitazone
title_short Integrative Toxicoproteomics Implicates Impaired Mitochondrial Glutathione Import as an Off-Target Effect of Troglitazone
title_sort integrative toxicoproteomics implicates impaired mitochondrial glutathione import as an off-target effect of troglitazone
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3805328/
https://www.ncbi.nlm.nih.gov/pubmed/23659346
http://dx.doi.org/10.1021/pr400219s
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