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Disabling Mitochondrial Peroxide Metabolism via Combinatorial Targeting of Peroxiredoxin 3 as an Effective Therapeutic Approach for Malignant Mesothelioma

Dysregulation of signaling pathways and energy metabolism in cancer cells enhances production of mitochondrial hydrogen peroxide that supports tumorigenesis through multiple mechanisms. To counteract the adverse effects of mitochondrial peroxide many solid tumor types up-regulate the mitochondrial t...

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Autores principales: Cunniff, Brian, Newick, Kheng, Nelson, Kimberly J., Wozniak, Alexandra N., Beuschel, Stacie, Leavitt, Bruce, Bhave, Anant, Butnor, Kelly, Koenig, Andreas, Chouchani, Edward T., James, Andrew M., Haynes, Alexina C., Lowther, W. Todd, Murphy, Michael P., Shukla, Arti, Heintz, Nicholas H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4444329/
https://www.ncbi.nlm.nih.gov/pubmed/26011724
http://dx.doi.org/10.1371/journal.pone.0127310
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author Cunniff, Brian
Newick, Kheng
Nelson, Kimberly J.
Wozniak, Alexandra N.
Beuschel, Stacie
Leavitt, Bruce
Bhave, Anant
Butnor, Kelly
Koenig, Andreas
Chouchani, Edward T.
James, Andrew M.
Haynes, Alexina C.
Lowther, W. Todd
Murphy, Michael P.
Shukla, Arti
Heintz, Nicholas H.
author_facet Cunniff, Brian
Newick, Kheng
Nelson, Kimberly J.
Wozniak, Alexandra N.
Beuschel, Stacie
Leavitt, Bruce
Bhave, Anant
Butnor, Kelly
Koenig, Andreas
Chouchani, Edward T.
James, Andrew M.
Haynes, Alexina C.
Lowther, W. Todd
Murphy, Michael P.
Shukla, Arti
Heintz, Nicholas H.
author_sort Cunniff, Brian
collection PubMed
description Dysregulation of signaling pathways and energy metabolism in cancer cells enhances production of mitochondrial hydrogen peroxide that supports tumorigenesis through multiple mechanisms. To counteract the adverse effects of mitochondrial peroxide many solid tumor types up-regulate the mitochondrial thioredoxin reductase 2 - thioredoxin 2 (TRX2) - peroxiredoxin 3 (PRX3) antioxidant network. Using malignant mesothelioma cells as a model, we show that thiostrepton (TS) irreversibly disables PRX3 via covalent crosslinking of peroxidatic and resolving cysteine residues in homodimers, and that targeting the oxidoreductase TRX2 with the triphenylmethane gentian violet (GV) potentiates adduction by increasing levels of disulfide-bonded PRX3 dimers. Due to the fact that activity of the PRX3 catalytic cycle dictates the rate of adduction by TS, immortalized and primary human mesothelial cells are significantly less sensitive to both compounds. Moreover, stable knockdown of PRX3 reduces mesothelioma cell proliferation and sensitivity to TS. Expression of catalase in shPRX3 mesothelioma cells restores defects in cell proliferation but not sensitivity to TS. In a SCID mouse xenograft model of human mesothelioma, administration of TS and GV together reduced tumor burden more effectively than either agent alone. Because increased production of mitochondrial hydrogen peroxide is a common phenotype of malignant cells, and TS and GV are well tolerated in mammals, we propose that targeting PRX3 is a feasible redox-dependent strategy for managing mesothelioma and other intractable human malignancies.
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spelling pubmed-44443292015-06-16 Disabling Mitochondrial Peroxide Metabolism via Combinatorial Targeting of Peroxiredoxin 3 as an Effective Therapeutic Approach for Malignant Mesothelioma Cunniff, Brian Newick, Kheng Nelson, Kimberly J. Wozniak, Alexandra N. Beuschel, Stacie Leavitt, Bruce Bhave, Anant Butnor, Kelly Koenig, Andreas Chouchani, Edward T. James, Andrew M. Haynes, Alexina C. Lowther, W. Todd Murphy, Michael P. Shukla, Arti Heintz, Nicholas H. PLoS One Research Article Dysregulation of signaling pathways and energy metabolism in cancer cells enhances production of mitochondrial hydrogen peroxide that supports tumorigenesis through multiple mechanisms. To counteract the adverse effects of mitochondrial peroxide many solid tumor types up-regulate the mitochondrial thioredoxin reductase 2 - thioredoxin 2 (TRX2) - peroxiredoxin 3 (PRX3) antioxidant network. Using malignant mesothelioma cells as a model, we show that thiostrepton (TS) irreversibly disables PRX3 via covalent crosslinking of peroxidatic and resolving cysteine residues in homodimers, and that targeting the oxidoreductase TRX2 with the triphenylmethane gentian violet (GV) potentiates adduction by increasing levels of disulfide-bonded PRX3 dimers. Due to the fact that activity of the PRX3 catalytic cycle dictates the rate of adduction by TS, immortalized and primary human mesothelial cells are significantly less sensitive to both compounds. Moreover, stable knockdown of PRX3 reduces mesothelioma cell proliferation and sensitivity to TS. Expression of catalase in shPRX3 mesothelioma cells restores defects in cell proliferation but not sensitivity to TS. In a SCID mouse xenograft model of human mesothelioma, administration of TS and GV together reduced tumor burden more effectively than either agent alone. Because increased production of mitochondrial hydrogen peroxide is a common phenotype of malignant cells, and TS and GV are well tolerated in mammals, we propose that targeting PRX3 is a feasible redox-dependent strategy for managing mesothelioma and other intractable human malignancies. Public Library of Science 2015-05-26 /pmc/articles/PMC4444329/ /pubmed/26011724 http://dx.doi.org/10.1371/journal.pone.0127310 Text en © 2015 Cunniff et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Cunniff, Brian
Newick, Kheng
Nelson, Kimberly J.
Wozniak, Alexandra N.
Beuschel, Stacie
Leavitt, Bruce
Bhave, Anant
Butnor, Kelly
Koenig, Andreas
Chouchani, Edward T.
James, Andrew M.
Haynes, Alexina C.
Lowther, W. Todd
Murphy, Michael P.
Shukla, Arti
Heintz, Nicholas H.
Disabling Mitochondrial Peroxide Metabolism via Combinatorial Targeting of Peroxiredoxin 3 as an Effective Therapeutic Approach for Malignant Mesothelioma
title Disabling Mitochondrial Peroxide Metabolism via Combinatorial Targeting of Peroxiredoxin 3 as an Effective Therapeutic Approach for Malignant Mesothelioma
title_full Disabling Mitochondrial Peroxide Metabolism via Combinatorial Targeting of Peroxiredoxin 3 as an Effective Therapeutic Approach for Malignant Mesothelioma
title_fullStr Disabling Mitochondrial Peroxide Metabolism via Combinatorial Targeting of Peroxiredoxin 3 as an Effective Therapeutic Approach for Malignant Mesothelioma
title_full_unstemmed Disabling Mitochondrial Peroxide Metabolism via Combinatorial Targeting of Peroxiredoxin 3 as an Effective Therapeutic Approach for Malignant Mesothelioma
title_short Disabling Mitochondrial Peroxide Metabolism via Combinatorial Targeting of Peroxiredoxin 3 as an Effective Therapeutic Approach for Malignant Mesothelioma
title_sort disabling mitochondrial peroxide metabolism via combinatorial targeting of peroxiredoxin 3 as an effective therapeutic approach for malignant mesothelioma
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4444329/
https://www.ncbi.nlm.nih.gov/pubmed/26011724
http://dx.doi.org/10.1371/journal.pone.0127310
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