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Maintenance of mitochondrial genomic integrity in the absence of manganese superoxide dismutase in mouse liver hepatocytes()

Manganese superoxide dismutase, encoded by the Sod2 gene, is a ubiquitously expressed mitochondrial antioxidant enzyme that is essential for mammalian life. Mice born with constitutive genetic knockout of Sod2 do not survive the neonatal stage, which renders the longitudinal study of the biochemical...

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Autores principales: Cyr, Anthony R., Brown, Kyle E., McCormick, Michael L., Coleman, Mitchell C., Case, Adam J., Watts, George S., Futscher, Bernard W., Spitz, Douglas R., Domann, Frederick E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3757676/
https://www.ncbi.nlm.nih.gov/pubmed/24024150
http://dx.doi.org/10.1016/j.redox.2013.01.001
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author Cyr, Anthony R.
Brown, Kyle E.
McCormick, Michael L.
Coleman, Mitchell C.
Case, Adam J.
Watts, George S.
Futscher, Bernard W.
Spitz, Douglas R.
Domann, Frederick E.
author_facet Cyr, Anthony R.
Brown, Kyle E.
McCormick, Michael L.
Coleman, Mitchell C.
Case, Adam J.
Watts, George S.
Futscher, Bernard W.
Spitz, Douglas R.
Domann, Frederick E.
author_sort Cyr, Anthony R.
collection PubMed
description Manganese superoxide dismutase, encoded by the Sod2 gene, is a ubiquitously expressed mitochondrial antioxidant enzyme that is essential for mammalian life. Mice born with constitutive genetic knockout of Sod2 do not survive the neonatal stage, which renders the longitudinal study of the biochemical and metabolic effects of Sod2 loss difficult. However, multiple studies have demonstrated that tissue-specific knockout of Sod2 in murine liver yields no observable gross pathology or injury to the mouse. We hypothesized that Sod2 loss may have sub-pathologic effects on liver biology, including the acquisition of reactive oxygen species-mediated mitochondrial DNA mutations. To evaluate this, we established and verified a hepatocyte-specific knockout of Sod2 in C57/B6 mice using Cre-LoxP recombination technology. We utilized deep sequencing to identify possible mutations in Sod2(−/−) mitochondrial DNA as compared to wt, and both RT-PCR and traditional biochemical assays to evaluate baseline differences in redox-sensitive pathways in Sod2(−/−) hepatocytes. Surprisingly, no mutations in Sod2(−/−) mitochondrial DNA were detected despite measurable increases in dihydroethidium staining in situ and concomitant decreases in complex II activity indicative of elevated superoxide in the Sod2(−/−) hepatocytes. In contrast, numerous compensatory alterations in gene expression were identified that suggest hepatocytes have a remarkable capacity to adapt and overcome the loss of Sod2 through transcriptional means. Taken together, these results suggest that murine hepatocytes have a large reserve capacity to cope with the presence of additional mitochondrial reactive oxygen species.
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spelling pubmed-37576762013-09-10 Maintenance of mitochondrial genomic integrity in the absence of manganese superoxide dismutase in mouse liver hepatocytes() Cyr, Anthony R. Brown, Kyle E. McCormick, Michael L. Coleman, Mitchell C. Case, Adam J. Watts, George S. Futscher, Bernard W. Spitz, Douglas R. Domann, Frederick E. Redox Biol Research Paper Manganese superoxide dismutase, encoded by the Sod2 gene, is a ubiquitously expressed mitochondrial antioxidant enzyme that is essential for mammalian life. Mice born with constitutive genetic knockout of Sod2 do not survive the neonatal stage, which renders the longitudinal study of the biochemical and metabolic effects of Sod2 loss difficult. However, multiple studies have demonstrated that tissue-specific knockout of Sod2 in murine liver yields no observable gross pathology or injury to the mouse. We hypothesized that Sod2 loss may have sub-pathologic effects on liver biology, including the acquisition of reactive oxygen species-mediated mitochondrial DNA mutations. To evaluate this, we established and verified a hepatocyte-specific knockout of Sod2 in C57/B6 mice using Cre-LoxP recombination technology. We utilized deep sequencing to identify possible mutations in Sod2(−/−) mitochondrial DNA as compared to wt, and both RT-PCR and traditional biochemical assays to evaluate baseline differences in redox-sensitive pathways in Sod2(−/−) hepatocytes. Surprisingly, no mutations in Sod2(−/−) mitochondrial DNA were detected despite measurable increases in dihydroethidium staining in situ and concomitant decreases in complex II activity indicative of elevated superoxide in the Sod2(−/−) hepatocytes. In contrast, numerous compensatory alterations in gene expression were identified that suggest hepatocytes have a remarkable capacity to adapt and overcome the loss of Sod2 through transcriptional means. Taken together, these results suggest that murine hepatocytes have a large reserve capacity to cope with the presence of additional mitochondrial reactive oxygen species. Elsevier 2013-02-05 /pmc/articles/PMC3757676/ /pubmed/24024150 http://dx.doi.org/10.1016/j.redox.2013.01.001 Text en © 2013 The Authors http://creativecommons.org/licenses/BY-NC-SA/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution-NonCommercial-ShareAlike License, which permits non-commercial use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Paper
Cyr, Anthony R.
Brown, Kyle E.
McCormick, Michael L.
Coleman, Mitchell C.
Case, Adam J.
Watts, George S.
Futscher, Bernard W.
Spitz, Douglas R.
Domann, Frederick E.
Maintenance of mitochondrial genomic integrity in the absence of manganese superoxide dismutase in mouse liver hepatocytes()
title Maintenance of mitochondrial genomic integrity in the absence of manganese superoxide dismutase in mouse liver hepatocytes()
title_full Maintenance of mitochondrial genomic integrity in the absence of manganese superoxide dismutase in mouse liver hepatocytes()
title_fullStr Maintenance of mitochondrial genomic integrity in the absence of manganese superoxide dismutase in mouse liver hepatocytes()
title_full_unstemmed Maintenance of mitochondrial genomic integrity in the absence of manganese superoxide dismutase in mouse liver hepatocytes()
title_short Maintenance of mitochondrial genomic integrity in the absence of manganese superoxide dismutase in mouse liver hepatocytes()
title_sort maintenance of mitochondrial genomic integrity in the absence of manganese superoxide dismutase in mouse liver hepatocytes()
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3757676/
https://www.ncbi.nlm.nih.gov/pubmed/24024150
http://dx.doi.org/10.1016/j.redox.2013.01.001
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