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Loss of caspase-2 accelerates age-dependent alterations in mitochondrial production of reactive oxygen species

Mitochondria are known to be a major source and target of oxidative stress. Oxidative stress increases during aging and is suggested to underlie in part the aging process. We have previously documented an increase in endogenous caspase-2 (casp2) activity in hepatocytes obtained from old (28 months)...

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Autores principales: Lopez-Cruzan, Marisa, Herman, Brian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer Netherlands 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3657345/
https://www.ncbi.nlm.nih.gov/pubmed/23504374
http://dx.doi.org/10.1007/s10522-013-9415-x
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author Lopez-Cruzan, Marisa
Herman, Brian
author_facet Lopez-Cruzan, Marisa
Herman, Brian
author_sort Lopez-Cruzan, Marisa
collection PubMed
description Mitochondria are known to be a major source and target of oxidative stress. Oxidative stress increases during aging and is suggested to underlie in part the aging process. We have previously documented an increase in endogenous caspase-2 (casp2) activity in hepatocytes obtained from old (28 months) vs. young mice (5 months). More recently, we have shown that casp2 is activated by oxidative stress and is critical for mitochondrial oxidative stress-induced apoptosis. Since casp2 appears integral to mitochondrial oxidative stress-induced apoptosis, in this study we determined whether loss of casp2 altered the production of mitochondrial reactive oxygen radicals (mROS) as a function of age in intact living hepatocytes. To stimulate mitochondrial metabolic activity, we added a mixture of pyruvate and glutamate to hepatocytes while continuously monitoring endogenous mROS production in the presence or absence of rotenone and/or antimycin A. Our data demonstrate that mROS production and neutralization are compromised in hepatocytes of old mice. Interestingly, casp2 deficient hepatocytes from middle age mice (12 months) had similar mROS neutralization kinetics to those of hepatocytes from old WT mice. Rotenone had no effect on mROS metabolism, whereas antimycin A significantly altered mROS production and metabolism in an age-dependent fashion. Our results indicate that: (1) hepatocytes from young and old mice respond differently to dysfunction of the mitochondrial electron transport chain; (2) age-dependent alterations in mROS metabolism are likely regulated by complex III; and (3) absence of casp2 accelerates age-dependent changes in terms of pyruvate/glutamate-induced mROS metabolism.
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spelling pubmed-36573452013-05-20 Loss of caspase-2 accelerates age-dependent alterations in mitochondrial production of reactive oxygen species Lopez-Cruzan, Marisa Herman, Brian Biogerontology Research Article Mitochondria are known to be a major source and target of oxidative stress. Oxidative stress increases during aging and is suggested to underlie in part the aging process. We have previously documented an increase in endogenous caspase-2 (casp2) activity in hepatocytes obtained from old (28 months) vs. young mice (5 months). More recently, we have shown that casp2 is activated by oxidative stress and is critical for mitochondrial oxidative stress-induced apoptosis. Since casp2 appears integral to mitochondrial oxidative stress-induced apoptosis, in this study we determined whether loss of casp2 altered the production of mitochondrial reactive oxygen radicals (mROS) as a function of age in intact living hepatocytes. To stimulate mitochondrial metabolic activity, we added a mixture of pyruvate and glutamate to hepatocytes while continuously monitoring endogenous mROS production in the presence or absence of rotenone and/or antimycin A. Our data demonstrate that mROS production and neutralization are compromised in hepatocytes of old mice. Interestingly, casp2 deficient hepatocytes from middle age mice (12 months) had similar mROS neutralization kinetics to those of hepatocytes from old WT mice. Rotenone had no effect on mROS metabolism, whereas antimycin A significantly altered mROS production and metabolism in an age-dependent fashion. Our results indicate that: (1) hepatocytes from young and old mice respond differently to dysfunction of the mitochondrial electron transport chain; (2) age-dependent alterations in mROS metabolism are likely regulated by complex III; and (3) absence of casp2 accelerates age-dependent changes in terms of pyruvate/glutamate-induced mROS metabolism. Springer Netherlands 2013-03-16 2013 /pmc/articles/PMC3657345/ /pubmed/23504374 http://dx.doi.org/10.1007/s10522-013-9415-x Text en © The Author(s) 2013 https://creativecommons.org/licenses/by/2.0/ Open AccessThis article is distributed under the terms of the Creative Commons Attribution License which permits any use, distribution, and reproduction in any medium, provided the original author(s) and the source are credited.
spellingShingle Research Article
Lopez-Cruzan, Marisa
Herman, Brian
Loss of caspase-2 accelerates age-dependent alterations in mitochondrial production of reactive oxygen species
title Loss of caspase-2 accelerates age-dependent alterations in mitochondrial production of reactive oxygen species
title_full Loss of caspase-2 accelerates age-dependent alterations in mitochondrial production of reactive oxygen species
title_fullStr Loss of caspase-2 accelerates age-dependent alterations in mitochondrial production of reactive oxygen species
title_full_unstemmed Loss of caspase-2 accelerates age-dependent alterations in mitochondrial production of reactive oxygen species
title_short Loss of caspase-2 accelerates age-dependent alterations in mitochondrial production of reactive oxygen species
title_sort loss of caspase-2 accelerates age-dependent alterations in mitochondrial production of reactive oxygen species
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3657345/
https://www.ncbi.nlm.nih.gov/pubmed/23504374
http://dx.doi.org/10.1007/s10522-013-9415-x
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