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Difference between revisions of "Andreyev 2015 Biochemistry (Mosc)"

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(Created page with "{{Publication |title=Andreyev AY, Kushnareva YE, Murphy AN, Starkov AA (2015) Mitochondrial ROS Metabolism: 10 Years Later. Biochemistry (Mosc) 80: 517โ€“531.. |info=[https://...")
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{{Publication
{{Publication
|title=Andreyev AY, Kushnareva YE, Murphy AN, Starkov AA (2015) Mitochondrial ROS Metabolism: 10 Years Later. Biochemistry (Mosc) 80: 517โ€“531..
|title=Andreyev AY, Kushnareva YE, Murphy AN, Starkov AA (2015) Mitochondrial ROS Metabolism: 10 Years Later. Biochemistry (Mosc) 80: 517โ€“531.
|info=[https://pubmed.ncbi.nlm.nih.gov/26071769/ PMID:26071769 Open Access]
|info=[https://pubmed.ncbi.nlm.nih.gov/26071769/ PMID:26071769 Open Access]
|authors=Andreyev AY, Kushnareva YE, Murphy AN, Starkov AA
|authors=Andreyev AY, Kushnareva YE, Murphy AN, Starkov AA
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|abstract=The role of mitochondria in oxidative stress is well recognized, but many questions are still to be answered. This article is intended to update our comprehensive review in 2005 by highlighting the progress in understanding of mitochondrial reactive oxygen species (ROS) metabolism over the past 10 years. We review the recently identified or re-appraised sources of ROS generation in mitochondria, such as p66shc protein, succinate dehydrogenase, and recently discovered properties of the mitochondrial antioxidant system. We also reflect upon some controversies, disputes, and misconceptions that confound the field.
|abstract=The role of mitochondria in oxidative stress is well recognized, but many questions are still to be answered. This article is intended to update our comprehensive review in 2005 by highlighting the progress in understanding of mitochondrial reactive oxygen species (ROS) metabolism over the past 10 years. We review the recently identified or re-appraised sources of ROS generation in mitochondria, such as p66shc protein, succinate dehydrogenase, and recently discovered properties of the mitochondrial antioxidant system. We also reflect upon some controversies, disputes, and misconceptions that confound the field.
}}
}}
== Cited by ==
{{Template:Cited by Komlodi 2021 MitoFit AmR}}
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{{Labeling
|additional=MitoFit 2021 AmR
|additional=MitoFit 2021 AmR
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Revision as of 14:11, 19 March 2021

Publications in the MiPMap
Andreyev AY, Kushnareva YE, Murphy AN, Starkov AA (2015) Mitochondrial ROS Metabolism: 10 Years Later. Biochemistry (Mosc) 80: 517โ€“531.

ยป PMID:26071769 Open Access

Andreyev AY, Kushnareva YE, Murphy AN, Starkov AA (2015) Biochemistry (Mosc)

Abstract: The role of mitochondria in oxidative stress is well recognized, but many questions are still to be answered. This article is intended to update our comprehensive review in 2005 by highlighting the progress in understanding of mitochondrial reactive oxygen species (ROS) metabolism over the past 10 years. We review the recently identified or re-appraised sources of ROS generation in mitochondria, such as p66shc protein, succinate dehydrogenase, and recently discovered properties of the mitochondrial antioxidant system. We also reflect upon some controversies, disputes, and misconceptions that confound the field.

Cited by

  • Komlรณdi T, Schmitt S, Zdrazilova L, Donnelly C, Zischka H, Gnaiger E. Oxygen dependence of hydrogen peroxide production in isolated mitochondria and permeabilized cells. MitoFit Preprints (in prep).

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MitoFit 2021 AmR