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Brain-Specific Superoxide Dismutase 2 Deficiency Causes Perinatal Death with Spongiform Encephalopathy in Mice

Oxidative stress is believed to greatly contribute to the pathogenesis of various diseases, including neurodegeneration. Impairment of mitochondrial energy production and increased mitochondrial oxidative damage are considered early pathological events that lead to neurodegeneration. Manganese super...

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Autores principales: Izuo, Naotaka, Nojiri, Hidetoshi, Uchiyama, Satoshi, Noda, Yoshihiro, Kawakami, Satoru, Kojima, Shuji, Sasaki, Toru, Shirasawa, Takuji, Shimizu, Takahiko
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi Publishing Corporation 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4537744/
https://www.ncbi.nlm.nih.gov/pubmed/26301039
http://dx.doi.org/10.1155/2015/238914
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author Izuo, Naotaka
Nojiri, Hidetoshi
Uchiyama, Satoshi
Noda, Yoshihiro
Kawakami, Satoru
Kojima, Shuji
Sasaki, Toru
Shirasawa, Takuji
Shimizu, Takahiko
author_facet Izuo, Naotaka
Nojiri, Hidetoshi
Uchiyama, Satoshi
Noda, Yoshihiro
Kawakami, Satoru
Kojima, Shuji
Sasaki, Toru
Shirasawa, Takuji
Shimizu, Takahiko
author_sort Izuo, Naotaka
collection PubMed
description Oxidative stress is believed to greatly contribute to the pathogenesis of various diseases, including neurodegeneration. Impairment of mitochondrial energy production and increased mitochondrial oxidative damage are considered early pathological events that lead to neurodegeneration. Manganese superoxide dismutase (Mn-SOD, SOD2) is a mitochondrial antioxidant enzyme that converts toxic superoxide to hydrogen peroxide. To investigate the pathological role of mitochondrial oxidative stress in the central nervous system, we generated brain-specific SOD2-deficient mice (B-Sod2 (−/−)) using nestin-Cre-loxp system. B-Sod2 (−/−) showed perinatal death, along with severe growth retardation. Interestingly, these mice exhibited spongiform neurodegeneration in motor cortex, hippocampus, and brainstem, accompanied by gliosis. In addition, the mutant mice had markedly decreased mitochondrial complex II activity, but not complex I or IV, in the brain based on enzyme histochemistry. Furthermore, brain lipid peroxidation was significantly increased in the B-Sod2 (−/−), without any compensatory alterations of the activities of other antioxidative enzymes, such as catalase or glutathione peroxidase. These results suggest that SOD2 protects the neural system from oxidative stress in the perinatal stage and is essential for infant survival and central neural function in mice.
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spelling pubmed-45377442015-08-23 Brain-Specific Superoxide Dismutase 2 Deficiency Causes Perinatal Death with Spongiform Encephalopathy in Mice Izuo, Naotaka Nojiri, Hidetoshi Uchiyama, Satoshi Noda, Yoshihiro Kawakami, Satoru Kojima, Shuji Sasaki, Toru Shirasawa, Takuji Shimizu, Takahiko Oxid Med Cell Longev Research Article Oxidative stress is believed to greatly contribute to the pathogenesis of various diseases, including neurodegeneration. Impairment of mitochondrial energy production and increased mitochondrial oxidative damage are considered early pathological events that lead to neurodegeneration. Manganese superoxide dismutase (Mn-SOD, SOD2) is a mitochondrial antioxidant enzyme that converts toxic superoxide to hydrogen peroxide. To investigate the pathological role of mitochondrial oxidative stress in the central nervous system, we generated brain-specific SOD2-deficient mice (B-Sod2 (−/−)) using nestin-Cre-loxp system. B-Sod2 (−/−) showed perinatal death, along with severe growth retardation. Interestingly, these mice exhibited spongiform neurodegeneration in motor cortex, hippocampus, and brainstem, accompanied by gliosis. In addition, the mutant mice had markedly decreased mitochondrial complex II activity, but not complex I or IV, in the brain based on enzyme histochemistry. Furthermore, brain lipid peroxidation was significantly increased in the B-Sod2 (−/−), without any compensatory alterations of the activities of other antioxidative enzymes, such as catalase or glutathione peroxidase. These results suggest that SOD2 protects the neural system from oxidative stress in the perinatal stage and is essential for infant survival and central neural function in mice. Hindawi Publishing Corporation 2015 2015-08-02 /pmc/articles/PMC4537744/ /pubmed/26301039 http://dx.doi.org/10.1155/2015/238914 Text en Copyright © 2015 Naotaka Izuo et al. https://creativecommons.org/licenses/by/3.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Izuo, Naotaka
Nojiri, Hidetoshi
Uchiyama, Satoshi
Noda, Yoshihiro
Kawakami, Satoru
Kojima, Shuji
Sasaki, Toru
Shirasawa, Takuji
Shimizu, Takahiko
Brain-Specific Superoxide Dismutase 2 Deficiency Causes Perinatal Death with Spongiform Encephalopathy in Mice
title Brain-Specific Superoxide Dismutase 2 Deficiency Causes Perinatal Death with Spongiform Encephalopathy in Mice
title_full Brain-Specific Superoxide Dismutase 2 Deficiency Causes Perinatal Death with Spongiform Encephalopathy in Mice
title_fullStr Brain-Specific Superoxide Dismutase 2 Deficiency Causes Perinatal Death with Spongiform Encephalopathy in Mice
title_full_unstemmed Brain-Specific Superoxide Dismutase 2 Deficiency Causes Perinatal Death with Spongiform Encephalopathy in Mice
title_short Brain-Specific Superoxide Dismutase 2 Deficiency Causes Perinatal Death with Spongiform Encephalopathy in Mice
title_sort brain-specific superoxide dismutase 2 deficiency causes perinatal death with spongiform encephalopathy in mice
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4537744/
https://www.ncbi.nlm.nih.gov/pubmed/26301039
http://dx.doi.org/10.1155/2015/238914
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