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Proteomic analysis of the monkey hippocampus for elucidating ischemic resistance

It is well-known that the cornu Ammonis 1 (CA1) sector of hippocampus is vulnerable for the ischemic insult, whereas the dentate gyrus (DG) is resistant. Here, to elucidate its underlying mechanism, alternations of protein oxidation and expression of DG in the monkey hippocampus after ischemia-reper...

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Autores principales: Mori, Yurie, Oikawa, Shinji, Kurimoto, Shota, Kitamura, Yuki, Tada-Oikawa, Saeko, Kobayashi, Hatasu, Yamashima, Tetsumori, Murata, Mariko
Formato: Online Artículo Texto
Lenguaje:English
Publicado: the Society for Free Radical Research Japan 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7533853/
https://www.ncbi.nlm.nih.gov/pubmed/33041514
http://dx.doi.org/10.3164/jcbn.19-78
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author Mori, Yurie
Oikawa, Shinji
Kurimoto, Shota
Kitamura, Yuki
Tada-Oikawa, Saeko
Kobayashi, Hatasu
Yamashima, Tetsumori
Murata, Mariko
author_facet Mori, Yurie
Oikawa, Shinji
Kurimoto, Shota
Kitamura, Yuki
Tada-Oikawa, Saeko
Kobayashi, Hatasu
Yamashima, Tetsumori
Murata, Mariko
author_sort Mori, Yurie
collection PubMed
description It is well-known that the cornu Ammonis 1 (CA1) sector of hippocampus is vulnerable for the ischemic insult, whereas the dentate gyrus (DG) is resistant. Here, to elucidate its underlying mechanism, alternations of protein oxidation and expression of DG in the monkey hippocampus after ischemia-reperfusion by the proteomic analysis were studied by comparing CA1 data. Oxidative damage to proteins such as protein carbonylation interrupt the protein function. Carbonyl modification of molecular chaperone, heat shock 70 kDa protein 1 (Hsp70.1) was increased remarkably in CA1, but slightly in DG. In addition, expression levels of nicotinamide adenine dinucleotide (NAD)-dependent protein deacetylase sirtuin-2 (SIRT2) was significantly increased in DG after ischemia, but decreased in CA1. Accordingly, it is likely that SIRT2 upregulation and negligible changes of carbonylation of Hsp70.1 exert its neuroprotective effect in DG. On the contrary, carbonylation level of dihydropyrimidinase related protein 2 (DRP-2) and l-lactate dehydrogenase B chain (LDHB) were slightly increased in CA1 as shown previously, but remarkably increased in DG after ischemia. It is considered that DRP-2 and LDHB are specific targets of oxidative stress by ischemia insult and high carbonylation levels of DRP-2 may play an important role in modulating ischemic neuronal death.
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spelling pubmed-75338532020-10-08 Proteomic analysis of the monkey hippocampus for elucidating ischemic resistance Mori, Yurie Oikawa, Shinji Kurimoto, Shota Kitamura, Yuki Tada-Oikawa, Saeko Kobayashi, Hatasu Yamashima, Tetsumori Murata, Mariko J Clin Biochem Nutr Original Article It is well-known that the cornu Ammonis 1 (CA1) sector of hippocampus is vulnerable for the ischemic insult, whereas the dentate gyrus (DG) is resistant. Here, to elucidate its underlying mechanism, alternations of protein oxidation and expression of DG in the monkey hippocampus after ischemia-reperfusion by the proteomic analysis were studied by comparing CA1 data. Oxidative damage to proteins such as protein carbonylation interrupt the protein function. Carbonyl modification of molecular chaperone, heat shock 70 kDa protein 1 (Hsp70.1) was increased remarkably in CA1, but slightly in DG. In addition, expression levels of nicotinamide adenine dinucleotide (NAD)-dependent protein deacetylase sirtuin-2 (SIRT2) was significantly increased in DG after ischemia, but decreased in CA1. Accordingly, it is likely that SIRT2 upregulation and negligible changes of carbonylation of Hsp70.1 exert its neuroprotective effect in DG. On the contrary, carbonylation level of dihydropyrimidinase related protein 2 (DRP-2) and l-lactate dehydrogenase B chain (LDHB) were slightly increased in CA1 as shown previously, but remarkably increased in DG after ischemia. It is considered that DRP-2 and LDHB are specific targets of oxidative stress by ischemia insult and high carbonylation levels of DRP-2 may play an important role in modulating ischemic neuronal death. the Society for Free Radical Research Japan 2020-09 2020-04-09 /pmc/articles/PMC7533853/ /pubmed/33041514 http://dx.doi.org/10.3164/jcbn.19-78 Text en Copyright © 2020 JCBN http://creativecommons.org/licenses/by/3.0/ 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 work is properly cited.
spellingShingle Original Article
Mori, Yurie
Oikawa, Shinji
Kurimoto, Shota
Kitamura, Yuki
Tada-Oikawa, Saeko
Kobayashi, Hatasu
Yamashima, Tetsumori
Murata, Mariko
Proteomic analysis of the monkey hippocampus for elucidating ischemic resistance
title Proteomic analysis of the monkey hippocampus for elucidating ischemic resistance
title_full Proteomic analysis of the monkey hippocampus for elucidating ischemic resistance
title_fullStr Proteomic analysis of the monkey hippocampus for elucidating ischemic resistance
title_full_unstemmed Proteomic analysis of the monkey hippocampus for elucidating ischemic resistance
title_short Proteomic analysis of the monkey hippocampus for elucidating ischemic resistance
title_sort proteomic analysis of the monkey hippocampus for elucidating ischemic resistance
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7533853/
https://www.ncbi.nlm.nih.gov/pubmed/33041514
http://dx.doi.org/10.3164/jcbn.19-78
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