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Resveratrol attenuates testicular apoptosis in type 1 diabetic mice: Role of Akt-mediated Nrf2 activation and p62-dependent Keap1 degradation

Infertility is a common complication in diabetic men, mainly due to the loss of germ cells by apoptotic cell death. However, effective and safe approaches to prevent diabetic induction of testicular apoptosis for diabetic patients have not been available. Resveratrol (RSV), a group of compounds call...

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Autores principales: Zhao, Yuguang, Song, Wenjing, Wang, Zhenyu, Wang, Zongqiang, Jin, Xing, Xu, Jiancheng, Bai, Ling, Li, Yuying, Cui, Jiuwei, Cai, Lu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5975057/
https://www.ncbi.nlm.nih.gov/pubmed/29154192
http://dx.doi.org/10.1016/j.redox.2017.11.007
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author Zhao, Yuguang
Song, Wenjing
Wang, Zhenyu
Wang, Zongqiang
Jin, Xing
Xu, Jiancheng
Bai, Ling
Li, Yuying
Cui, Jiuwei
Cai, Lu
author_facet Zhao, Yuguang
Song, Wenjing
Wang, Zhenyu
Wang, Zongqiang
Jin, Xing
Xu, Jiancheng
Bai, Ling
Li, Yuying
Cui, Jiuwei
Cai, Lu
author_sort Zhao, Yuguang
collection PubMed
description Infertility is a common complication in diabetic men, mainly due to the loss of germ cells by apoptotic cell death. However, effective and safe approaches to prevent diabetic induction of testicular apoptosis for diabetic patients have not been available. Resveratrol (RSV), a group of compounds called polyphenols from plants, has been indicated its promising used clinically for cancers and cardiovascular diseases. Therefore, the present study aimed determining whether RSV attenuates type 1 diabetes (T1D)-induced testicular apoptotic cell death in a mouse model. We found that testicular apoptosis and oxidative stress levels were significantly higher in T1D mice than control mice. In addition, the phosphorylation level of metabolism-related Akt and GSK-3β was downregulated and Akt negative regulators PTEN, PTP1B and TRB3 were upregulated in the T1D group. These effects were partially prevented by RSV treatment. Nrf2 and its downstream genes, such as NQO-1, HO-1, SOD, catalase and metallothionein were significantly upregulated by RSV treatment. In addition, RSV-induced Nrf2 activation was found due to Keap1 degradation, mainly reliant on p62 that functions as an adaptor protein during autophagy. These results indicate that the attenuation of T1D-induced testicular oxidative stress and apoptosis by RSV treatment was mainly related to Akt-mediated Nrf2 activation via p62-dependent Keap1 degradation.
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spelling pubmed-59750572018-05-31 Resveratrol attenuates testicular apoptosis in type 1 diabetic mice: Role of Akt-mediated Nrf2 activation and p62-dependent Keap1 degradation Zhao, Yuguang Song, Wenjing Wang, Zhenyu Wang, Zongqiang Jin, Xing Xu, Jiancheng Bai, Ling Li, Yuying Cui, Jiuwei Cai, Lu Redox Biol Research Paper Infertility is a common complication in diabetic men, mainly due to the loss of germ cells by apoptotic cell death. However, effective and safe approaches to prevent diabetic induction of testicular apoptosis for diabetic patients have not been available. Resveratrol (RSV), a group of compounds called polyphenols from plants, has been indicated its promising used clinically for cancers and cardiovascular diseases. Therefore, the present study aimed determining whether RSV attenuates type 1 diabetes (T1D)-induced testicular apoptotic cell death in a mouse model. We found that testicular apoptosis and oxidative stress levels were significantly higher in T1D mice than control mice. In addition, the phosphorylation level of metabolism-related Akt and GSK-3β was downregulated and Akt negative regulators PTEN, PTP1B and TRB3 were upregulated in the T1D group. These effects were partially prevented by RSV treatment. Nrf2 and its downstream genes, such as NQO-1, HO-1, SOD, catalase and metallothionein were significantly upregulated by RSV treatment. In addition, RSV-induced Nrf2 activation was found due to Keap1 degradation, mainly reliant on p62 that functions as an adaptor protein during autophagy. These results indicate that the attenuation of T1D-induced testicular oxidative stress and apoptosis by RSV treatment was mainly related to Akt-mediated Nrf2 activation via p62-dependent Keap1 degradation. Elsevier 2017-11-08 /pmc/articles/PMC5975057/ /pubmed/29154192 http://dx.doi.org/10.1016/j.redox.2017.11.007 Text en © 2017 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Paper
Zhao, Yuguang
Song, Wenjing
Wang, Zhenyu
Wang, Zongqiang
Jin, Xing
Xu, Jiancheng
Bai, Ling
Li, Yuying
Cui, Jiuwei
Cai, Lu
Resveratrol attenuates testicular apoptosis in type 1 diabetic mice: Role of Akt-mediated Nrf2 activation and p62-dependent Keap1 degradation
title Resveratrol attenuates testicular apoptosis in type 1 diabetic mice: Role of Akt-mediated Nrf2 activation and p62-dependent Keap1 degradation
title_full Resveratrol attenuates testicular apoptosis in type 1 diabetic mice: Role of Akt-mediated Nrf2 activation and p62-dependent Keap1 degradation
title_fullStr Resveratrol attenuates testicular apoptosis in type 1 diabetic mice: Role of Akt-mediated Nrf2 activation and p62-dependent Keap1 degradation
title_full_unstemmed Resveratrol attenuates testicular apoptosis in type 1 diabetic mice: Role of Akt-mediated Nrf2 activation and p62-dependent Keap1 degradation
title_short Resveratrol attenuates testicular apoptosis in type 1 diabetic mice: Role of Akt-mediated Nrf2 activation and p62-dependent Keap1 degradation
title_sort resveratrol attenuates testicular apoptosis in type 1 diabetic mice: role of akt-mediated nrf2 activation and p62-dependent keap1 degradation
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5975057/
https://www.ncbi.nlm.nih.gov/pubmed/29154192
http://dx.doi.org/10.1016/j.redox.2017.11.007
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