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Dimethyl sulfide protects against oxidative stress and extends lifespan via a methionine sulfoxide reductase A‐dependent catalytic mechanism

Methionine (Met) sulfoxide reductase A (MsrA) is a key endogenous antioxidative enzyme with longevity benefits in animals. Only very few approaches have been reported to enhance MsrA function. Recent reports have indicated that the antioxidant capability of MsrA may involve a Met oxidase activity th...

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Autores principales: Guan, Xin‐Lei, Wu, Peng‐Fei, Wang, Sheng, Zhang, Juan‐Juan, Shen, Zu‐Cheng, Luo, Han, Chen, Hao, Long, Li‐Hong, Chen, Jian‐Guo, Wang, Fang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5334523/
https://www.ncbi.nlm.nih.gov/pubmed/27790859
http://dx.doi.org/10.1111/acel.12546
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author Guan, Xin‐Lei
Wu, Peng‐Fei
Wang, Sheng
Zhang, Juan‐Juan
Shen, Zu‐Cheng
Luo, Han
Chen, Hao
Long, Li‐Hong
Chen, Jian‐Guo
Wang, Fang
author_facet Guan, Xin‐Lei
Wu, Peng‐Fei
Wang, Sheng
Zhang, Juan‐Juan
Shen, Zu‐Cheng
Luo, Han
Chen, Hao
Long, Li‐Hong
Chen, Jian‐Guo
Wang, Fang
author_sort Guan, Xin‐Lei
collection PubMed
description Methionine (Met) sulfoxide reductase A (MsrA) is a key endogenous antioxidative enzyme with longevity benefits in animals. Only very few approaches have been reported to enhance MsrA function. Recent reports have indicated that the antioxidant capability of MsrA may involve a Met oxidase activity that facilities the reaction of Met with reactive oxygen species (ROS). Herein, we used a homology modeling approach to search the substrates for the oxidase activity of MsrA. We found that dimethyl sulfide (DMS), a main metabolite that produced by marine algae, emerged as a good substrate for MsrA‐catalytic antioxidation. MsrA bounds to DMS and promoted its antioxidant capacity via facilitating the reaction of DMS with ROS through a sulfonium intermediate at residues Cys72, Tyr103, and Glu115, followed by the release of dimethyl sulfoxide (DMSO). DMS reduced the antimycin A‐induced ROS generation in cultured PC12 cells and alleviated oxidative stress. Supplement of DMS exhibited cytoprotection and extended longevity in both Caenorhabditis elegans and Drosophila. MsrA knockdown abolished the cytoprotective effect and the longevity benefits of DMS. Furthermore, we found that the level of physiologic DMS was at the low micromolar range in different tissues of mammals and its level decreased after aging. This study opened a new window to elucidate the biological role of DMS and other low‐molecular sulfides in the cytoprotection and aging.
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spelling pubmed-53345232017-04-01 Dimethyl sulfide protects against oxidative stress and extends lifespan via a methionine sulfoxide reductase A‐dependent catalytic mechanism Guan, Xin‐Lei Wu, Peng‐Fei Wang, Sheng Zhang, Juan‐Juan Shen, Zu‐Cheng Luo, Han Chen, Hao Long, Li‐Hong Chen, Jian‐Guo Wang, Fang Aging Cell Original Articles Methionine (Met) sulfoxide reductase A (MsrA) is a key endogenous antioxidative enzyme with longevity benefits in animals. Only very few approaches have been reported to enhance MsrA function. Recent reports have indicated that the antioxidant capability of MsrA may involve a Met oxidase activity that facilities the reaction of Met with reactive oxygen species (ROS). Herein, we used a homology modeling approach to search the substrates for the oxidase activity of MsrA. We found that dimethyl sulfide (DMS), a main metabolite that produced by marine algae, emerged as a good substrate for MsrA‐catalytic antioxidation. MsrA bounds to DMS and promoted its antioxidant capacity via facilitating the reaction of DMS with ROS through a sulfonium intermediate at residues Cys72, Tyr103, and Glu115, followed by the release of dimethyl sulfoxide (DMSO). DMS reduced the antimycin A‐induced ROS generation in cultured PC12 cells and alleviated oxidative stress. Supplement of DMS exhibited cytoprotection and extended longevity in both Caenorhabditis elegans and Drosophila. MsrA knockdown abolished the cytoprotective effect and the longevity benefits of DMS. Furthermore, we found that the level of physiologic DMS was at the low micromolar range in different tissues of mammals and its level decreased after aging. This study opened a new window to elucidate the biological role of DMS and other low‐molecular sulfides in the cytoprotection and aging. John Wiley and Sons Inc. 2016-10-28 2017-04 /pmc/articles/PMC5334523/ /pubmed/27790859 http://dx.doi.org/10.1111/acel.12546 Text en © 2016 The Authors. Aging Cell published by the Anatomical Society and John Wiley & Sons Ltd. This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Guan, Xin‐Lei
Wu, Peng‐Fei
Wang, Sheng
Zhang, Juan‐Juan
Shen, Zu‐Cheng
Luo, Han
Chen, Hao
Long, Li‐Hong
Chen, Jian‐Guo
Wang, Fang
Dimethyl sulfide protects against oxidative stress and extends lifespan via a methionine sulfoxide reductase A‐dependent catalytic mechanism
title Dimethyl sulfide protects against oxidative stress and extends lifespan via a methionine sulfoxide reductase A‐dependent catalytic mechanism
title_full Dimethyl sulfide protects against oxidative stress and extends lifespan via a methionine sulfoxide reductase A‐dependent catalytic mechanism
title_fullStr Dimethyl sulfide protects against oxidative stress and extends lifespan via a methionine sulfoxide reductase A‐dependent catalytic mechanism
title_full_unstemmed Dimethyl sulfide protects against oxidative stress and extends lifespan via a methionine sulfoxide reductase A‐dependent catalytic mechanism
title_short Dimethyl sulfide protects against oxidative stress and extends lifespan via a methionine sulfoxide reductase A‐dependent catalytic mechanism
title_sort dimethyl sulfide protects against oxidative stress and extends lifespan via a methionine sulfoxide reductase a‐dependent catalytic mechanism
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5334523/
https://www.ncbi.nlm.nih.gov/pubmed/27790859
http://dx.doi.org/10.1111/acel.12546
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