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Citrate reduced oxidative damage in stem cells by regulating cellular redox signaling pathways and represent a potential treatment for oxidative stress-induced diseases

Chemical substances containing citrate such as calcium citrate, citrate esters and citric acid exhibit anti-oxidant and anti-inflammatory properties in different cells and tissues. However, data on the anti-oxidant and anti-inflammatory properties and mechanisms of action of citrate are insufficient...

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Autores principales: Wu, Xiaopei, Dai, Honglian, Liu, Langlang, Xu, Chao, Yin, Yixia, Yi, Jiling, Bielec, Monika Dorota, Han, Yingchao, Li, Shipu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6302140/
https://www.ncbi.nlm.nih.gov/pubmed/30576924
http://dx.doi.org/10.1016/j.redox.2018.11.015
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author Wu, Xiaopei
Dai, Honglian
Liu, Langlang
Xu, Chao
Yin, Yixia
Yi, Jiling
Bielec, Monika Dorota
Han, Yingchao
Li, Shipu
author_facet Wu, Xiaopei
Dai, Honglian
Liu, Langlang
Xu, Chao
Yin, Yixia
Yi, Jiling
Bielec, Monika Dorota
Han, Yingchao
Li, Shipu
author_sort Wu, Xiaopei
collection PubMed
description Chemical substances containing citrate such as calcium citrate, citrate esters and citric acid exhibit anti-oxidant and anti-inflammatory properties in different cells and tissues. However, data on the anti-oxidant and anti-inflammatory properties and mechanisms of action of citrate are insufficient. In this study, we systematically evaluated the anti-oxidant capacity of citrate using chemical, cellular and animal assays. Citrate showed a stable molecular structure and did not directly react with oxides. Citrate exerted protective and anti-apoptotic effects on BMSCs and also showed significant inhibitory effects on the oxidative stress and inflammatory reactions in the rat air pouch model. By using proteomics, we found that PPARγ contributed to the upregulation of various free radical scavenging proteins and the downregulation of diverse components of the inflammatory responses. Citrate-regulated global PPARγ expression was evidenced by the significant increase expression of PPARγ in PC12 cell line. Our results provide novel insights into the role of citrate in regulating cellular redox signaling and the function of PPARγ signaling in this process and also provide basic molecular cell biology information to improve the applications of biomaterials or stem cells as treatments for oxidative stress-induced degenerative diseases and inflammatory diseases.
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spelling pubmed-63021402018-12-21 Citrate reduced oxidative damage in stem cells by regulating cellular redox signaling pathways and represent a potential treatment for oxidative stress-induced diseases Wu, Xiaopei Dai, Honglian Liu, Langlang Xu, Chao Yin, Yixia Yi, Jiling Bielec, Monika Dorota Han, Yingchao Li, Shipu Redox Biol Research Paper Chemical substances containing citrate such as calcium citrate, citrate esters and citric acid exhibit anti-oxidant and anti-inflammatory properties in different cells and tissues. However, data on the anti-oxidant and anti-inflammatory properties and mechanisms of action of citrate are insufficient. In this study, we systematically evaluated the anti-oxidant capacity of citrate using chemical, cellular and animal assays. Citrate showed a stable molecular structure and did not directly react with oxides. Citrate exerted protective and anti-apoptotic effects on BMSCs and also showed significant inhibitory effects on the oxidative stress and inflammatory reactions in the rat air pouch model. By using proteomics, we found that PPARγ contributed to the upregulation of various free radical scavenging proteins and the downregulation of diverse components of the inflammatory responses. Citrate-regulated global PPARγ expression was evidenced by the significant increase expression of PPARγ in PC12 cell line. Our results provide novel insights into the role of citrate in regulating cellular redox signaling and the function of PPARγ signaling in this process and also provide basic molecular cell biology information to improve the applications of biomaterials or stem cells as treatments for oxidative stress-induced degenerative diseases and inflammatory diseases. Elsevier 2018-11-22 /pmc/articles/PMC6302140/ /pubmed/30576924 http://dx.doi.org/10.1016/j.redox.2018.11.015 Text en © 2018 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Paper
Wu, Xiaopei
Dai, Honglian
Liu, Langlang
Xu, Chao
Yin, Yixia
Yi, Jiling
Bielec, Monika Dorota
Han, Yingchao
Li, Shipu
Citrate reduced oxidative damage in stem cells by regulating cellular redox signaling pathways and represent a potential treatment for oxidative stress-induced diseases
title Citrate reduced oxidative damage in stem cells by regulating cellular redox signaling pathways and represent a potential treatment for oxidative stress-induced diseases
title_full Citrate reduced oxidative damage in stem cells by regulating cellular redox signaling pathways and represent a potential treatment for oxidative stress-induced diseases
title_fullStr Citrate reduced oxidative damage in stem cells by regulating cellular redox signaling pathways and represent a potential treatment for oxidative stress-induced diseases
title_full_unstemmed Citrate reduced oxidative damage in stem cells by regulating cellular redox signaling pathways and represent a potential treatment for oxidative stress-induced diseases
title_short Citrate reduced oxidative damage in stem cells by regulating cellular redox signaling pathways and represent a potential treatment for oxidative stress-induced diseases
title_sort citrate reduced oxidative damage in stem cells by regulating cellular redox signaling pathways and represent a potential treatment for oxidative stress-induced diseases
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6302140/
https://www.ncbi.nlm.nih.gov/pubmed/30576924
http://dx.doi.org/10.1016/j.redox.2018.11.015
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