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Selenoprotein W redox-regulated Ca(2+) channels correlate with selenium deficiency-induced muscles Ca(2+) leak

Selenium (Se) deficiency induces Ca(2+) leak and calcification in mammal skeletal muscles; however, the exact mechanism is still unclear. In the present study, both Se-deficient chicken muscle models and selenoprotein W (SelW) gene knockdown myoblast and embryo models were used to study the mechanis...

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Autores principales: Yao, Haidong, Fan, Ruifeng, Zhao, Xia, Zhao, Wenchao, Liu, Wei, Yang, Jie, Sattar, Hamid, Zhao, Jinxin, Zhang, Ziwei, Xu, Shiwen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5295377/
https://www.ncbi.nlm.nih.gov/pubmed/27557522
http://dx.doi.org/10.18632/oncotarget.11459
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author Yao, Haidong
Fan, Ruifeng
Zhao, Xia
Zhao, Wenchao
Liu, Wei
Yang, Jie
Sattar, Hamid
Zhao, Jinxin
Zhang, Ziwei
Xu, Shiwen
author_facet Yao, Haidong
Fan, Ruifeng
Zhao, Xia
Zhao, Wenchao
Liu, Wei
Yang, Jie
Sattar, Hamid
Zhao, Jinxin
Zhang, Ziwei
Xu, Shiwen
author_sort Yao, Haidong
collection PubMed
description Selenium (Se) deficiency induces Ca(2+) leak and calcification in mammal skeletal muscles; however, the exact mechanism is still unclear. In the present study, both Se-deficient chicken muscle models and selenoprotein W (SelW) gene knockdown myoblast and embryo models were used to study the mechanism. The results showed that Se deficiency-induced typical muscular injuries accompanied with Ca(2+) leak and oxidative stress (P < 0.05) injured the ultrastructure of the sarcoplasmic reticulum (SR) and mitochondria; decreased the levels of the Ca(2+) channels, SERCA, SLC8A, CACNA1S, ORAI1, STIM1, TRPC1, and TRPC3 (P < 0.05); and increased the levels of Ca(2+) channel PMCA (P < 0.05). Similarly, SelW knockdown also induced Ca(2+) leak from the SR and cytoplasm; increased mitochondrial Ca(2+) levels and oxidative stress; injured SR and mitochondrial ultrastructure; decreased levels of SLC8A, CACNA1S, ORA1, TRPC1, and TRPC3; and caused abnormal activities of Ca(2+) channels in response to inhibitors in myoblasts and chicken embryos. Thus, both Se deficiency and SelW knockdown induced Ca(2+) leak, oxidative stress, and Ca(2+) channel reduction. In addition, Ca(2+) levels and the expression of the Ca(2+) channels, RyR1, SERCA, CACNA1S, TRPC1, and TRPC3 were recovered to normal levels by N-acetyl-L-cysteine (NAC) treatment compared with SelW knockdown cells. Thus, with regard to the decreased Ca(2+) channels, SelW knockdown closely correlated Se deficiency with Ca(2+) leak in muscles. The redox regulation role of SelW is crucial in Se deficiency-induced Ca(2+) leak in muscles.
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spelling pubmed-52953772017-02-08 Selenoprotein W redox-regulated Ca(2+) channels correlate with selenium deficiency-induced muscles Ca(2+) leak Yao, Haidong Fan, Ruifeng Zhao, Xia Zhao, Wenchao Liu, Wei Yang, Jie Sattar, Hamid Zhao, Jinxin Zhang, Ziwei Xu, Shiwen Oncotarget Research Paper Selenium (Se) deficiency induces Ca(2+) leak and calcification in mammal skeletal muscles; however, the exact mechanism is still unclear. In the present study, both Se-deficient chicken muscle models and selenoprotein W (SelW) gene knockdown myoblast and embryo models were used to study the mechanism. The results showed that Se deficiency-induced typical muscular injuries accompanied with Ca(2+) leak and oxidative stress (P < 0.05) injured the ultrastructure of the sarcoplasmic reticulum (SR) and mitochondria; decreased the levels of the Ca(2+) channels, SERCA, SLC8A, CACNA1S, ORAI1, STIM1, TRPC1, and TRPC3 (P < 0.05); and increased the levels of Ca(2+) channel PMCA (P < 0.05). Similarly, SelW knockdown also induced Ca(2+) leak from the SR and cytoplasm; increased mitochondrial Ca(2+) levels and oxidative stress; injured SR and mitochondrial ultrastructure; decreased levels of SLC8A, CACNA1S, ORA1, TRPC1, and TRPC3; and caused abnormal activities of Ca(2+) channels in response to inhibitors in myoblasts and chicken embryos. Thus, both Se deficiency and SelW knockdown induced Ca(2+) leak, oxidative stress, and Ca(2+) channel reduction. In addition, Ca(2+) levels and the expression of the Ca(2+) channels, RyR1, SERCA, CACNA1S, TRPC1, and TRPC3 were recovered to normal levels by N-acetyl-L-cysteine (NAC) treatment compared with SelW knockdown cells. Thus, with regard to the decreased Ca(2+) channels, SelW knockdown closely correlated Se deficiency with Ca(2+) leak in muscles. The redox regulation role of SelW is crucial in Se deficiency-induced Ca(2+) leak in muscles. Impact Journals LLC 2016-08-20 /pmc/articles/PMC5295377/ /pubmed/27557522 http://dx.doi.org/10.18632/oncotarget.11459 Text en Copyright: © 2016 Yao et al. http://creativecommons.org/licenses/by/2.5/ 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 author and source are credited.
spellingShingle Research Paper
Yao, Haidong
Fan, Ruifeng
Zhao, Xia
Zhao, Wenchao
Liu, Wei
Yang, Jie
Sattar, Hamid
Zhao, Jinxin
Zhang, Ziwei
Xu, Shiwen
Selenoprotein W redox-regulated Ca(2+) channels correlate with selenium deficiency-induced muscles Ca(2+) leak
title Selenoprotein W redox-regulated Ca(2+) channels correlate with selenium deficiency-induced muscles Ca(2+) leak
title_full Selenoprotein W redox-regulated Ca(2+) channels correlate with selenium deficiency-induced muscles Ca(2+) leak
title_fullStr Selenoprotein W redox-regulated Ca(2+) channels correlate with selenium deficiency-induced muscles Ca(2+) leak
title_full_unstemmed Selenoprotein W redox-regulated Ca(2+) channels correlate with selenium deficiency-induced muscles Ca(2+) leak
title_short Selenoprotein W redox-regulated Ca(2+) channels correlate with selenium deficiency-induced muscles Ca(2+) leak
title_sort selenoprotein w redox-regulated ca(2+) channels correlate with selenium deficiency-induced muscles ca(2+) leak
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5295377/
https://www.ncbi.nlm.nih.gov/pubmed/27557522
http://dx.doi.org/10.18632/oncotarget.11459
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