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K(Ca)3.1 upregulation preserves endothelium‐dependent vasorelaxation during aging and oxidative stress

Endothelial oxidative stress develops with aging and reactive oxygen species impair endothelium‐dependent relaxation (EDR) by decreasing nitric oxide (NO) availability. Endothelial K(Ca)3.1, which contributes to EDR, is upregulated by H(2)O(2). We investigated whether K(Ca)3.1 upregulation compensat...

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Autores principales: Choi, Shinkyu, Kim, Ji Aee, Li, Hai‐yan, Shin, Kyong‐Oh, Oh, Goo Taeg, Lee, Yong‐Moon, Oh, Seikwan, Pewzner‐Jung, Yael, Futerman, Anthony H., Suh, Suk Hyo
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/PMC5013018/
https://www.ncbi.nlm.nih.gov/pubmed/27363720
http://dx.doi.org/10.1111/acel.12502
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author Choi, Shinkyu
Kim, Ji Aee
Li, Hai‐yan
Shin, Kyong‐Oh
Oh, Goo Taeg
Lee, Yong‐Moon
Oh, Seikwan
Pewzner‐Jung, Yael
Futerman, Anthony H.
Suh, Suk Hyo
author_facet Choi, Shinkyu
Kim, Ji Aee
Li, Hai‐yan
Shin, Kyong‐Oh
Oh, Goo Taeg
Lee, Yong‐Moon
Oh, Seikwan
Pewzner‐Jung, Yael
Futerman, Anthony H.
Suh, Suk Hyo
author_sort Choi, Shinkyu
collection PubMed
description Endothelial oxidative stress develops with aging and reactive oxygen species impair endothelium‐dependent relaxation (EDR) by decreasing nitric oxide (NO) availability. Endothelial K(Ca)3.1, which contributes to EDR, is upregulated by H(2)O(2). We investigated whether K(Ca)3.1 upregulation compensates for diminished EDR to NO during aging‐related oxidative stress. Previous studies identified that the levels of ceramide synthase 5 (CerS5), sphingosine, and sphingosine 1‐phosphate were increased in aged wild‐type and CerS2 mice. In primary mouse aortic endothelial cells (MAECs) from aged wild‐type and CerS2 null mice, superoxide dismutase (SOD) was upregulated, and catalase and glutathione peroxidase 1 (GPX1) were downregulated, when compared to MAECs from young and age‐matched wild‐type mice. Increased H(2)O(2) levels induced Fyn and extracellular signal‐regulated kinases (ERKs) phosphorylation and K(Ca)3.1 upregulation. Catalase/GPX1 double knockout (catalase(−/−)/GPX1(−/−)) upregulated K(Ca)3.1 in MAECs. NO production was decreased in aged wild‐type, CerS2 null, and catalase(−/−)/GPX1(−/−) MAECs. However, K(Ca)3.1 activation‐induced, N(G)‐nitro‐l‐arginine‐, and indomethacin‐resistant EDR was increased without a change in acetylcholine‐induced EDR in aortic rings from aged wild‐type, CerS2 null, and catalase(−/−)/GPX1(−/−) mice. CerS5 transfection or exogenous application of sphingosine or sphingosine 1‐phosphate induced similar changes in levels of the antioxidant enzymes and upregulated K(Ca)3.1. Our findings suggest that, during aging‐related oxidative stress, SOD upregulation and downregulation of catalase and GPX1, which occur upon altering the sphingolipid composition or acyl chain length, generate H(2)O(2) and thereby upregulate K(Ca)3.1 expression and function via a H(2)O(2)/Fyn‐mediated pathway. Altogether, enhanced K(Ca)3.1 activity may compensate for decreased NO signaling during vascular aging.
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spelling pubmed-50130182016-10-01 K(Ca)3.1 upregulation preserves endothelium‐dependent vasorelaxation during aging and oxidative stress Choi, Shinkyu Kim, Ji Aee Li, Hai‐yan Shin, Kyong‐Oh Oh, Goo Taeg Lee, Yong‐Moon Oh, Seikwan Pewzner‐Jung, Yael Futerman, Anthony H. Suh, Suk Hyo Aging Cell Original Articles Endothelial oxidative stress develops with aging and reactive oxygen species impair endothelium‐dependent relaxation (EDR) by decreasing nitric oxide (NO) availability. Endothelial K(Ca)3.1, which contributes to EDR, is upregulated by H(2)O(2). We investigated whether K(Ca)3.1 upregulation compensates for diminished EDR to NO during aging‐related oxidative stress. Previous studies identified that the levels of ceramide synthase 5 (CerS5), sphingosine, and sphingosine 1‐phosphate were increased in aged wild‐type and CerS2 mice. In primary mouse aortic endothelial cells (MAECs) from aged wild‐type and CerS2 null mice, superoxide dismutase (SOD) was upregulated, and catalase and glutathione peroxidase 1 (GPX1) were downregulated, when compared to MAECs from young and age‐matched wild‐type mice. Increased H(2)O(2) levels induced Fyn and extracellular signal‐regulated kinases (ERKs) phosphorylation and K(Ca)3.1 upregulation. Catalase/GPX1 double knockout (catalase(−/−)/GPX1(−/−)) upregulated K(Ca)3.1 in MAECs. NO production was decreased in aged wild‐type, CerS2 null, and catalase(−/−)/GPX1(−/−) MAECs. However, K(Ca)3.1 activation‐induced, N(G)‐nitro‐l‐arginine‐, and indomethacin‐resistant EDR was increased without a change in acetylcholine‐induced EDR in aortic rings from aged wild‐type, CerS2 null, and catalase(−/−)/GPX1(−/−) mice. CerS5 transfection or exogenous application of sphingosine or sphingosine 1‐phosphate induced similar changes in levels of the antioxidant enzymes and upregulated K(Ca)3.1. Our findings suggest that, during aging‐related oxidative stress, SOD upregulation and downregulation of catalase and GPX1, which occur upon altering the sphingolipid composition or acyl chain length, generate H(2)O(2) and thereby upregulate K(Ca)3.1 expression and function via a H(2)O(2)/Fyn‐mediated pathway. Altogether, enhanced K(Ca)3.1 activity may compensate for decreased NO signaling during vascular aging. John Wiley and Sons Inc. 2016-06-30 2016-10 /pmc/articles/PMC5013018/ /pubmed/27363720 http://dx.doi.org/10.1111/acel.12502 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
Choi, Shinkyu
Kim, Ji Aee
Li, Hai‐yan
Shin, Kyong‐Oh
Oh, Goo Taeg
Lee, Yong‐Moon
Oh, Seikwan
Pewzner‐Jung, Yael
Futerman, Anthony H.
Suh, Suk Hyo
K(Ca)3.1 upregulation preserves endothelium‐dependent vasorelaxation during aging and oxidative stress
title K(Ca)3.1 upregulation preserves endothelium‐dependent vasorelaxation during aging and oxidative stress
title_full K(Ca)3.1 upregulation preserves endothelium‐dependent vasorelaxation during aging and oxidative stress
title_fullStr K(Ca)3.1 upregulation preserves endothelium‐dependent vasorelaxation during aging and oxidative stress
title_full_unstemmed K(Ca)3.1 upregulation preserves endothelium‐dependent vasorelaxation during aging and oxidative stress
title_short K(Ca)3.1 upregulation preserves endothelium‐dependent vasorelaxation during aging and oxidative stress
title_sort k(ca)3.1 upregulation preserves endothelium‐dependent vasorelaxation during aging and oxidative stress
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5013018/
https://www.ncbi.nlm.nih.gov/pubmed/27363720
http://dx.doi.org/10.1111/acel.12502
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