Endothelial-derived oxidative stress drives myofibroblastic activation and calcification of the aortic valve.
AIMS:Oxidative stress is present in and contributes to calcification of the aortic valve, but the driving factors behind the initiation of valve oxidative stress are not well understood. We tested whether the valve endothelium acts as an initiator and propagator of oxidative stress in aortic valve d...
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doaj-7b6269c1d79c49e78f9a4c51a993c8f82020-11-24T21:50:35ZengPublic Library of Science (PLoS)PLoS ONE1932-62032015-01-01104e012325710.1371/journal.pone.0123257Endothelial-derived oxidative stress drives myofibroblastic activation and calcification of the aortic valve.Emily J FarrarGeoffrey D HuntleyJonathan ButcherAIMS:Oxidative stress is present in and contributes to calcification of the aortic valve, but the driving factors behind the initiation of valve oxidative stress are not well understood. We tested whether the valve endothelium acts as an initiator and propagator of oxidative stress in aortic valve disease. METHODS AND RESULTS:Calcified human aortic valves showed side-specific elevation of superoxide in the endothelium, co-localized with high VCAM1 expression, linking oxidative stress, inflammation, and valve degeneration. Treatment with inflammatory cytokine TNFα increased superoxide and oxidative stress and decreased eNOS and VE-cadherin acutely over 48 hours in aortic valve endothelial cells (VEC) and chronically over 21 days in ex vivo AV leaflets. Co-treatment of VEC with tetrahydrobiopterin (BH4) but not apocynin mitigated TNFα-driven VEC oxidative stress. Co-treatment of ex vivo AV leaflets with TNFα+BH4 or TNFα+peg-SOD rescued endothelial function and mitigated inflammatory responses. Both BH4 and peg-SOD rescued valve leaflets from the pro-osteogenic effects of TNFα treatment, but only peg-SOD was able to mitigate the fibrogenic effects, including increased collagen and αSMA expression. CONCLUSIONS:Aortic valve endothelial cells are a novel source of oxidative stress in aortic valve disease. TNFα-driven VEC oxidative stress causes loss of endothelial protective function, chronic inflammation, and fibrogenic and osteogenic activation, mitigated differentially by BH4 and peg-SOD. These mechanisms identify new targets for tailored antioxidant therapy focused on mitigation of oxidative stress and restoration of endothelial protection.http://europepmc.org/articles/PMC4395382?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Emily J Farrar Geoffrey D Huntley Jonathan Butcher |
spellingShingle |
Emily J Farrar Geoffrey D Huntley Jonathan Butcher Endothelial-derived oxidative stress drives myofibroblastic activation and calcification of the aortic valve. PLoS ONE |
author_facet |
Emily J Farrar Geoffrey D Huntley Jonathan Butcher |
author_sort |
Emily J Farrar |
title |
Endothelial-derived oxidative stress drives myofibroblastic activation and calcification of the aortic valve. |
title_short |
Endothelial-derived oxidative stress drives myofibroblastic activation and calcification of the aortic valve. |
title_full |
Endothelial-derived oxidative stress drives myofibroblastic activation and calcification of the aortic valve. |
title_fullStr |
Endothelial-derived oxidative stress drives myofibroblastic activation and calcification of the aortic valve. |
title_full_unstemmed |
Endothelial-derived oxidative stress drives myofibroblastic activation and calcification of the aortic valve. |
title_sort |
endothelial-derived oxidative stress drives myofibroblastic activation and calcification of the aortic valve. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2015-01-01 |
description |
AIMS:Oxidative stress is present in and contributes to calcification of the aortic valve, but the driving factors behind the initiation of valve oxidative stress are not well understood. We tested whether the valve endothelium acts as an initiator and propagator of oxidative stress in aortic valve disease. METHODS AND RESULTS:Calcified human aortic valves showed side-specific elevation of superoxide in the endothelium, co-localized with high VCAM1 expression, linking oxidative stress, inflammation, and valve degeneration. Treatment with inflammatory cytokine TNFα increased superoxide and oxidative stress and decreased eNOS and VE-cadherin acutely over 48 hours in aortic valve endothelial cells (VEC) and chronically over 21 days in ex vivo AV leaflets. Co-treatment of VEC with tetrahydrobiopterin (BH4) but not apocynin mitigated TNFα-driven VEC oxidative stress. Co-treatment of ex vivo AV leaflets with TNFα+BH4 or TNFα+peg-SOD rescued endothelial function and mitigated inflammatory responses. Both BH4 and peg-SOD rescued valve leaflets from the pro-osteogenic effects of TNFα treatment, but only peg-SOD was able to mitigate the fibrogenic effects, including increased collagen and αSMA expression. CONCLUSIONS:Aortic valve endothelial cells are a novel source of oxidative stress in aortic valve disease. TNFα-driven VEC oxidative stress causes loss of endothelial protective function, chronic inflammation, and fibrogenic and osteogenic activation, mitigated differentially by BH4 and peg-SOD. These mechanisms identify new targets for tailored antioxidant therapy focused on mitigation of oxidative stress and restoration of endothelial protection. |
url |
http://europepmc.org/articles/PMC4395382?pdf=render |
work_keys_str_mv |
AT emilyjfarrar endothelialderivedoxidativestressdrivesmyofibroblasticactivationandcalcificationoftheaorticvalve AT geoffreydhuntley endothelialderivedoxidativestressdrivesmyofibroblasticactivationandcalcificationoftheaorticvalve AT jonathanbutcher endothelialderivedoxidativestressdrivesmyofibroblasticactivationandcalcificationoftheaorticvalve |
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