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Keap1 controls protein S-nitrosation and apoptosis-senescence switch in endothelial cells

Premature senescence, a death escaping pathway for cells experiencing stress, is conducive to aging and cardiovascular diseases. The molecular switch between senescent and apoptotic fate remains, however, poorly recognized. Nrf2 is an important transcription factor orchestrating adaptive response to...

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Autores principales: Kopacz, Aleksandra, Klóska, Damian, Proniewski, Bartosz, Cysewski, Dominik, Personnic, Nicolas, Piechota-Polańczyk, Aleksandra, Kaczara, Patrycja, Zakrzewska, Agnieszka, Forman, Henry Jay, Dulak, Józef, Józkowicz, Alicja, Grochot-Przęczek, Anna
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6731384/
https://www.ncbi.nlm.nih.gov/pubmed/31491600
http://dx.doi.org/10.1016/j.redox.2019.101304
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author Kopacz, Aleksandra
Klóska, Damian
Proniewski, Bartosz
Cysewski, Dominik
Personnic, Nicolas
Piechota-Polańczyk, Aleksandra
Kaczara, Patrycja
Zakrzewska, Agnieszka
Forman, Henry Jay
Dulak, Józef
Józkowicz, Alicja
Grochot-Przęczek, Anna
author_facet Kopacz, Aleksandra
Klóska, Damian
Proniewski, Bartosz
Cysewski, Dominik
Personnic, Nicolas
Piechota-Polańczyk, Aleksandra
Kaczara, Patrycja
Zakrzewska, Agnieszka
Forman, Henry Jay
Dulak, Józef
Józkowicz, Alicja
Grochot-Przęczek, Anna
author_sort Kopacz, Aleksandra
collection PubMed
description Premature senescence, a death escaping pathway for cells experiencing stress, is conducive to aging and cardiovascular diseases. The molecular switch between senescent and apoptotic fate remains, however, poorly recognized. Nrf2 is an important transcription factor orchestrating adaptive response to cellular stress. Here, we show that both human primary endothelial cells (ECs) and murine aortas lacking Nrf2 signaling are senescent but unexpectedly do not encounter damaging oxidative stress. Instead, they exhibit markedly increased S-nitrosation of proteins. A functional role of S-nitrosation is protection of ECs from death by inhibition of NOX4-mediated oxidative damage and redirection of ECs to premature senescence. S-nitrosation and senescence are mediated by Keap1, a direct binding partner of Nrf2, which colocalizes and precipitates with nitric oxide synthase (NOS) and transnitrosating protein GAPDH in ECs devoid of Nrf2. We conclude that the overabundance of this “unrestrained” Keap1 determines the fate of ECs by regulation of S-nitrosation and propose that Keap1/GAPDH/NOS complex may serve as an enzymatic machinery for S-nitrosation in mammalian cells.
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spelling pubmed-67313842019-09-12 Keap1 controls protein S-nitrosation and apoptosis-senescence switch in endothelial cells Kopacz, Aleksandra Klóska, Damian Proniewski, Bartosz Cysewski, Dominik Personnic, Nicolas Piechota-Polańczyk, Aleksandra Kaczara, Patrycja Zakrzewska, Agnieszka Forman, Henry Jay Dulak, Józef Józkowicz, Alicja Grochot-Przęczek, Anna Redox Biol Research Paper Premature senescence, a death escaping pathway for cells experiencing stress, is conducive to aging and cardiovascular diseases. The molecular switch between senescent and apoptotic fate remains, however, poorly recognized. Nrf2 is an important transcription factor orchestrating adaptive response to cellular stress. Here, we show that both human primary endothelial cells (ECs) and murine aortas lacking Nrf2 signaling are senescent but unexpectedly do not encounter damaging oxidative stress. Instead, they exhibit markedly increased S-nitrosation of proteins. A functional role of S-nitrosation is protection of ECs from death by inhibition of NOX4-mediated oxidative damage and redirection of ECs to premature senescence. S-nitrosation and senescence are mediated by Keap1, a direct binding partner of Nrf2, which colocalizes and precipitates with nitric oxide synthase (NOS) and transnitrosating protein GAPDH in ECs devoid of Nrf2. We conclude that the overabundance of this “unrestrained” Keap1 determines the fate of ECs by regulation of S-nitrosation and propose that Keap1/GAPDH/NOS complex may serve as an enzymatic machinery for S-nitrosation in mammalian cells. Elsevier 2019-08-22 /pmc/articles/PMC6731384/ /pubmed/31491600 http://dx.doi.org/10.1016/j.redox.2019.101304 Text en © 2019 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Paper
Kopacz, Aleksandra
Klóska, Damian
Proniewski, Bartosz
Cysewski, Dominik
Personnic, Nicolas
Piechota-Polańczyk, Aleksandra
Kaczara, Patrycja
Zakrzewska, Agnieszka
Forman, Henry Jay
Dulak, Józef
Józkowicz, Alicja
Grochot-Przęczek, Anna
Keap1 controls protein S-nitrosation and apoptosis-senescence switch in endothelial cells
title Keap1 controls protein S-nitrosation and apoptosis-senescence switch in endothelial cells
title_full Keap1 controls protein S-nitrosation and apoptosis-senescence switch in endothelial cells
title_fullStr Keap1 controls protein S-nitrosation and apoptosis-senescence switch in endothelial cells
title_full_unstemmed Keap1 controls protein S-nitrosation and apoptosis-senescence switch in endothelial cells
title_short Keap1 controls protein S-nitrosation and apoptosis-senescence switch in endothelial cells
title_sort keap1 controls protein s-nitrosation and apoptosis-senescence switch in endothelial cells
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6731384/
https://www.ncbi.nlm.nih.gov/pubmed/31491600
http://dx.doi.org/10.1016/j.redox.2019.101304
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