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Mitochondrial reactive oxygen species modify extracellular vesicles secretion rate

Extracellular vesicle (EV) secretion rate is stimulated by hypoxia that causes increased reactive oxygen species (ROS) production by the mitochondrial electron transport chain (ETC) and hypoxia‐induced factor (HIF)‐1 signaling; however, their contribution to the increased EV secretion rate is unknow...

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Autores principales: Nørgård, Mikkel Ø., Lund, Philip M., Kalisi, Nazmie, Andresen, Thomas L., Larsen, Jannik B., Vogel, Stefan, Svenningsen, Per
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10478507/
https://www.ncbi.nlm.nih.gov/pubmed/37674540
http://dx.doi.org/10.1096/fba.2023-00053
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author Nørgård, Mikkel Ø.
Lund, Philip M.
Kalisi, Nazmie
Andresen, Thomas L.
Larsen, Jannik B.
Vogel, Stefan
Svenningsen, Per
author_facet Nørgård, Mikkel Ø.
Lund, Philip M.
Kalisi, Nazmie
Andresen, Thomas L.
Larsen, Jannik B.
Vogel, Stefan
Svenningsen, Per
author_sort Nørgård, Mikkel Ø.
collection PubMed
description Extracellular vesicle (EV) secretion rate is stimulated by hypoxia that causes increased reactive oxygen species (ROS) production by the mitochondrial electron transport chain (ETC) and hypoxia‐induced factor (HIF)‐1 signaling; however, their contribution to the increased EV secretion rate is unknown. We found that the EV marker secretion rate in our EV reporter cell line CD9truc‐EGFP was unaffected by the HIF‐1α stabilizer roxadustat; yet, ETC stimulation by dichloroacetic acid (DCA) significantly increased EV secretion. The DCA‐induced EV secretion was blocked by the antioxidant TEMPO and rotenone, an inhibitor of the ETC's Complex I. Under hypoxic conditions, the limited oxygen reduction impedes the ETC's Complex III. To mimic this, we inhibited Complex III with antimycin A, which increased ROS‐dependent EV secretion. The electron transport between Complex I and III is accomplished by coenzyme Q created by the mevalonate pathway and tyrosine metabolites. Blocking an early step in the mevalonate pathway using pitavastatin augmented the DCA‐induced EV secretion, and 4‐nitrobenzoate—an inhibitor of the condensation of the mevalonate pathway with tyrosine metabolites—increased ROS‐dependent EV secretion. Our findings indicate that hypoxia‐mimetics targeting the ETC modify EV secretion and that ROS produced by the ETC is a potent stimulus for EV secretion.
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spelling pubmed-104785072023-09-06 Mitochondrial reactive oxygen species modify extracellular vesicles secretion rate Nørgård, Mikkel Ø. Lund, Philip M. Kalisi, Nazmie Andresen, Thomas L. Larsen, Jannik B. Vogel, Stefan Svenningsen, Per FASEB Bioadv Research Articles Extracellular vesicle (EV) secretion rate is stimulated by hypoxia that causes increased reactive oxygen species (ROS) production by the mitochondrial electron transport chain (ETC) and hypoxia‐induced factor (HIF)‐1 signaling; however, their contribution to the increased EV secretion rate is unknown. We found that the EV marker secretion rate in our EV reporter cell line CD9truc‐EGFP was unaffected by the HIF‐1α stabilizer roxadustat; yet, ETC stimulation by dichloroacetic acid (DCA) significantly increased EV secretion. The DCA‐induced EV secretion was blocked by the antioxidant TEMPO and rotenone, an inhibitor of the ETC's Complex I. Under hypoxic conditions, the limited oxygen reduction impedes the ETC's Complex III. To mimic this, we inhibited Complex III with antimycin A, which increased ROS‐dependent EV secretion. The electron transport between Complex I and III is accomplished by coenzyme Q created by the mevalonate pathway and tyrosine metabolites. Blocking an early step in the mevalonate pathway using pitavastatin augmented the DCA‐induced EV secretion, and 4‐nitrobenzoate—an inhibitor of the condensation of the mevalonate pathway with tyrosine metabolites—increased ROS‐dependent EV secretion. Our findings indicate that hypoxia‐mimetics targeting the ETC modify EV secretion and that ROS produced by the ETC is a potent stimulus for EV secretion. John Wiley and Sons Inc. 2023-06-27 /pmc/articles/PMC10478507/ /pubmed/37674540 http://dx.doi.org/10.1096/fba.2023-00053 Text en ©2023 The Authors FASEB BioAdvances published by The Federation of American Societies for Experimental Biology. https://creativecommons.org/licenses/by-nc/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ (https://creativecommons.org/licenses/by-nc/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Research Articles
Nørgård, Mikkel Ø.
Lund, Philip M.
Kalisi, Nazmie
Andresen, Thomas L.
Larsen, Jannik B.
Vogel, Stefan
Svenningsen, Per
Mitochondrial reactive oxygen species modify extracellular vesicles secretion rate
title Mitochondrial reactive oxygen species modify extracellular vesicles secretion rate
title_full Mitochondrial reactive oxygen species modify extracellular vesicles secretion rate
title_fullStr Mitochondrial reactive oxygen species modify extracellular vesicles secretion rate
title_full_unstemmed Mitochondrial reactive oxygen species modify extracellular vesicles secretion rate
title_short Mitochondrial reactive oxygen species modify extracellular vesicles secretion rate
title_sort mitochondrial reactive oxygen species modify extracellular vesicles secretion rate
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10478507/
https://www.ncbi.nlm.nih.gov/pubmed/37674540
http://dx.doi.org/10.1096/fba.2023-00053
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