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Hypoxia promotes osteogenesis by facilitating acetyl‐CoA‐mediated mitochondrial–nuclear communication

Bone‐derived mesenchymal stem cells (MSCs) reside in a hypoxic niche that maintains their differentiation potential. While hypoxia (low oxygen concentration) was reported to critically support stem cell function and osteogenesis, the molecular events triggering changes in stem cell fate decisions in...

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Autores principales: Pouikli, Andromachi, Maleszewska, Monika, Parekh, Swati, Yang, Ming, Nikopoulou, Chrysa, Bonfiglio, Juan Jose, Mylonas, Constantine, Sandoval, Tonantzi, Schumacher, Anna‐Lena, Hinze, Yvonne, Matic, Ivan, Frezza, Christian, Tessarz, Peter
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9713713/
https://www.ncbi.nlm.nih.gov/pubmed/36278281
http://dx.doi.org/10.15252/embj.2022111239
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author Pouikli, Andromachi
Maleszewska, Monika
Parekh, Swati
Yang, Ming
Nikopoulou, Chrysa
Bonfiglio, Juan Jose
Mylonas, Constantine
Sandoval, Tonantzi
Schumacher, Anna‐Lena
Hinze, Yvonne
Matic, Ivan
Frezza, Christian
Tessarz, Peter
author_facet Pouikli, Andromachi
Maleszewska, Monika
Parekh, Swati
Yang, Ming
Nikopoulou, Chrysa
Bonfiglio, Juan Jose
Mylonas, Constantine
Sandoval, Tonantzi
Schumacher, Anna‐Lena
Hinze, Yvonne
Matic, Ivan
Frezza, Christian
Tessarz, Peter
author_sort Pouikli, Andromachi
collection PubMed
description Bone‐derived mesenchymal stem cells (MSCs) reside in a hypoxic niche that maintains their differentiation potential. While hypoxia (low oxygen concentration) was reported to critically support stem cell function and osteogenesis, the molecular events triggering changes in stem cell fate decisions in response to normoxia (high oxygen concentration) remain elusive. Here, we study the impact of normoxia on mitochondrial–nuclear communication during stem cell differentiation. We show that normoxia‐cultured murine MSCs undergo profound transcriptional alterations which cause irreversible osteogenesis defects. Mechanistically, high oxygen promotes chromatin compaction and histone hypo‐acetylation, particularly on promoters and enhancers of osteogenic genes. Although normoxia induces metabolic rewiring resulting in elevated acetyl‐CoA levels, histone hypo‐acetylation occurs due to the trapping of acetyl‐CoA inside mitochondria owing to decreased citrate carrier (CiC) activity. Restoring the cytosolic acetyl‐CoA pool remodels the chromatin landscape and rescues the osteogenic defects. Collectively, our results demonstrate that the metabolism–chromatin–osteogenesis axis is perturbed upon exposure to high oxygen levels and identifies CiC as a novel, oxygen‐sensitive regulator of the MSC function.
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spelling pubmed-97137132022-12-08 Hypoxia promotes osteogenesis by facilitating acetyl‐CoA‐mediated mitochondrial–nuclear communication Pouikli, Andromachi Maleszewska, Monika Parekh, Swati Yang, Ming Nikopoulou, Chrysa Bonfiglio, Juan Jose Mylonas, Constantine Sandoval, Tonantzi Schumacher, Anna‐Lena Hinze, Yvonne Matic, Ivan Frezza, Christian Tessarz, Peter EMBO J Articles Bone‐derived mesenchymal stem cells (MSCs) reside in a hypoxic niche that maintains their differentiation potential. While hypoxia (low oxygen concentration) was reported to critically support stem cell function and osteogenesis, the molecular events triggering changes in stem cell fate decisions in response to normoxia (high oxygen concentration) remain elusive. Here, we study the impact of normoxia on mitochondrial–nuclear communication during stem cell differentiation. We show that normoxia‐cultured murine MSCs undergo profound transcriptional alterations which cause irreversible osteogenesis defects. Mechanistically, high oxygen promotes chromatin compaction and histone hypo‐acetylation, particularly on promoters and enhancers of osteogenic genes. Although normoxia induces metabolic rewiring resulting in elevated acetyl‐CoA levels, histone hypo‐acetylation occurs due to the trapping of acetyl‐CoA inside mitochondria owing to decreased citrate carrier (CiC) activity. Restoring the cytosolic acetyl‐CoA pool remodels the chromatin landscape and rescues the osteogenic defects. Collectively, our results demonstrate that the metabolism–chromatin–osteogenesis axis is perturbed upon exposure to high oxygen levels and identifies CiC as a novel, oxygen‐sensitive regulator of the MSC function. John Wiley and Sons Inc. 2022-10-24 /pmc/articles/PMC9713713/ /pubmed/36278281 http://dx.doi.org/10.15252/embj.2022111239 Text en © 2022 The Authors. Published under the terms of the CC BY 4.0 license. https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Articles
Pouikli, Andromachi
Maleszewska, Monika
Parekh, Swati
Yang, Ming
Nikopoulou, Chrysa
Bonfiglio, Juan Jose
Mylonas, Constantine
Sandoval, Tonantzi
Schumacher, Anna‐Lena
Hinze, Yvonne
Matic, Ivan
Frezza, Christian
Tessarz, Peter
Hypoxia promotes osteogenesis by facilitating acetyl‐CoA‐mediated mitochondrial–nuclear communication
title Hypoxia promotes osteogenesis by facilitating acetyl‐CoA‐mediated mitochondrial–nuclear communication
title_full Hypoxia promotes osteogenesis by facilitating acetyl‐CoA‐mediated mitochondrial–nuclear communication
title_fullStr Hypoxia promotes osteogenesis by facilitating acetyl‐CoA‐mediated mitochondrial–nuclear communication
title_full_unstemmed Hypoxia promotes osteogenesis by facilitating acetyl‐CoA‐mediated mitochondrial–nuclear communication
title_short Hypoxia promotes osteogenesis by facilitating acetyl‐CoA‐mediated mitochondrial–nuclear communication
title_sort hypoxia promotes osteogenesis by facilitating acetyl‐coa‐mediated mitochondrial–nuclear communication
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9713713/
https://www.ncbi.nlm.nih.gov/pubmed/36278281
http://dx.doi.org/10.15252/embj.2022111239
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