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Activation of autophagy by FOXO3 regulates redox homeostasis during osteogenic differentiation

Bone remodeling is a continuous physiological process that requires constant generation of new osteoblasts from mesenchymal stem cells (MSCs). Differentiation of MSCs to osteoblast requires a metabolic switch from glycolysis to increased mitochondrial respiration to ensure the sufficient energy supp...

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Autores principales: Gómez-Puerto, M. C., Verhagen, L. P., Braat, A. K., Lam, E. W.-F., Coffer, P. J., Lorenowicz, M. J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Taylor & Francis 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5079670/
https://www.ncbi.nlm.nih.gov/pubmed/27532863
http://dx.doi.org/10.1080/15548627.2016.1203484
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author Gómez-Puerto, M. C.
Verhagen, L. P.
Braat, A. K.
Lam, E. W.-F.
Coffer, P. J.
Lorenowicz, M. J.
author_facet Gómez-Puerto, M. C.
Verhagen, L. P.
Braat, A. K.
Lam, E. W.-F.
Coffer, P. J.
Lorenowicz, M. J.
author_sort Gómez-Puerto, M. C.
collection PubMed
description Bone remodeling is a continuous physiological process that requires constant generation of new osteoblasts from mesenchymal stem cells (MSCs). Differentiation of MSCs to osteoblast requires a metabolic switch from glycolysis to increased mitochondrial respiration to ensure the sufficient energy supply to complete this process. As a consequence of this increased mitochondrial metabolism, the levels of endogenous reactive oxygen species (ROS) rise. In the current study we analyzed the role of forkhead box O3 (FOXO3) in the control of ROS levels in human MSCs (hMSCs) during osteogenic differentiation. Treatment of hMSCs with H(2)O(2) induced FOXO3 phosphorylation at Ser294 and nuclear translocation. This ROS-mediated activation of FOXO3 was dependent on mitogen-activated protein kinase 8 (MAPK8/JNK) activity. Upon FOXO3 downregulation, osteoblastic differentiation was impaired and hMSCs lost their ability to control elevated ROS levels. Our results also demonstrate that in response to elevated ROS levels, FOXO3 induces autophagy in hMSCs. In line with this, impairment of autophagy by autophagy-related 7 (ATG7) knockdown resulted in a reduced capacity of hMSCs to regulate elevated ROS levels, together with a reduced osteoblast differentiation. Taken together our findings are consistent with a model where in hMSCs, FOXO3 is required to induce autophagy and thereby reduce elevated ROS levels resulting from the increased mitochondrial respiration during osteoblast differentiation. These new molecular insights provide an important contribution to our better understanding of bone physiology.
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spelling pubmed-50796702017-02-24 Activation of autophagy by FOXO3 regulates redox homeostasis during osteogenic differentiation Gómez-Puerto, M. C. Verhagen, L. P. Braat, A. K. Lam, E. W.-F. Coffer, P. J. Lorenowicz, M. J. Autophagy Basic Research Papers Bone remodeling is a continuous physiological process that requires constant generation of new osteoblasts from mesenchymal stem cells (MSCs). Differentiation of MSCs to osteoblast requires a metabolic switch from glycolysis to increased mitochondrial respiration to ensure the sufficient energy supply to complete this process. As a consequence of this increased mitochondrial metabolism, the levels of endogenous reactive oxygen species (ROS) rise. In the current study we analyzed the role of forkhead box O3 (FOXO3) in the control of ROS levels in human MSCs (hMSCs) during osteogenic differentiation. Treatment of hMSCs with H(2)O(2) induced FOXO3 phosphorylation at Ser294 and nuclear translocation. This ROS-mediated activation of FOXO3 was dependent on mitogen-activated protein kinase 8 (MAPK8/JNK) activity. Upon FOXO3 downregulation, osteoblastic differentiation was impaired and hMSCs lost their ability to control elevated ROS levels. Our results also demonstrate that in response to elevated ROS levels, FOXO3 induces autophagy in hMSCs. In line with this, impairment of autophagy by autophagy-related 7 (ATG7) knockdown resulted in a reduced capacity of hMSCs to regulate elevated ROS levels, together with a reduced osteoblast differentiation. Taken together our findings are consistent with a model where in hMSCs, FOXO3 is required to induce autophagy and thereby reduce elevated ROS levels resulting from the increased mitochondrial respiration during osteoblast differentiation. These new molecular insights provide an important contribution to our better understanding of bone physiology. Taylor & Francis 2016-08-17 /pmc/articles/PMC5079670/ /pubmed/27532863 http://dx.doi.org/10.1080/15548627.2016.1203484 Text en © 2016 The Author(s). Published with license by Taylor & Francis http://creativecommons.org/licenses/by/3.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/3.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. The moral rights of the named author(s) have been asserted.
spellingShingle Basic Research Papers
Gómez-Puerto, M. C.
Verhagen, L. P.
Braat, A. K.
Lam, E. W.-F.
Coffer, P. J.
Lorenowicz, M. J.
Activation of autophagy by FOXO3 regulates redox homeostasis during osteogenic differentiation
title Activation of autophagy by FOXO3 regulates redox homeostasis during osteogenic differentiation
title_full Activation of autophagy by FOXO3 regulates redox homeostasis during osteogenic differentiation
title_fullStr Activation of autophagy by FOXO3 regulates redox homeostasis during osteogenic differentiation
title_full_unstemmed Activation of autophagy by FOXO3 regulates redox homeostasis during osteogenic differentiation
title_short Activation of autophagy by FOXO3 regulates redox homeostasis during osteogenic differentiation
title_sort activation of autophagy by foxo3 regulates redox homeostasis during osteogenic differentiation
topic Basic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5079670/
https://www.ncbi.nlm.nih.gov/pubmed/27532863
http://dx.doi.org/10.1080/15548627.2016.1203484
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