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Regulation of Osteoclast Growth and Fusion by mTOR/raptor and mTOR/rictor/Akt

Osteoclasts are giant bone cells formed by fusion from monocytes and uniquely capable of a complete destruction of mineralized tissues. Previously, we have demonstrated that in energy-rich environment not only osteoclast fusion index (the number of nuclei each osteoclast contains), but also cytoplas...

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Autores principales: Tiedemann, Kerstin, Le Nihouannen, Damien, Fong, Jenna E., Hussein, Osama, Barralet, Jake E., Komarova, Svetlana V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5435769/
https://www.ncbi.nlm.nih.gov/pubmed/28573133
http://dx.doi.org/10.3389/fcell.2017.00054
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author Tiedemann, Kerstin
Le Nihouannen, Damien
Fong, Jenna E.
Hussein, Osama
Barralet, Jake E.
Komarova, Svetlana V.
author_facet Tiedemann, Kerstin
Le Nihouannen, Damien
Fong, Jenna E.
Hussein, Osama
Barralet, Jake E.
Komarova, Svetlana V.
author_sort Tiedemann, Kerstin
collection PubMed
description Osteoclasts are giant bone cells formed by fusion from monocytes and uniquely capable of a complete destruction of mineralized tissues. Previously, we have demonstrated that in energy-rich environment not only osteoclast fusion index (the number of nuclei each osteoclast contains), but also cytoplasm volume per single nucleus was increased. The goal of this study was to investigate the regulation of metabolic sensor mTOR during osteoclast differentiation in energy-rich environment simulated by addition of pyruvate. We have found that in the presence of pyruvate, the proportion of mTOR associated with raptor increased, while mTOR-rictor-mediated Akt phosphorylation decreased. Inhibition of mTOR with rapamycin (10 nM) significantly interfered with all aspects of osteoclastogenesis. However, rapamycin at 1 nM, which preferentially targets mTOR-raptor complex, was only effective in control cultures, while in the presence of pyruvate osteoclast fusion index was successfully increased. Inhibition of Akt drastically reduced osteoclast fusion, however in energy-rich environment, osteoclasts of comparable size were formed through increased cytoplasm growth. These data suggest that mTOR-rictor mediated Akt signaling regulates osteoclast fusion, while mTOR-raptor regulation of protein translation contributes to fusion-independent cytoplasm growth. We demonstrate that depending on the bioenergetics microenvironment osteoclastogenesis can adjust to occur through preferential multinucleation or through cell growth, implying that attaining large cell size is part of the osteoclast differentiation program.
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spelling pubmed-54357692017-06-01 Regulation of Osteoclast Growth and Fusion by mTOR/raptor and mTOR/rictor/Akt Tiedemann, Kerstin Le Nihouannen, Damien Fong, Jenna E. Hussein, Osama Barralet, Jake E. Komarova, Svetlana V. Front Cell Dev Biol Cell and Developmental Biology Osteoclasts are giant bone cells formed by fusion from monocytes and uniquely capable of a complete destruction of mineralized tissues. Previously, we have demonstrated that in energy-rich environment not only osteoclast fusion index (the number of nuclei each osteoclast contains), but also cytoplasm volume per single nucleus was increased. The goal of this study was to investigate the regulation of metabolic sensor mTOR during osteoclast differentiation in energy-rich environment simulated by addition of pyruvate. We have found that in the presence of pyruvate, the proportion of mTOR associated with raptor increased, while mTOR-rictor-mediated Akt phosphorylation decreased. Inhibition of mTOR with rapamycin (10 nM) significantly interfered with all aspects of osteoclastogenesis. However, rapamycin at 1 nM, which preferentially targets mTOR-raptor complex, was only effective in control cultures, while in the presence of pyruvate osteoclast fusion index was successfully increased. Inhibition of Akt drastically reduced osteoclast fusion, however in energy-rich environment, osteoclasts of comparable size were formed through increased cytoplasm growth. These data suggest that mTOR-rictor mediated Akt signaling regulates osteoclast fusion, while mTOR-raptor regulation of protein translation contributes to fusion-independent cytoplasm growth. We demonstrate that depending on the bioenergetics microenvironment osteoclastogenesis can adjust to occur through preferential multinucleation or through cell growth, implying that attaining large cell size is part of the osteoclast differentiation program. Frontiers Media S.A. 2017-05-18 /pmc/articles/PMC5435769/ /pubmed/28573133 http://dx.doi.org/10.3389/fcell.2017.00054 Text en Copyright © 2017 Tiedemann, Le Nihouannen, Fong, Hussein, Barralet and Komarova. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) or licensor are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Cell and Developmental Biology
Tiedemann, Kerstin
Le Nihouannen, Damien
Fong, Jenna E.
Hussein, Osama
Barralet, Jake E.
Komarova, Svetlana V.
Regulation of Osteoclast Growth and Fusion by mTOR/raptor and mTOR/rictor/Akt
title Regulation of Osteoclast Growth and Fusion by mTOR/raptor and mTOR/rictor/Akt
title_full Regulation of Osteoclast Growth and Fusion by mTOR/raptor and mTOR/rictor/Akt
title_fullStr Regulation of Osteoclast Growth and Fusion by mTOR/raptor and mTOR/rictor/Akt
title_full_unstemmed Regulation of Osteoclast Growth and Fusion by mTOR/raptor and mTOR/rictor/Akt
title_short Regulation of Osteoclast Growth and Fusion by mTOR/raptor and mTOR/rictor/Akt
title_sort regulation of osteoclast growth and fusion by mtor/raptor and mtor/rictor/akt
topic Cell and Developmental Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5435769/
https://www.ncbi.nlm.nih.gov/pubmed/28573133
http://dx.doi.org/10.3389/fcell.2017.00054
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