Cargando…

Lack of Adiponectin Drives Hyperosteoclastogenesis in Lipoatrophic Mice

Long bones from mammals host blood cell formation and contain multiple cell types, including adipocytes. Physiological functions of bone marrow adipocytes are poorly documented. Herein, we used adipocyte-deficient PPARγ-whole body null mice to investigate the consequence of total adipocyte deficienc...

Descripción completa

Detalles Bibliográficos
Autores principales: Madel, Maria-Bernadette, Fu, He, Pierroz, Dominique D., Schiffrin, Mariano, Winkler, Carine, Wilson, Anne, Pochon, Cécile, Toffoli, Barbara, Taïeb, Mahdia, Jouzeau, Jean-Yves, Gilardi, Federica, Ferrari, Serge, Bonnet, Nicolas, Blin-Wakkach, Claudine, Desvergne, Béatrice, Moulin, David
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8047205/
https://www.ncbi.nlm.nih.gov/pubmed/33869176
http://dx.doi.org/10.3389/fcell.2021.627153
_version_ 1783679000212668416
author Madel, Maria-Bernadette
Fu, He
Pierroz, Dominique D.
Schiffrin, Mariano
Winkler, Carine
Wilson, Anne
Pochon, Cécile
Toffoli, Barbara
Taïeb, Mahdia
Jouzeau, Jean-Yves
Gilardi, Federica
Ferrari, Serge
Bonnet, Nicolas
Blin-Wakkach, Claudine
Desvergne, Béatrice
Moulin, David
author_facet Madel, Maria-Bernadette
Fu, He
Pierroz, Dominique D.
Schiffrin, Mariano
Winkler, Carine
Wilson, Anne
Pochon, Cécile
Toffoli, Barbara
Taïeb, Mahdia
Jouzeau, Jean-Yves
Gilardi, Federica
Ferrari, Serge
Bonnet, Nicolas
Blin-Wakkach, Claudine
Desvergne, Béatrice
Moulin, David
author_sort Madel, Maria-Bernadette
collection PubMed
description Long bones from mammals host blood cell formation and contain multiple cell types, including adipocytes. Physiological functions of bone marrow adipocytes are poorly documented. Herein, we used adipocyte-deficient PPARγ-whole body null mice to investigate the consequence of total adipocyte deficiency on bone homeostasis in mice. We first highlighted the dual bone phenotype of PPARγ null mice: one the one hand, the increased bone formation and subsequent trabecularization extending in the long bone diaphysis, due to the well-known impact of PPARγ deficiency on osteoblasts formation and activity; on the other hand, an increased osteoclastogenesis in the cortical bone. We then further explored the cause of this unexpected increased osteoclastogenesis using two independent models of lipoatrophy, which recapitulated this phenotype. This demonstrates that hyperosteoclastogenesis is not intrinsically linked to PPARγ deficiency, but is a consequence of the total lipodystrophy. We further showed that adiponectin, a cytokine produced by adipocytes and mesenchymal stromal cells is a potent inhibitor of osteoclastogenesis in vitro and in vivo. Moreover, pharmacological activation of adiponectin receptors by the synthetic agonist AdipoRon inhibited mature osteoclast activity both in mouse and human cells by blocking podosome formation through AMPK activation. Finally, we demonstrated that AdipoRon treatment blocks bone erosion in vivo in a murine model of inflammatory bone loss, providing potential new approaches to treat osteoporosis.
format Online
Article
Text
id pubmed-8047205
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-80472052021-04-16 Lack of Adiponectin Drives Hyperosteoclastogenesis in Lipoatrophic Mice Madel, Maria-Bernadette Fu, He Pierroz, Dominique D. Schiffrin, Mariano Winkler, Carine Wilson, Anne Pochon, Cécile Toffoli, Barbara Taïeb, Mahdia Jouzeau, Jean-Yves Gilardi, Federica Ferrari, Serge Bonnet, Nicolas Blin-Wakkach, Claudine Desvergne, Béatrice Moulin, David Front Cell Dev Biol Cell and Developmental Biology Long bones from mammals host blood cell formation and contain multiple cell types, including adipocytes. Physiological functions of bone marrow adipocytes are poorly documented. Herein, we used adipocyte-deficient PPARγ-whole body null mice to investigate the consequence of total adipocyte deficiency on bone homeostasis in mice. We first highlighted the dual bone phenotype of PPARγ null mice: one the one hand, the increased bone formation and subsequent trabecularization extending in the long bone diaphysis, due to the well-known impact of PPARγ deficiency on osteoblasts formation and activity; on the other hand, an increased osteoclastogenesis in the cortical bone. We then further explored the cause of this unexpected increased osteoclastogenesis using two independent models of lipoatrophy, which recapitulated this phenotype. This demonstrates that hyperosteoclastogenesis is not intrinsically linked to PPARγ deficiency, but is a consequence of the total lipodystrophy. We further showed that adiponectin, a cytokine produced by adipocytes and mesenchymal stromal cells is a potent inhibitor of osteoclastogenesis in vitro and in vivo. Moreover, pharmacological activation of adiponectin receptors by the synthetic agonist AdipoRon inhibited mature osteoclast activity both in mouse and human cells by blocking podosome formation through AMPK activation. Finally, we demonstrated that AdipoRon treatment blocks bone erosion in vivo in a murine model of inflammatory bone loss, providing potential new approaches to treat osteoporosis. Frontiers Media S.A. 2021-04-01 /pmc/articles/PMC8047205/ /pubmed/33869176 http://dx.doi.org/10.3389/fcell.2021.627153 Text en Copyright © 2021 Madel, Fu, Pierroz, Schiffrin, Winkler, Wilson, Pochon, Toffoli, Taïeb, Jouzeau, Gilardi, Ferrari, Bonnet, Blin-Wakkach, Desvergne and Moulin. https://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) and the copyright owner(s) 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
Madel, Maria-Bernadette
Fu, He
Pierroz, Dominique D.
Schiffrin, Mariano
Winkler, Carine
Wilson, Anne
Pochon, Cécile
Toffoli, Barbara
Taïeb, Mahdia
Jouzeau, Jean-Yves
Gilardi, Federica
Ferrari, Serge
Bonnet, Nicolas
Blin-Wakkach, Claudine
Desvergne, Béatrice
Moulin, David
Lack of Adiponectin Drives Hyperosteoclastogenesis in Lipoatrophic Mice
title Lack of Adiponectin Drives Hyperosteoclastogenesis in Lipoatrophic Mice
title_full Lack of Adiponectin Drives Hyperosteoclastogenesis in Lipoatrophic Mice
title_fullStr Lack of Adiponectin Drives Hyperosteoclastogenesis in Lipoatrophic Mice
title_full_unstemmed Lack of Adiponectin Drives Hyperosteoclastogenesis in Lipoatrophic Mice
title_short Lack of Adiponectin Drives Hyperosteoclastogenesis in Lipoatrophic Mice
title_sort lack of adiponectin drives hyperosteoclastogenesis in lipoatrophic mice
topic Cell and Developmental Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8047205/
https://www.ncbi.nlm.nih.gov/pubmed/33869176
http://dx.doi.org/10.3389/fcell.2021.627153
work_keys_str_mv AT madelmariabernadette lackofadiponectindriveshyperosteoclastogenesisinlipoatrophicmice
AT fuhe lackofadiponectindriveshyperosteoclastogenesisinlipoatrophicmice
AT pierrozdominiqued lackofadiponectindriveshyperosteoclastogenesisinlipoatrophicmice
AT schiffrinmariano lackofadiponectindriveshyperosteoclastogenesisinlipoatrophicmice
AT winklercarine lackofadiponectindriveshyperosteoclastogenesisinlipoatrophicmice
AT wilsonanne lackofadiponectindriveshyperosteoclastogenesisinlipoatrophicmice
AT pochoncecile lackofadiponectindriveshyperosteoclastogenesisinlipoatrophicmice
AT toffolibarbara lackofadiponectindriveshyperosteoclastogenesisinlipoatrophicmice
AT taiebmahdia lackofadiponectindriveshyperosteoclastogenesisinlipoatrophicmice
AT jouzeaujeanyves lackofadiponectindriveshyperosteoclastogenesisinlipoatrophicmice
AT gilardifederica lackofadiponectindriveshyperosteoclastogenesisinlipoatrophicmice
AT ferrariserge lackofadiponectindriveshyperosteoclastogenesisinlipoatrophicmice
AT bonnetnicolas lackofadiponectindriveshyperosteoclastogenesisinlipoatrophicmice
AT blinwakkachclaudine lackofadiponectindriveshyperosteoclastogenesisinlipoatrophicmice
AT desvergnebeatrice lackofadiponectindriveshyperosteoclastogenesisinlipoatrophicmice
AT moulindavid lackofadiponectindriveshyperosteoclastogenesisinlipoatrophicmice