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Osteoblast-derived NOTUM reduces cortical bone mass in mice and the NOTUM locus is associated with bone mineral density in humans

Osteoporosis is a common skeletal disease, affecting millions of individuals worldwide. Currently used osteoporosis treatments substantially reduce vertebral fracture risk, whereas nonvertebral fracture risk, mainly caused by reduced cortical bone mass, has only moderately been improved by the osteo...

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Autores principales: Movérare-Skrtic, Sofia, Nilsson, Karin H., Henning, Petra, Funck-Brentano, Thomas, Nethander, Maria, Rivadeneira, Fernando, Coletto Nunes, Glaucia, Koskela, Antti, Tuukkanen, Juha, Tuckermann, Jan, Perret, Christine, Souza, Pedro Paulo Chaves, Lerner, Ulf H., Ohlsson, Claes
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Federation of American Societies for Experimental Biology 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6766646/
https://www.ncbi.nlm.nih.gov/pubmed/31307226
http://dx.doi.org/10.1096/fj.201900707R
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author Movérare-Skrtic, Sofia
Nilsson, Karin H.
Henning, Petra
Funck-Brentano, Thomas
Nethander, Maria
Rivadeneira, Fernando
Coletto Nunes, Glaucia
Koskela, Antti
Tuukkanen, Juha
Tuckermann, Jan
Perret, Christine
Souza, Pedro Paulo Chaves
Lerner, Ulf H.
Ohlsson, Claes
author_facet Movérare-Skrtic, Sofia
Nilsson, Karin H.
Henning, Petra
Funck-Brentano, Thomas
Nethander, Maria
Rivadeneira, Fernando
Coletto Nunes, Glaucia
Koskela, Antti
Tuukkanen, Juha
Tuckermann, Jan
Perret, Christine
Souza, Pedro Paulo Chaves
Lerner, Ulf H.
Ohlsson, Claes
author_sort Movérare-Skrtic, Sofia
collection PubMed
description Osteoporosis is a common skeletal disease, affecting millions of individuals worldwide. Currently used osteoporosis treatments substantially reduce vertebral fracture risk, whereas nonvertebral fracture risk, mainly caused by reduced cortical bone mass, has only moderately been improved by the osteoporosis drugs used, defining an unmet medical need. Because several wingless-type MMTV integration site family members (WNTs) and modulators of WNT activity are major regulators of bone mass, we hypothesized that NOTUM, a secreted WNT lipase, might modulate bone mass via an inhibition of WNT activity. To characterize the possible role of endogenous NOTUM as a physiologic modulator of bone mass, we developed global, cell-specific, and inducible Notum-inactivated mouse models. Notum expression was high in the cortical bone in mice, and conditional Notum inactivation revealed that osteoblast lineage cells are the principal source of NOTUM in the cortical bone. Osteoblast lineage–specific Notum inactivation increased cortical bone thickness via an increased periosteal circumference. Inducible Notum inactivation in adult mice increased cortical bone thickness as a result of increased periosteal bone formation, and silencing of Notum expression in cultured osteoblasts enhanced osteoblast differentiation. Large-scale human genetic analyses identified genetic variants mapping to the NOTUM locus that are strongly associated with bone mineral density (BMD) as estimated with quantitative ultrasound in the heel. Thus, osteoblast-derived NOTUM is an essential local physiologic regulator of cortical bone mass via effects on periosteal bone formation in adult mice, and genetic variants in the NOTUM locus are associated with BMD variation in adult humans. Therapies targeting osteoblast-derived NOTUM may prevent nonvertebral fractures.—Movérare-Skrtic, S., Nilsson, K. H., Henning, P., Funck-Brentano, T., Nethander, M., Rivadeneira, F., Coletto Nunes, G., Koskela, A., Tuukkanen, J., Tuckermann, J., Perret, C., Souza, P. P. C., Lerner, U. H., Ohlsson, C. Osteoblast-derived NOTUM reduces cortical bone mass in mice and the NOTUM locus is associated with bone mineral density in humans.
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spelling pubmed-67666462019-10-07 Osteoblast-derived NOTUM reduces cortical bone mass in mice and the NOTUM locus is associated with bone mineral density in humans Movérare-Skrtic, Sofia Nilsson, Karin H. Henning, Petra Funck-Brentano, Thomas Nethander, Maria Rivadeneira, Fernando Coletto Nunes, Glaucia Koskela, Antti Tuukkanen, Juha Tuckermann, Jan Perret, Christine Souza, Pedro Paulo Chaves Lerner, Ulf H. Ohlsson, Claes FASEB J Research Osteoporosis is a common skeletal disease, affecting millions of individuals worldwide. Currently used osteoporosis treatments substantially reduce vertebral fracture risk, whereas nonvertebral fracture risk, mainly caused by reduced cortical bone mass, has only moderately been improved by the osteoporosis drugs used, defining an unmet medical need. Because several wingless-type MMTV integration site family members (WNTs) and modulators of WNT activity are major regulators of bone mass, we hypothesized that NOTUM, a secreted WNT lipase, might modulate bone mass via an inhibition of WNT activity. To characterize the possible role of endogenous NOTUM as a physiologic modulator of bone mass, we developed global, cell-specific, and inducible Notum-inactivated mouse models. Notum expression was high in the cortical bone in mice, and conditional Notum inactivation revealed that osteoblast lineage cells are the principal source of NOTUM in the cortical bone. Osteoblast lineage–specific Notum inactivation increased cortical bone thickness via an increased periosteal circumference. Inducible Notum inactivation in adult mice increased cortical bone thickness as a result of increased periosteal bone formation, and silencing of Notum expression in cultured osteoblasts enhanced osteoblast differentiation. Large-scale human genetic analyses identified genetic variants mapping to the NOTUM locus that are strongly associated with bone mineral density (BMD) as estimated with quantitative ultrasound in the heel. Thus, osteoblast-derived NOTUM is an essential local physiologic regulator of cortical bone mass via effects on periosteal bone formation in adult mice, and genetic variants in the NOTUM locus are associated with BMD variation in adult humans. Therapies targeting osteoblast-derived NOTUM may prevent nonvertebral fractures.—Movérare-Skrtic, S., Nilsson, K. H., Henning, P., Funck-Brentano, T., Nethander, M., Rivadeneira, F., Coletto Nunes, G., Koskela, A., Tuukkanen, J., Tuckermann, J., Perret, C., Souza, P. P. C., Lerner, U. H., Ohlsson, C. Osteoblast-derived NOTUM reduces cortical bone mass in mice and the NOTUM locus is associated with bone mineral density in humans. Federation of American Societies for Experimental Biology 2019-10 2019-07-15 /pmc/articles/PMC6766646/ /pubmed/31307226 http://dx.doi.org/10.1096/fj.201900707R Text en © FASEB https://creativecommons.org/licenses/by-nc-nd/2.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial-NoDerivs 2.0 International (CC BY-NC-ND 2.0) (https://creativecommons.org/licenses/by-nc-nd/2.0/) which permits noncommercial use, distribution, and reproduction in any medium, but prohibits the publication/distribution of derivative works, provided the original work is properly cited.
spellingShingle Research
Movérare-Skrtic, Sofia
Nilsson, Karin H.
Henning, Petra
Funck-Brentano, Thomas
Nethander, Maria
Rivadeneira, Fernando
Coletto Nunes, Glaucia
Koskela, Antti
Tuukkanen, Juha
Tuckermann, Jan
Perret, Christine
Souza, Pedro Paulo Chaves
Lerner, Ulf H.
Ohlsson, Claes
Osteoblast-derived NOTUM reduces cortical bone mass in mice and the NOTUM locus is associated with bone mineral density in humans
title Osteoblast-derived NOTUM reduces cortical bone mass in mice and the NOTUM locus is associated with bone mineral density in humans
title_full Osteoblast-derived NOTUM reduces cortical bone mass in mice and the NOTUM locus is associated with bone mineral density in humans
title_fullStr Osteoblast-derived NOTUM reduces cortical bone mass in mice and the NOTUM locus is associated with bone mineral density in humans
title_full_unstemmed Osteoblast-derived NOTUM reduces cortical bone mass in mice and the NOTUM locus is associated with bone mineral density in humans
title_short Osteoblast-derived NOTUM reduces cortical bone mass in mice and the NOTUM locus is associated with bone mineral density in humans
title_sort osteoblast-derived notum reduces cortical bone mass in mice and the notum locus is associated with bone mineral density in humans
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6766646/
https://www.ncbi.nlm.nih.gov/pubmed/31307226
http://dx.doi.org/10.1096/fj.201900707R
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