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Developing bones are differentially affected by compromised skeletal muscle formation

Mechanical forces are essential for normal adult bone function and repair, but the impact of prenatal muscle contractions on bone development remains to be explored in depth in mammalian model systems. In this study, we analyze skeletogenesis in two ‘muscleless’ mouse mutant models in which the form...

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Autores principales: Nowlan, Niamh C., Bourdon, Céline, Dumas, Gérard, Tajbakhsh, Shahragim, Prendergast, Patrick J., Murphy, Paula
Formato: Texto
Lenguaje:English
Publicado: Elsevier Science 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2860222/
https://www.ncbi.nlm.nih.gov/pubmed/19948261
http://dx.doi.org/10.1016/j.bone.2009.11.026
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author Nowlan, Niamh C.
Bourdon, Céline
Dumas, Gérard
Tajbakhsh, Shahragim
Prendergast, Patrick J.
Murphy, Paula
author_facet Nowlan, Niamh C.
Bourdon, Céline
Dumas, Gérard
Tajbakhsh, Shahragim
Prendergast, Patrick J.
Murphy, Paula
author_sort Nowlan, Niamh C.
collection PubMed
description Mechanical forces are essential for normal adult bone function and repair, but the impact of prenatal muscle contractions on bone development remains to be explored in depth in mammalian model systems. In this study, we analyze skeletogenesis in two ‘muscleless’ mouse mutant models in which the formation of skeletal muscle development is disrupted; Myf5(nlacZ/nlacZ):MyoD(−/−) and Pax3(Sp/Sp) (Splotch). Ossification centers were found to be differentially affected in the muscleless limbs, with significant decreases in bone formation in the scapula, humerus, ulna and femur, but not in the tibia. In the scapula and humerus, the morphologies of ossification centers were abnormal in muscleless limbs. Histology of the humerus revealed a decreased extent of the hypertrophic zone in mutant limbs but no change in the shape of this region. The elbow joint was also found to be clearly affected with a dramatic reduction in the joint line, while no abnormalities were evident in the knee. The humeral deltoid tuberosity was significantly reduced in size in the Myf5(nlacZ/nlacZ):MyoD(−/−) mutants while a change in shape but not in size was found in the humeral tuberosities of the Pax3(Sp/Sp) mutants. We also examined skeletal development in a ‘reduced muscle’ model, the Myf5(nlacZ/+):MyoD(−/−) mutant, in which skeletal muscle forms but with reduced muscle mass. The reduced muscle phenotype appeared to have an intermediate effect on skeletal development, with reduced bone formation in the scapula and humerus compared to controls, but not in other rudiments. In summary, we have demonstrated that skeletal development is differentially affected by the lack of skeletal muscle, with certain rudiments and joints being more severely affected than others. These findings indicate that the response of skeletal progenitor cells to biophysical stimuli may depend upon their location in the embryonic limb, implying a complex interaction between mechanical forces and location-specific regulatory factors affecting bone and joint development.
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spelling pubmed-28602222010-05-06 Developing bones are differentially affected by compromised skeletal muscle formation Nowlan, Niamh C. Bourdon, Céline Dumas, Gérard Tajbakhsh, Shahragim Prendergast, Patrick J. Murphy, Paula Bone Article Mechanical forces are essential for normal adult bone function and repair, but the impact of prenatal muscle contractions on bone development remains to be explored in depth in mammalian model systems. In this study, we analyze skeletogenesis in two ‘muscleless’ mouse mutant models in which the formation of skeletal muscle development is disrupted; Myf5(nlacZ/nlacZ):MyoD(−/−) and Pax3(Sp/Sp) (Splotch). Ossification centers were found to be differentially affected in the muscleless limbs, with significant decreases in bone formation in the scapula, humerus, ulna and femur, but not in the tibia. In the scapula and humerus, the morphologies of ossification centers were abnormal in muscleless limbs. Histology of the humerus revealed a decreased extent of the hypertrophic zone in mutant limbs but no change in the shape of this region. The elbow joint was also found to be clearly affected with a dramatic reduction in the joint line, while no abnormalities were evident in the knee. The humeral deltoid tuberosity was significantly reduced in size in the Myf5(nlacZ/nlacZ):MyoD(−/−) mutants while a change in shape but not in size was found in the humeral tuberosities of the Pax3(Sp/Sp) mutants. We also examined skeletal development in a ‘reduced muscle’ model, the Myf5(nlacZ/+):MyoD(−/−) mutant, in which skeletal muscle forms but with reduced muscle mass. The reduced muscle phenotype appeared to have an intermediate effect on skeletal development, with reduced bone formation in the scapula and humerus compared to controls, but not in other rudiments. In summary, we have demonstrated that skeletal development is differentially affected by the lack of skeletal muscle, with certain rudiments and joints being more severely affected than others. These findings indicate that the response of skeletal progenitor cells to biophysical stimuli may depend upon their location in the embryonic limb, implying a complex interaction between mechanical forces and location-specific regulatory factors affecting bone and joint development. Elsevier Science 2010-05 /pmc/articles/PMC2860222/ /pubmed/19948261 http://dx.doi.org/10.1016/j.bone.2009.11.026 Text en © 2010 Elsevier Inc. https://creativecommons.org/licenses/by/3.0/ Open Access under CC BY 3.0 (https://creativecommons.org/licenses/by/3.0/) license
spellingShingle Article
Nowlan, Niamh C.
Bourdon, Céline
Dumas, Gérard
Tajbakhsh, Shahragim
Prendergast, Patrick J.
Murphy, Paula
Developing bones are differentially affected by compromised skeletal muscle formation
title Developing bones are differentially affected by compromised skeletal muscle formation
title_full Developing bones are differentially affected by compromised skeletal muscle formation
title_fullStr Developing bones are differentially affected by compromised skeletal muscle formation
title_full_unstemmed Developing bones are differentially affected by compromised skeletal muscle formation
title_short Developing bones are differentially affected by compromised skeletal muscle formation
title_sort developing bones are differentially affected by compromised skeletal muscle formation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2860222/
https://www.ncbi.nlm.nih.gov/pubmed/19948261
http://dx.doi.org/10.1016/j.bone.2009.11.026
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