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Updated: Jun 9, 2025

Stimulation of Notch Signaling in Mouse Osteoclast Precursors
Published on: February 28, 2017
Myoblast-Derived Galectin 3 Impairs the Early Phases of Osteogenesis Affecting Notch and Akt Activity
Emanuela Amore1, Vittoria Cenni2,3, Manuela Piazzi2,3
1Laboratorio Ramses, IRCCS Istituto Ortopedico Rizzoli, Via di Barbiano 1/10, 40136 Bologna, Italy.
Abstract:
Galectin-3 (Gal-3) is a pleiotropic lectin produced by most cell types, which regulates multiple cellular processes in various tissues. In bone, depending on its cellular localization, Gal-3 has a dual and opposite role. If, on the one hand, intracellular Gal-3 promotes bone formation, on the other, its circulating form affects bone remodeling, antagonizing osteoblast differentiation and increasing osteoclast activity. From an analysis of the secretome of cultured differentiating myoblasts, we interestingly found the presence of Gal-3. After that, we confirmed that Gal-3 was expressed and released in the extracellular environment from myoblast cells during their differentiation into myotubes, as well as after mechanical strain. An in vivo analysis revealed that Gal-3 was triggered by trained exercise and was specifically produced by fast muscle fibers. Speculating a role for this peptide in the muscle-to-bone cross talk, a direct co-culture in vitro system, simultaneously combining media that were obtained from differentiated myoblasts and osteoblast cells, confirmed that Gal-3 is a mediator of osteoblast differentiation. Molecular and proteomic analyses revealed that the secreted Gal-3 modulated the biochemical processes occurring in the early phases of bone formation, in particular impairing the activity of the STAT3 and PDK1/Akt signaling pathways and, at the same time, triggering that one of Notch. Circulating Gal-3 also affected the expression of the most common factors involved in osteogenetic processes, including BMP-2, -6, and -7. Intriguingly, Gal-3 was able to interfere with the ability of differentiating osteoblasts to interact with the components of the extracellular bone matrix, a crucial condition required for a proper osteoblast differentiation. All in all, our evidence lays the foundation for further studies to present this lectin as a novel myokine involved in muscle-to-bone crosstalk.
Insights
Galectin-3 (Gal-3), a protein released by muscle cells during exercise, influences bone formation by modulating signaling pathways and extracellular matrix interactions in osteoblasts.
Area of Science:
- Biochemistry
- Cell Biology
- Bone Biology
Background:
- Galectin-3 (Gal-3) is a versatile protein involved in numerous cellular functions.
- In bone, Gal-3 exhibits dual roles: intracellularly it promotes bone formation, while extracellularly it negatively impacts bone remodeling.
- The presence and function of Gal-3 in muscle-bone crosstalk were previously unexplored.
Purpose of the Study:
- To investigate the role of Galectin-3 (Gal-3) secreted by differentiating myoblasts in muscle-to-bone crosstalk.
- To elucidate the mechanisms by which Gal-3 influences osteoblast differentiation and bone formation.
Main Methods:
- Analysis of myoblast secretome and extracellular Gal-3 release.
- In vivo studies assessing Gal-3 expression in response to exercise.
- In vitro co-culture systems of myoblasts and osteoblasts.
- Molecular and proteomic analyses of signaling pathways (STAT3, PDK1/Akt, Notch) and gene expression (BMPs).
Main Results:
- Galectin-3 (Gal-3) is expressed and released by myoblasts during differentiation and mechanical strain, and is triggered by exercise in fast muscle fibers.
- Extracellular Gal-3 from myoblasts directly mediates osteoblast differentiation.
- Gal-3 impairs STAT3 and PDK1/Akt signaling while activating Notch signaling in early bone formation.
- Gal-3 affects BMP expression and osteoblast interaction with the bone matrix.
Conclusions:
- Galectin-3 (Gal-3) is identified as a novel myokine involved in muscle-to-bone crosstalk.
- Gal-3 secreted by muscle cells plays a significant role in regulating osteoblast differentiation and bone formation processes.
- These findings open new avenues for understanding skeletal health and exercise physiology.
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