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.

Biomolecules
|October 26, 2024
PubMed

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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