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Updated: Jun 19, 2026

A RANKL-based Osteoclast Culture Assay of Mouse Bone Marrow to Investigate the Role of mTORC1 in Osteoclast Formation
Published on: March 15, 2018
mTORC1 hyperactivation arrests bone growth in lysosomal storage disorders by suppressing autophagy
Rosa Bartolomeo1,2, Laura Cinque1,2, Chiara De Leonibus1,2
1Telethon Institute of Genetics and Medicine (TIGEM), and.
Abstract:
The mammalian target of rapamycin complex 1 (mTORC1) kinase promotes cell growth by activating biosynthetic pathways and suppressing catabolic pathways, particularly that of macroautophagy. A prerequisite for mTORC1 activation is its translocation to the lysosomal surface. Deregulation of mTORC1 has been associated with the pathogenesis of several diseases, but its role in skeletal disorders is largely unknown. Here, we show that enhanced mTORC1 signaling arrests bone growth in lysosomal storage disorders (LSDs). We found that lysosomal dysfunction induces a constitutive lysosomal association and consequent activation of mTORC1 in chondrocytes, the cells devoted to bone elongation. mTORC1 hyperphosphorylates the protein UV radiation resistance-associated gene (UVRAG), reducing the activity of the associated Beclin 1-Vps34 complex and thereby inhibiting phosphoinositide production. Limiting phosphoinositide production leads to a blockage of the autophagy flux in LSD chondrocytes. As a consequence, LSD chondrocytes fail to properly secrete collagens, the main components of the cartilage extracellular matrix. In mouse models of LSD, normalization of mTORC1 signaling or stimulation of the Beclin 1-Vps34-UVRAG complex rescued the autophagy flux, restored collagen levels in cartilage, and ameliorated the bone phenotype. Taken together, these data unveil a role for mTORC1 and autophagy in the pathogenesis of skeletal disorders and suggest potential therapeutic approaches for the treatment of LSDs.
Insights
Lysosomal storage disorders (LSDs) impair bone growth by activating mTORC1 signaling in chondrocytes. This disrupts autophagy and collagen secretion, but targeting mTORC1 or the Beclin 1-Vps34-UVRAG complex can restore bone development.
Area of Science:
- Cell Biology
- Biochemistry
- Skeletal Biology
Background:
- Mammalian target of rapamycin complex 1 (mTORC1) regulates cell growth and autophagy.
- mTORC1 activation requires lysosomal localization.
- The role of mTORC1 in skeletal disorders is largely unknown.
Purpose of the Study:
- To investigate the role of mTORC1 signaling in skeletal growth defects associated with lysosomal storage disorders (LSDs).
- To elucidate the molecular mechanisms linking lysosomal dysfunction to impaired bone development.
Main Methods:
- Utilized mouse models of LSDs.
- Investigated mTORC1 signaling, lysosomal function, and autophagy flux in chondrocytes.
- Analyzed UV radiation resistance-associated gene (UVRAG) phosphorylation and its effect on the Beclin 1-Vps34 complex.
- Assessed collagen secretion and bone growth phenotypes.
Main Results:
- Lysosomal dysfunction in LSDs leads to constitutive mTORC1 activation in chondrocytes.
- Activated mTORC1 phosphorylates UVRAG, inhibiting the Beclin 1-Vps34 complex and phosphoinositide production.
- This blockade of autophagy flux impairs collagen secretion and arrests bone growth.
- Restoring mTORC1 signaling or Beclin 1-Vps34-UVRAG complex activity ameliorated LSD-associated bone defects in mouse models.
Conclusions:
- Enhanced mTORC1 signaling driven by lysosomal dysfunction is a key mechanism underlying skeletal growth arrest in LSDs.
- Targeting the mTORC1-autophagy pathway presents a potential therapeutic strategy for LSD-related bone disorders.
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