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Updated: Apr 26, 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
Antitumor agent cabozantinib decreases RANKL expression in osteoblastic cells and inhibits osteoclastogenesis and
1Department of Pharmacology, Northwestern University Feinberg School of Medicine, Chicago, Illinois.
Abstract:
Cabozantinib, an inhibitor of vascular endothelial growth factor and hepatocyte growth factor signaling, decreases bone lesions in patients with prostate cancer. To determine direct effects of cabozantinib on bone, resorption in neonatal mouse bone organ culture and on gene expression, proliferation, and phenotypic markers in osteoblast and osteoclast cell lines were examined. Cabozantinib, 0.3 and 3 µM, prevented PTHrP-stimulated calcium release from neonatal mouse calvaria. Since the effect on resorption could reflect effects on osteoblasts to prevent osteoclast activation, or direct inhibition of osteoclasts, responses in osteoblastic and osteoclast precursor cell lines were examined. Twenty-four-hour treatment of osteoblastic MC3T3-E1 cells with 3 µM cabozantinib decreased expression of receptor activator of NFkB ligand (RANKL) and alkaline phosphatase. Forty-eight-hour treatment of MC3T3-E1 cells with 3 µM cabozantinib inhibited cell proliferation and decreased MTT activity. Effects on alkaline phosphatase activity were biphasic, with small stimulatory effects at concentrations below 3 µM. When RAW 264.7 osteoclast precursor cells differentiated with 20 ng/ml RANKL were co-treated for 24 h with 3 µM cabozantinib, expression of RANK, TRAP, cathepsin K, alpha v or beta 3 integrin, or NFATc1 were unaffected. Five-day treatment of RANKL-treated RAW 264.7 cells with 3 µM cabozantinib decreased TRAP and MTT activity. The results suggest that the osteoblast could be the initial target, with subsequent direct and indirect effects on osteoclastogenesis leading to decreased resorption. The multiple effects of cabozantinib on the cell microenvironment of bone are consistent with its effectiveness in reducing lesions from prostate cancer metastases.
Insights
Cabozantinib reduces bone resorption by targeting osteoblasts, affecting their proliferation and gene expression. This leads to decreased osteoclast activity, explaining its effectiveness against prostate cancer bone lesions.
Area of Science:
- Bone biology
- Cancer metastasis
- Pharmacology
Background:
- Cabozantinib is a multi-targeted tyrosine kinase inhibitor.
- It reduces bone lesions in prostate cancer patients.
- Its direct effects on bone cells are not fully understood.
Purpose of the Study:
- To investigate the direct effects of cabozantinib on bone resorption.
- To examine cabozantinib's impact on osteoblast and osteoclast cell lines.
- To determine the molecular mechanisms underlying cabozantinib's effects on bone.
Main Methods:
- Neonatal mouse bone organ culture to assess calcium release.
- In vitro studies on osteoblastic (MC3T3-E1) and osteoclastic (RAW 264.7) cell lines.
- Analysis of gene expression, cell proliferation, and phenotypic markers.
Main Results:
- Cabozantinib prevented calcium release from neonatal mouse calvaria.
- In osteoblasts, it decreased receptor activator of NFkB ligand (RANKL) and alkaline phosphatase, and inhibited proliferation.
- In osteoclasts, it reduced tartrate-resistant acid phosphatase (TRAP) and metabolic activity after prolonged exposure.
Conclusions:
- Cabozantinib primarily targets osteoblasts, leading to reduced bone resorption.
- It exerts both direct and indirect effects on osteoclastogenesis.
- These actions contribute to cabozantinib's efficacy in managing prostate cancer bone metastases.
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