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Updated: Jun 19, 2026

Stimulation of Notch Signaling in Mouse Osteoclast Precursors
Published on: February 28, 2017
Osteogenic oxysterol, 20(S)-hydroxycholesterol, induces notch target gene expression in bone marrow stromal cells
Woo-Kyun Kim1, Vicente Meliton, Sotirios Tetradis
1Department of Medicine, UCLA School of Medicine, Los Angeles, CA, USA.
Abstract:
We previously reported that specific oxysterols stimulate osteogenic differentiation of pluripotent bone marrow stromal cells (MSCs) through activation of hedgehog (Hh) signaling and may serve as potential future therapies for intervention in osteopenia and osteoporosis. In this study we report that the osteogenic oxysterol 20(S)-hydroxycholesterol (20S) induces the expression of genes associated with Notch signaling. Using M2-10B4 (M2) MSCs, we found that 20S significantly induced HES-1, HEY-1, and HEY-2 mRNA expression compared with untreated cells, with maximal induction after 48 hours, whereas the nonosteogenic oxysterols did not. Similar observations were made when M2 cells were treated with sonic hedgehog (Shh), and the specific Hh pathway inhibitor cyclopamine blocked 20S-induced Notch target gene expression. 20S did not induce Notch target genes in Smo(-/-) mouse embryonic fibroblasts, further confirming the role of Hh signaling in 20S-induced expression of Notch target genes. Despite the inability of liver X-receptor (LXR) synthetic ligand TO901317 to induce Notch target genes in M2 cells, LXR knockdown studies using siRNA showed inhibition of 20S-induced HEY-1 but not HES-1 expression, suggesting the partial role of LXR signaling in MSC responses to 20S. Moreover, 20S-induced Notch target gene expression was independent of canonical Notch signaling because neither 20S nor Shh induced CBF1 luciferase reporter activity or NICD protein accumulation in the nucleus, which are hallmarks of canonical Notch signaling activation. Finally, HES-1 and HEY-1 siRNA transfection significantly inhibited 20S-induced osteogenic genes, suggesting that the pro-osteogenic effects of 20S are regulated in part by HES-1 and HEY-1.
Insights
Specific oxysterols like 20(S)-hydroxycholesterol promote bone cell differentiation via hedgehog signaling. This study reveals 20S also activates Notch signaling genes, crucial for its osteogenic effects in bone marrow stromal cells.
Area of Science:
- Biochemistry
- Cell Biology
- Molecular Biology
Background:
- Specific oxysterols stimulate osteogenic differentiation of bone marrow stromal cells (MSCs) via hedgehog (Hh) signaling.
- These oxysterols show potential for treating osteopenia and osteoporosis.
Purpose of the Study:
- To investigate the effect of the osteogenic oxysterol 20(S)-hydroxycholesterol (20S) on Notch signaling in MSCs.
- To elucidate the role of Hh and liver X receptor (LXR) signaling in 20S-induced Notch target gene expression.
- To determine if 20S-induced osteogenic effects are mediated by Notch signaling components.
Main Methods:
- Treatment of M2-10B4 MSCs with 20S, sonic hedgehog (Shh), and LXR ligand.
- Utilized Hh pathway inhibitor (cyclopamine) and Smo(-/-) mouse embryonic fibroblasts.
- Performed LXR knockdown using siRNA and assessed Notch signaling activation markers (CBF1 luciferase reporter, NICD).
- Investigated the role of HES-1 and HEY-1 using siRNA in 20S-induced osteogenic gene expression.
Main Results:
- 20S significantly induced HES-1, HEY-1, and HEY-2 mRNA in MSCs, an effect dependent on Hh signaling.
- LXR signaling partially contributed to 20S-induced HEY-1 expression.
- 20S-induced Notch target gene expression was independent of canonical Notch signaling activation.
- HES-1 and HEY-1 knockdown partially inhibited 20S-induced osteogenic gene expression.
Conclusions:
- 20(S)-hydroxycholesterol stimulates osteogenic differentiation of MSCs, partly through Hh-dependent induction of Notch target genes HES-1 and HEY-1.
- These Notch signaling components play a regulatory role in the pro-osteogenic effects of 20S.
- Findings suggest a complex interplay between oxysterols, Hh, and Notch pathways in bone metabolism.
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