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Updated: Mar 22, 2026

Stimulation of Notch Signaling in Mouse Osteoclast Precursors
Published on: February 28, 2017
Osteoblast-specific Notch2 inactivation causes increased trabecular bone mass at specific sites of the appendicular
Timur Yorgan1, Nele Vollersen1, Christoph Riedel1
1Department of Osteology and Biomechanics, University Medical Center Hamburg-Eppendorf, 20246 Hamburg, Germany.
Abstract:
Notch signaling is a key pathway controlling various cell fate decisions during embryogenesis and adult life. It is activated by binding of specific ligands to four different Notch receptors that are subsequently cleaved by presenilins to release an intracellular domain that enters the nucleus and activates specific transcription factors. While the skeletal analysis of various mouse models with activated or inactivated Notch signaling has demonstrated a general impact of this pathway on bone remodeling, the more recent identification of NOTCH2 mutations in individuals with Hajdu-Cheney syndrome (HCS) has highlighted its human relevance. Since HCS is primarily characterized by skeletal defects, these latter findings led us to analyze the specific role of Notch2 in skeletal remodeling. After observing Notch2 expression in osteoblasts and osteoclasts, we utilized Runx2-Cre and Lyz2-Cre mice to inactivate Notch2 in cells of the osteoblast or osteoclast lineage, respectively. Whereas Notch2(fl/fl)/Lyz2-Cre mice did not display significant alterations of skeletal growth, bone mass or remodeling, Notch2(fl/fl)/Runx2-Cre mice progressively developed skeletal abnormalities in long bones. More specifically, these mice displayed a striking increase of trabecular bone mass in the proximal femur and the distal tibia at 6 and 12months of age. Whereas undecalcified sectioning of the respective regions did not reveal impaired osteocyte differentiation as a potential trigger for the observed phenotype, ex vivo experiments with bone marrow cells identified an increased osteogenic capacity of Notch2(fl/fl)/Runx2-Cre cultures. Collectively, our findings demonstrate that Notch2 physiologically regulates bone remodeling by inhibiting trabecular bone formation in the appendicular skeleton. Understanding the underlying mechanisms may help to improve diagnosis and therapy of HCS.
Insights
Notch2 signaling in osteoblasts inhibits bone formation. Inactivating Notch2 in osteoblasts increases bone mass, revealing its role in regulating skeletal remodeling and potentially treating Hajdu-Cheney syndrome.
Area of Science:
- Cell Biology
- Developmental Biology
- Genetics
Background:
- Notch signaling regulates cell fate and is crucial for embryogenesis and adult life.
- NOTCH2 mutations are linked to Hajdu-Cheney syndrome (HCS), a disorder primarily affecting skeletal development.
- Previous studies showed Notch signaling impacts bone remodeling, but Notch2's specific role in skeletal cells was unclear.
Purpose of the Study:
- To investigate the specific role of Notch2 in skeletal remodeling.
- To determine if Notch2 inactivation in osteoblast or osteoclast lineages affects bone homeostasis.
Main Methods:
- Utilized Runx2-Cre and Lyz2-Cre mouse models to selectively inactivate Notch2 in osteoblasts and osteoclasts, respectively.
- Analyzed skeletal growth, bone mass, and remodeling in Notch2-deficient mice.
- Assessed osteogenic capacity of bone marrow cells ex vivo.
Main Results:
- Inactivation of Notch2 in osteoclasts (Notch2(fl/fl)/Lyz2-Cre) did not significantly alter skeletal parameters.
- Inactivation of Notch2 in osteoblasts (Notch2(fl/fl)/Runx2-Cre) led to progressive skeletal abnormalities and increased trabecular bone mass in long bones.
- Ex vivo studies revealed an increased osteogenic capacity in cultures from Notch2(fl/fl)/Runx2-Cre mice.
Conclusions:
- Notch2 plays a physiological role in regulating bone remodeling by inhibiting trabecular bone formation in the appendicular skeleton.
- These findings highlight Notch2 as a potential therapeutic target for skeletal disorders like HCS.
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