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Updated: May 16, 2026

Stimulation of Notch Signaling in Mouse Osteoclast Precursors
Published on: February 28, 2017
Nuclear factor of activated T-cells (NFAT)C2 inhibits Notch receptor signaling in osteoblasts
Stefano Zanotti1, Anna Smerdel-Ramoya, Ernesto Canalis
1Department of Research, Saint Francis Hospital and Medical Center, Hartford, Connecticut 06105, USA.
Abstract:
Notch receptors regulate osteoblastogenesis, and Notch activation induces cleavage and nuclear translocation of the Notch intracellular domain (NICD), which associates with Epstein-Barr virus latency C-promoter binding factor-1/suppressor of hairless/lag-1 (CSL) and induces transcription of Notch target genes, such as hairy enhancer of split-related with YRPW motif (Hey)1 and Hey2. Nuclear factors of activated T-cells (NFAT) are transcription factors that regulate osteoclastogenesis, but their function in osteoblasts is not clear. Notch inhibits NFATc1 transcription, but interactions between Notch and NFAT are understood poorly. To determine the regulation of NFAT expression by Notch, osteoblasts from Rosa(Notch) mice, where NICD is transcribed following excision of a loxP flanked STOP cassette, were used. Alternatively, wild-type C57BL/6 osteoblasts were exposed to the Notch ligand Delta-like (Dll)1 to induce Notch signaling or to bovine serum albumin as control. In Rosa(Notch) osteoblasts, Notch suppressed NFATc1 expression, increased Nfatc2 mRNA by post-transcriptional mechanisms, and had no effect on NFATc3 and NFATc4 transcripts. Induction of Nfatc2 transcripts by Notch was confirmed in C57BL/6 osteoblasts exposed to Dll1. To investigate NFATc2 function in osteoblasts, constitutively active NFATc2 was overexpressed in Rosa(Notch) osteoblasts. NFATc2 suppressed Notch transactivation and expression of Hey genes. Electrophoretic mobility shift assays revealed that NFATc2 and CSL bind to similar DNA sequences, and chromatin immunoprecipitation indicated that NFATc2 displaced CSL from the Hey2 promoter. The effects of NICD and NFATc2 in Rosa(Notch) osteoblasts were assessed, and both proteins inhibited osteoblast function. In conclusion, Notch stabilizes Nfatc2 transcripts, NFATc2 suppresses Notch signaling, and both proteins inhibit osteoblast function.
Insights
Notch signaling stabilizes Nfatc2 transcripts in osteoblasts. Nuclear factor of activated T-cells c2 (NFATc2) then suppresses Notch signaling, and both proteins inhibit osteoblast function, revealing a novel regulatory feedback loop.
Area of Science:
- Cell Biology
- Molecular Biology
- Bone Biology
Background:
- Notch signaling is crucial for osteoblastogenesis, involving Notch intracellular domain (NICD) and CSL complex.
- Nuclear factors of activated T-cells (NFAT) regulate osteoclastogenesis, but their role in osteoblasts is unclear.
- Interactions between Notch and NFAT in osteoblasts are poorly understood.
Purpose of the Study:
- To elucidate the regulation of NFAT expression by Notch signaling in osteoblasts.
- To investigate the functional interplay between Notch signaling and NFATc2 in osteoblasts.
- To determine the impact of NICD and NFATc2 on osteoblast function.
Main Methods:
- Utilized Rosa(Notch) mice for inducible NICD expression in osteoblasts.
- Exposed wild-type osteoblasts to Delta-like (Dll)1 ligand to activate Notch signaling.
- Employed overexpression of constitutively active NFATc2, electrophoretic mobility shift assays, and chromatin immunoprecipitation.
Main Results:
- Notch signaling suppressed NFATc1 and stabilized Nfatc2 mRNA via post-transcriptional mechanisms.
- NFATc2 overexpression inhibited Notch transactivation and Hey gene expression.
- NFATc2 and CSL bind to similar DNA sequences, with NFATc2 displacing CSL from the Hey2 promoter.
- Both NICD and NFATc2 inhibited osteoblast function.
Conclusions:
- Notch signaling stabilizes Nfatc2 transcripts in osteoblasts.
- NFATc2 negatively regulates Notch signaling by competing with CSL for promoter binding.
- Both Notch signaling components (NICD) and NFATc2 impair osteoblast function, indicating a complex regulatory relationship.
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