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Updated: Jul 11, 2025

Stimulation of Notch Signaling in Mouse Osteoclast Precursors
Published on: February 28, 2017
Hdac1 and Hdac2 positively regulate Notch1 gain-of-function pathogenic signaling in committed osteoblasts of male
Haydee M Torres1,2,3, Leetoria Hinojosa1, Ashley M VanCleave1
1Cancer Biology and Immunotherapies Group, Sanford Research, Sioux Falls, South Dakota, USA.
Background:
Skeletal development requires precise extrinsic and intrinsic signals to regulate processes that form and maintain bone and cartilage. Notch1 is a highly conserved signaling receptor that regulates cell fate decisions by controlling the duration of transcriptional bursts. Epigenetic molecular events reversibly modify DNA and histone tails by influencing the spatial organization of chromatin and can fine-tune the outcome of a Notch1 transcriptional response. Histone deacetylase 1 and 2 (HDAC1 and HDAC2) are chromatin modifying enzymes that mediate osteoblast differentiation. While an HDAC1-Notch interaction has been studied in vitro and in Drosophila, its role in mammalian skeletal development and disorders is unclear. Osteosclerosis is a bone disorder with an abnormal increase in the number of osteoblasts and excessive bone formation.
Methods:
Here, we tested whether Hdac1/2 contribute to the pathogenesis of osteosclerosis in a murine model of the disease owing to conditionally cre-activated expression of the Notch1 intracellular domain in immature osteoblasts.
Results:
Importantly, selective homozygous deletions of Hdac1/2 in osteoblasts partially alleviate osteosclerotic phenotypes (Col2.3kb-Cre; TGRosaN1ICD/+ ; Hdac1flox/flox ; Hdac2flox/flox ) with a 40% decrease in bone volume and a 22% decrease in trabecular thickness in 4 weeks old when compared to male mice with heterozygous deletions of Hdac1/2 (Col2.3 kb-Cre; TGRosaN1ICD/+ ; Hdac1flox/+ ; Hdac2flox/+ ). Osteoblast-specific deletion of Hdac1/2 in male and female mice results in no overt bone phenotype in the absence of the Notch1 gain-of-function (GOF) allele.
Conclusions:
These results provide evidence that Hdac1/2 contribute to Notch1 pathogenic signaling in the mammalian skeleton. Our study on epigenetic regulation of Notch1 GOF-induced osteosclerosis may facilitate further mechanistic studies of skeletal birth defects caused by Notch-related GOF mutations in human patients, such as Adams-Oliver disease, congenital heart disease, and lateral meningocele syndrome.
Insights
Histone deacetylase 1 and 2 (HDAC1/2) contribute to Notch1 signaling in bone development. Deleting HDAC1/2 in mice partially reverses osteosclerosis, a bone disorder, suggesting a role in skeletal diseases.
Area of Science:
- Skeletal biology and epigenetics
- Cell signaling and differentiation
- Molecular mechanisms of bone development
Background:
- Skeletal development relies on precise intrinsic and extrinsic signals.
- Notch1 signaling regulates cell fate and transcriptional bursts.
- Epigenetic modifications, like those by Histone deacetylases 1 and 2 (HDAC1/2), fine-tune Notch1 responses and are crucial for osteoblast differentiation.
Purpose of the Study:
- To investigate the role of Hdac1/2 in the pathogenesis of osteosclerosis.
- To determine if Hdac1/2 contribute to Notch1 gain-of-function (GOF) induced skeletal abnormalities.
Main Methods:
- Utilized a murine model with cre-activated Notch1 intracellular domain expression in immature osteoblasts.
- Generated mice with selective homozygous and heterozygous deletions of Hdac1/2 in osteoblasts.
- Analyzed skeletal phenotypes, including bone volume and trabecular thickness, in genetically modified mice.
Main Results:
- Selective homozygous deletion of Hdac1/2 in osteoblasts partially alleviated osteosclerotic phenotypes in male mice.
- Homozygous deletion resulted in a 40% decrease in bone volume and a 22% decrease in trabecular thickness compared to heterozygous deletions.
- Osteoblast-specific deletion of Hdac1/2 did not cause overt bone phenotypes in the absence of the Notch1 GOF allele.
Conclusions:
- Hdac1/2 play a significant role in Notch1 pathogenic signaling within the mammalian skeleton.
- Epigenetic regulation of Notch1 GOF is implicated in osteosclerosis.
- Findings may inform mechanistic studies of skeletal birth defects linked to Notch-related GOF mutations in humans.
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