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.

Birth Defects Research
|November 3, 2023
PubMed
Abstract

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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