Discoidin Domain Receptor 1 impacts bone microarchitecture with aging in female mice

Kimberly Denman1, Angela Blissett2, Stevan Glisic1

  • 1Biomedical Engineering Department, The Ohio State University, Columbus, OH 43210, United States.

JBMR Plus
|January 8, 2025
PubMed

Insights

Discoidin Domain Receptor 1 (DDR1) deficiency impairs bone remodeling and osteoclast differentiation in aging mice, negatively affecting bone architecture and mechanical properties.

Area of Science:

  • Bone Biology
  • Receptor Tyrosine Kinases
  • Skeletal Aging

Background:

  • Discoidin Domain Receptor 1 (DDR1) is a collagen-activated receptor tyrosine kinase crucial for bone development.
  • Previous studies highlight DDR1's role in osteoblasts and chondrocytes.
  • The impact of global DDR1 deletion on age-related bone changes remains under investigation.

Purpose of the Study:

  • To investigate the age-dependent effects of global Discoidin Domain Receptor 1 (DDR1) ablation on bone architecture, mechanics, and remodeling.
  • To determine the role of DDR1 in osteoclast differentiation.

Main Methods:

  • Analysis of femurs from global *Ddr1* knockout (KO) and wild-type (WT) female mice at 2, 6, and 12 months of age.
  • High-resolution micro-computed tomography (μCT), mechanical testing, and histology were employed.
  • In vitro osteoclastogenesis assays using primary bone marrow-derived cells.

Main Results:

  • No significant differences were observed in younger mice (2 months).
  • At 12 months, *Ddr1* KO mice exhibited reduced medullary cavity area, increased trabeculation, and impaired bone mechanical properties (lower peak load, yield load, energy to yield).
  • Histology revealed reduced osteoclast counts in *Ddr1* KO mice, and in vitro assays showed impaired osteoclastogenesis.

Conclusions:

  • DDR1 deficiency adversely impacts osteoclast differentiation and bone remodeling in an age-dependent manner.
  • Global DDR1 ablation leads to detrimental changes in bone architecture and mechanics with aging.
  • DDR1 plays a significant role in regulating bone homeostasis throughout the lifespan.