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Effect of low dietary calcium on bone metabolism in the SENCAR mouse

E J Murray1, S S Murray, M Grisanti

  • 1Geriatric Research, Education, and Clinical Center, Department of Veterans Affairs Medical Center, Sepulveda, CA 91343, USA. murrayes@ucla.edu

Insights

SENCAR mice exhibit impaired bone metabolism, with low bone volume and apposition rates, especially when on a calcium-deficient diet. This highlights the impact of protein kinase C signaling defects on bone health.

Area of Science:

  • Bone Biology
  • Cell Signaling
  • Carcinogenesis Research

Background:

  • SENCAR mice possess a unique defect in protein kinase C signaling, impacting intracellular mediation of hormonal effects.
  • Despite large bone structure at maturity, SENCAR mice show altered calcium accumulation and loss compared to standard strains.
  • Previous studies indicated potential bone metabolism issues in SENCAR mice under varying calcium conditions.

Purpose of the Study:

  • To histologically define the effects of low dietary calcium on bone metabolism in SENCAR mice.
  • To investigate the early development of impaired bone metabolism in SENCAR mice.
  • To correlate protein kinase C signaling defects with bone metabolism disturbances.

Main Methods:

  • Histomorphometric analysis of tetracycline-labeled femoral bone sections.
  • SENCAR mice were fed calcium-sufficient (0.6%) and calcium-deficient (0.02%) diets from 10 to 14 weeks of age.
  • Evaluation of bone volume, osteoid volume, and mineral apposition rate.

Main Results:

  • Bone volume, absolute osteoid volume, and mineral apposition rate decreased from 10 to 14 weeks in mice on both calcium diets.
  • Calcium deficiency exacerbated architectural disarray and growth plate discontinuities.
  • Impaired bone metabolism features were evident early and worsened by low dietary calcium.

Conclusions:

  • Characteristic features of impaired bone metabolism develop early in SENCAR mice.
  • Low dietary calcium significantly exacerbates these bone metabolism deficits.
  • Further study of SENCAR mouse bone histology and biochemistry can elucidate the role of protein kinase C signaling in bone health.

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