Calcium supplementation does not rescue the programmed adult bone deficits associated with perinatal growth

Tania Romano1, John D Wark, Mary E Wlodek

  • 1Department of Physiology, The University of Melbourne, Victoria 3010, Australia. t.romano@pgrad.unimelb.edu.au

Bone
|September 7, 2010
PubMed

Insights

Low birth weight in rats programs adult bone deficits. High calcium diets improved bone density but did not fully reverse programmed bone dimension and strength impairments, highlighting early life critical programming.

Area of Science:

  • Bone biology
  • Developmental programming
  • Nutritional science

Background:

  • Low birth weight and poor childhood growth are linked to adult bone disorders like osteoporosis.
  • Previous research shows growth-restricted offspring have smaller femurs, reduced bone mineral content, and weaker bones in adulthood.

Purpose of the Study:

  • To investigate the impact of adolescent calcium supplementation on bone development in growth-restricted male and female rats.
  • To determine if calcium intake can mitigate programmed bone deficits resulting from uteroplacental insufficiency.

Main Methods:

  • Uteroplacental insufficiency was induced in WKY rats via bilateral uterine vessel ligation, creating growth-restricted offspring.
  • Offspring received either constant or variable normal/high calcium diets from 2 to 6 months of age.
  • Bone dimensions, density, and strength were assessed using DXA and pQCT; bone turnover markers were also measured.

Main Results:

  • Growth-restricted offspring were born lighter and remained smaller with shorter femurs at 6 months.
  • Reduced trabecular and cortical bone content was observed in restricted offspring, irrespective of diet.
  • A constant high calcium diet enhanced cortical bone mineral density (BMD) in restricted males and females, but bone dimensions and strength deficits persisted.

Conclusions:

  • In utero growth restriction programs reduced adult femur length, dimensions, and bone strength.
  • Adolescent high calcium supplementation can improve cortical bone density but is insufficient to fully overcome early-life programmed bone deficits.
  • The early life environment plays a critical role in long-term bone programming and health outcomes.

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