Prenatal growth restriction and postnatal growth restriction followed by accelerated growth independently program

Tania Romano1, John D Wark, Julie A Owens

  • 1Department of Physiology, The University of Melbourne, Parkville, Victoria, Australia.

Bone
|April 1, 2009
PubMed

Insights

Prenatal and postnatal growth restriction negatively impacts adult bone strength and density. However, improved postnatal nutrition can correct these deficits in females, indicating sex-specific programming.

Area of Science:

  • Bone biology and developmental programming
  • Endocrinology and metabolic health
  • Reproductive biology and offspring development

Background:

  • Low birth weight and accelerated postnatal growth are linked to adult cardiovascular and metabolic diseases.
  • Emerging evidence implicates early-life growth patterns in adult bone health and fracture risk.
  • The independent roles of prenatal and postnatal growth restriction on bone development require further elucidation.

Purpose of the Study:

  • To investigate the distinct and combined effects of prenatal and postnatal growth restriction on adult bone characteristics and strength.
  • To determine the impact of cross-fostering strategies on bone development in offspring subjected to different growth restriction paradigms.
  • To explore potential sex-specific differences in bone programming due to early-life growth restriction.

Main Methods:

  • Wistar Kyoto (WKY) rats underwent bilateral uterine vessel ligation (Restricted) or sham surgery (Control) on gestational day 18 to induce fetal growth restriction.
  • Offspring were cross-fostered to mothers with normal (Control) or impaired (Restricted) lactation to manipulate postnatal nutrition.
  • Femur bone parameters (length, dimensions, strength, mineral content, density) were assessed using DXA and pQCT; bone turnover markers were measured at 6 months.

Main Results:

  • Prenatal growth restriction resulted in lower birth weight, with males remaining smaller than controls at 6 months.
  • Offspring experiencing postnatal growth restriction followed by accelerated growth showed reduced bone mineral content, dimensions, and strength.
  • Improved postnatal nutrition in females born small (Restricted-on-Control) restored bone parameters to control levels, unlike males.

Conclusions:

  • Both prenatal and postnatal growth restriction, as well as accelerated growth after slowed development, program deficits in adult bone content and strength.
  • Postnatal nutrition plays a critical role in mitigating bone deficits, with sex-specific programming outcomes observed.
  • These findings highlight the significant impact of early-life growth environments on long-term bone health, suggesting potential human relevance.

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