Spatial periodicity in growth plate shear mechanical properties is disrupted by vitamin D deficiency

Derin Sevenler1, Mark R Buckley, Grace Kim

  • 1Sibley School of Mechanical & Aerospace Engineering, Cornell University, Ithaca, NY, USA. derin@bu.edu

Insights

Vitamin D deficiency disrupts the structural organization of growth plate cartilage in children, leading to altered shear mechanics and increased susceptibility to injury. This study reveals how nutrient deficiency impacts bone development.

Area of Science:

  • Biomedical Engineering
  • Developmental Biology
  • Nutritional Science

Background:

  • The growth plate is crucial for longitudinal bone growth in children.
  • Vitamin D deficiency can compromise growth plate structure and mechanical integrity.
  • Understanding the mechanical properties of the growth plate is vital for pediatric bone health.

Purpose of the Study:

  • To investigate the shear mechanical properties of the proximal tibial growth plate in rats with and without vitamin D deficiency.
  • To elucidate the impact of vitamin D deficiency on growth plate structural organization and deformation patterns.

Main Methods:

  • Excised rat proximal tibial growth plates were subjected to sinusoidal oscillating shear loads.
  • Real-time deformation imaging was performed using confocal microscopy.
  • Image correlation techniques quantified local deformations and shear strains.

Main Results:

  • The proliferative zone sustained the majority of shear strain in both control and vitamin D-deficient groups.
  • Discontinuous deformations, resembling sliding cell columns, were observed in the proliferative zone.
  • Vitamin D deficiency led to disorganized cellular columns and disrupted regular spacing of shear strain concentrations, indicating reduced structural integrity.

Conclusions:

  • The proliferative zone is the primary site of shear strain accommodation in the growth plate.
  • Vitamin D deficiency significantly impairs growth plate structural organization and mechanical properties.
  • These findings highlight the critical role of vitamin D in maintaining pediatric bone development and preventing skeletal deformities.

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