Weight loading young chicks inhibits bone elongation and promotes growth plate ossification and vascularization

A Reich1, N Jaffe, A Tong

  • 1Institute of Animal Science, the Volcani Center, Bet Dagan, The Hebrew Univ. of Jerusalem, Rehovot, Israel.

Insights

Weight loading on young chicks during growth reduced long bone length and diameter by narrowing growth plates. This mechanical stress increased mineralization and altered gene expression, accelerating bone development.

Area of Science:

  • Biomechanical Engineering
  • Developmental Biology
  • Orthopedic Research

Background:

  • Mechanical stimuli are crucial for adult bone remodeling, but their impact on developing bone is less understood.
  • Weight loading's effects on the growth plates of young animals require further investigation.

Purpose of the Study:

  • To investigate the effects of mechanical weight loading on the growth plates and long bone development in young chicks.
  • To elucidate the molecular mechanisms underlying load-induced bone growth modulation.

Main Methods:

  • Chicks were subjected to external weight loading (10% body weight) during their rapid growth phase.
  • Analysis included bone morphometry, growth plate width and mineralization assessment, Northern blot, in situ hybridization, and gene expression analysis (OPN, MMP9, MMP13).

Main Results:

  • Weight loading significantly reduced long bone length and diameter, with growth plates being narrower (75% of controls) and more mineralized.
  • Mechanically loaded growth plates showed altered expression zones for collagen types II and X, increased osteopontin (OPN) expression, and enhanced expression of matrix metalloproteinases (MMPs) MMP9 and MMP13.
  • Increased vascularization into the growth plates was observed in the loaded group.

Conclusions:

  • Mechanical strain on growth plate chondrocytes induces overexpression of OPN, MMP9, and MMP13.
  • These molecular changes facilitate blood vessel penetration, cartilage resorption, and ossification, leading to shorter bones and narrower growth plates.
  • Weight loading accelerates developmental ossification in young bone through specific molecular signaling pathways.

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