Osteoclast differentiation and characteristic trabecular bone formation during growth plate destruction in

Fumi Kawana1, Takahisa Sasaki

  • 1Department of Oral Histology, School of Dentistry, Showa University, 1-5-8 Hatanodai, Shinagawa-ku, Tokyo 142-8555, Japan.

Insights

Osteoprotegerin (OPG) deficiency causes severe bone loss and growth plate destruction. In OPG-deficient mice, osteoclast differentiation requires new bone matrix, indicating coupled bone formation and resorption.

Area of Science:

  • Bone Biology
  • Skeletal Development
  • Osteoclastogenesis

Background:

  • Osteoprotegerin (OPG) is crucial for inhibiting osteoclastogenesis.
  • OPG-deficient mice exhibit severe bone loss and growth plate cartilage destruction.
  • Understanding osteoclast behavior in OPG deficiency is vital for bone metabolism research.

Purpose of the Study:

  • To investigate the differentiation and ultrastructural characteristics of osteoclasts in OPG-deficient mice.
  • To analyze osteoclast localization and morphology on destructed growth plate cartilage and bone matrix.
  • To elucidate the role of bone matrix in terminal osteoclast differentiation.

Main Methods:

  • Utilized OPG-homozygous (-/-) knockout mice as an animal model.
  • Examined long bones (humerus and femur) for bone and cartilage abnormalities.
  • Performed histological analysis to identify osteoclasts (tartrate-resistant acid phosphatase positive) and collagen types (I and II).
  • Observed osteoclast ultrastructure, including ruffled border formation.

Main Results:

  • OPG deficiency led to irregular growth plate cartilage and bone trabeculae formation without calcified cartilage cores.
  • Osteoclasts were found on both type-II collagen-positive cartilage and type-I collagen-positive bone matrix at the ossification center.
  • Osteoclasts on uncalcified cartilage lacked ruffled borders, while those on calcified cartilage showed irregular ruffled borders.
  • Osteoclasts formed prominent ruffled borders on newly deposited bone matrix on remaining cartilage surfaces.

Conclusions:

  • Terminal osteoclast differentiation in OPG (-/-) mice necessitates the presence of newly produced bone matrix.
  • Bone formation and resorption are coupled phenomena in OPG-deficient mice.
  • Osteoblast-derived cytokines may play a role in regulating osteoclast differentiation in this model.

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