Delayed development of ossification centers in the tibia of prenatal and early postnatal MPS VII mice

Zhirui Jiang1, Ainslie L K Derrick-Roberts2, Matilda R Jackson1

  • 1Genetics & Evolution, University of Adelaide, Adelaide, SA, Australia; Genetics and Molecular Pathology, SA Pathology, Adelaide, SA, Australia.

Insights

Mucopolysaccharidoses (MPS) cause short stature due to impaired bone development. Gusmps/mps mice show delayed bone formation in MPS VII, starting in fetal development and worsening with age.

Area of Science:

  • Skeletal Biology
  • Lysosomal Storage Disorders
  • Developmental Biology

Background:

  • Mucopolysaccharidoses (MPS) are inherited lysosomal storage disorders.
  • Short stature and skeletal defects are hallmarks of MPS, stemming from impaired endochondral ossification.

Purpose of the Study:

  • Identify a murine model accurately reflecting human MPS bone length reduction.
  • Determine the earliest developmental stage of disrupted endochondral ossification in MPS.

Main Methods:

  • Evaluated bone elongation in various murine MPS models.
  • Selected Gusmps/mps mice (MPS VII) for detailed tibial histopathology from embryonic day 12.5 to 6 months.
  • Assessed chondrocyte hypertrophy, primary/secondary ossification center formation, and growth plate thickness.

Main Results:

  • Gusmps/mps mice exhibited the most significant reduction in bone elongation.
  • MPS VII fetuses showed a 1-day delay in primary ossification center formation.
  • Postnatal MPS VII mice displayed a 2-day delay in secondary ossification center bone deposition and increased growth plate thickness from postnatal day 9.

Conclusions:

  • Abnormal endochondral ossification in MPS VII begins in utero and progresses with age.
  • The defect involves delayed bone deposition despite normal chondrocyte hypertrophy timing.
  • Altered signals for vascular invasion and bone deposition, potentially from hypertrophic chondrocytes, are implicated in MPS VII bone development.

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