Connective tissue growth factor is required for skeletal development and postnatal skeletal homeostasis in male mice

Ernesto Canalis1, Stefano Zanotti, Wesley G Beamer

  • 1Department of Research, Saint Francis Hospital and Medical Center, Hartford, Connecticut 06105-1299, USA. ecanalis@stfranciscare.org

Endocrinology
|June 11, 2010
PubMed

Insights

Connective tissue growth factor (CTGF) is vital for skeletal development. While its absence causes early bone defects, CTGF plays a lesser role in maintaining bone health after birth.

Area of Science:

  • Skeletal Biology
  • Bone Development
  • Connective Tissue Growth Factor (CTGF) Research

Background:

  • Connective tissue growth factor (CTGF) is a CCN family protein synthesized by osteoblasts.
  • CTGF overexpression inhibits osteoblastogenesis and leads to osteopenia.
  • Global Ctgf inactivation results in defective endochondral bone formation and perinatal lethality, leaving postnatal skeletal effects unknown.

Purpose of the Study:

  • To investigate the role of CTGF in postnatal skeletal development and homeostasis.
  • To analyze the consequences of CTGF inactivation in specific bone cell populations.

Main Methods:

  • Generated Ctgf(+/LacZ) heterozygous null mice.
  • Created tissue-specific CTGF null mice using conditional Ctgf mice crossed with Prx1-Cre or Oc-Cre mice.
  • Assessed skeletal phenotypes, including bone mineral density and trabecular bone parameters.

Main Results:

  • Ctgf heterozygous mice showed transient osteopenia at 1 month, characterized by decreased trabecular number.
  • Prx1-Cre mediated deletion of Ctgf resulted in a similar osteopenic phenotype at 1 month, suggesting impaired endochondral ossification.
  • Oc-Cre mediated deletion of Ctgf led to osteopenia in 6-month-old male mice; osteoblast and osteoclast numbers remained unaffected.

Conclusions:

  • CTGF is essential for normal skeletal development.
  • CTGF plays a limited role in maintaining postnatal skeletal homeostasis.
  • Tissue-specific deletion highlights differential roles of CTGF in bone development and maintenance.

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