4.7 Article

Osteoblast differentiation and skeletal development are regulated by Mdm2-p53 signaling

期刊

JOURNAL OF CELL BIOLOGY
卷 172, 期 6, 页码 909-921

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ROCKEFELLER UNIV PRESS
DOI: 10.1083/jcb.200508130

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资金

  1. NCI NIH HHS [R56 CA077735, R01 CA077735, CA77735] Funding Source: Medline
  2. NIAMS NIH HHS [R01 AR039588, P01 AR038933, AR38933, AR39588] Funding Source: Medline

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Mdm2 is required to negatively regulate p53 activity at the peri-implantation stage of early mouse development. However, the absolute requirement for Mdm2 throughout embryogenesis and in organogenesis is unknown. To explore Mdm2-p53 signaling in osteogenesis, Mdm2-conditional mice were bred with Col3.6-Cre-transgenic mice that express Cre recombinase in osteoblast lineage cells. Mdm2-conditional Col3.6-Cre mice die at birth and display multiple skeletal defects. Osteoblast progenitor cells deleted for Mdm2 have elevated p53 activity, reduced proliferation, reduced levels of the master osteoblast transcriptional regulator Runx2, and reduced differentiation. In contrast, p53-null osteoprogenitor cells have increased proliferation, increased expression of Runx2, increased osteoblast maturation, and increased tumorigenic potential, as mice specifically deleted for p53 in osteoblasts develop osteosarcomas. These results demonstrate that p53 plays a critical role in bone organogenesis and homeostasis by negatively regulating bone development and growth and by suppressing bone neoplasia and that Mdm2-mediated inhibition of p53 function is a prerequisite for Runx2 activation, osteoblast differentiation, and proper skeletal formation.

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