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Published on: July 21, 2023
Loss of Runx2 in committed osteoblasts impairs postnatal skeletogenesis
Mitra D Adhami1, Harunur Rashid, Haiyan Chen
1Department of Oral and Maxillofacial Surgery, Institute of Oral Health Research, School of Dentistry, University of Alabama at Birmingham, Birmingham, AL, USA.
Abstract:
The Runx2 transcription factor is critical for commitment to the osteoblast lineage. However, its role in committed osteoblasts and its functions during postnatal skeletogenesis remain unclear. We established a Runx2-floxed line with insertion of loxP sites around exon 8 of the Runx2 gene. The Runx2 protein lacking the region encoded by exon 8 is imported into the nucleus and binds target DNA but exhibits diminished transcriptional activity. We specifically deleted the Runx2 gene in committed osteoblasts using 2.3-kb col1a-Cre transgenic mice. Surprisingly, the homozygous Runx2 mutant mice were born alive. The Runx2 heterozygous and homozygous null were grossly indistinguishable from wild-type littermates at birth. Runx2 deficiency did not alter proliferative capacity of osteoblasts during embryonic development (E18). Chondrocyte differentiation and cartilage growth in mutants was similar to wild-type mice from birth to 3 months of age. Analysis of the embryonic skeleton revealed poor calcification in homozygous mutants, which was more evident in bones formed by intramembranous ossification. Runx2 mutants showed progressive retardation in postnatal growth and exhibited significantly low bone mass by 1 month of age. Decreased bone formation was associated with decreased gene expression of osteoblast markers and impaired collagen assembly in the extracellular matrix. Consequently, Runx2 mutant bones exhibited decreased stiffness and structural integrity. By 3 months of age, bone acquisition in mutant mice was roughly half that of wild-type littermates. In addition to impaired osteoblast function, mutant mice showed markedly decreased osteoclast number and postnatal bone resorption. Taken together, functional deficiency of Runx2 in osteoblasts does not result in failed embryonic skeletogenesis but disrupts postnatal bone formation.
Insights
Runx2 transcription factor deficiency in osteoblasts impairs postnatal bone formation and reduces bone mass, despite normal embryonic development. This affects bone mineralization, collagen assembly, and resorption, leading to weaker bones.
Area of Science:
- Skeletal Biology
- Molecular Biology
- Genetics
Background:
- Runx2 is crucial for osteoblast lineage commitment.
- Its specific role in mature osteoblasts and postnatal bone development is not fully understood.
Purpose of the Study:
- To investigate the function of Runx2 in committed osteoblasts during postnatal skeletogenesis.
- To determine the consequences of Runx2 deficiency in osteoblasts on bone formation and structure.
Main Methods:
- Generation of Runx2-floxed mice and deletion in committed osteoblasts using col1a-Cre.
- Analysis of skeletal development, bone mass, mineralization, and osteoblast/osteoclast function in mutant mice.
Main Results:
- Homozygous Runx2 mutant mice were born alive with normal embryonic development but showed poor embryonic calcification.
- Postnatal growth was retarded, leading to significantly low bone mass, impaired collagen assembly, and reduced bone stiffness.
- Osteoblast function was impaired, with decreased expression of osteoblast markers and reduced bone formation.
- Osteoclast number and bone resorption were also decreased in mutant mice.
Conclusions:
- Functional deficiency of Runx2 in osteoblasts disrupts postnatal bone formation and acquisition.
- Runx2 is essential for maintaining bone mass, structural integrity, and proper bone remodeling after birth.
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