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Updated: Jun 10, 2026

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Published on: February 21, 2018
Krox20/EGR2 deficiency accelerates cell growth and differentiation in the monocytic lineage and decreases bone mass
Yankel Gabet1, Sanjeev K Baniwal, Nathalie Leclerc
1Department of Biochemistry and Molecular Biology, Keck School of Medicine at University of Southern California, Los Angeles, CA 90033, USA.
Abstract:
Krox20/EGR2, one of the 4 early growth response genes, is a highly conserved transcription factor implicated in hindbrain development, peripheral nerve myelination, tumor suppression, and monocyte/macrophage cell fate determination. Here, we established a novel role for Krox20 in postnatal skeletal metabolism. Microcomputed tomographic analysis of 4- and 8-week-old mice revealed a low bone mass phenotype (LBM) in both the distal femur and the vertebra of Krox20(+/-) mice. This was attributable to accelerated bone resorption as demonstrated in vivo by increased osteoclast number and serum C-terminal telopeptides, a marker for collagen degradation. Krox20 haploinsufficiency did not reduce bone formation in vivo, nor did it compromise osteoblast differentiation in vitro. In contrast, growth and differentiation were significantly stimulated in preosteoclast cultures derived from Krox20(+/-) splenocytes, suggesting that the LBM is attributable to Krox20 haploinsufficiency in the monocytic lineage. Furthermore, Krox20 silencing in preosteoclasts increased cFms expression and response to macrophage colony-stimulating factor, leading to a cell-autonomous stimulation of cell-cycle progression. Our data indicate that the antimitogenic role of Krox20 in preosteoclasts is the predominant mechanism underlying the LBM phenotype of Krox20-deficient mice. Stimulation of Krox20 expression in preosteoclasts may present a viable therapeutic strategy for high-turnover osteoporosis.
Insights
Krox20 (early growth response gene) deficiency in mice leads to low bone mass due to increased osteoclast activity. Krox20 acts as an antimitogen in preosteoclasts, suggesting therapeutic potential for osteoporosis.
Area of Science:
- Molecular Biology
- Genetics
- Skeletal Biology
Background:
- Krox20 (early growth response gene) is a transcription factor involved in development and cell fate.
- Its role in postnatal skeletal metabolism was previously unknown.
Purpose of the Study:
- To investigate the function of Krox20 in postnatal skeletal metabolism.
- To elucidate the mechanisms underlying Krox20's effect on bone mass.
Main Methods:
- Microcomputed tomography (micro-CT) analysis in Krox20(+/-) mice.
- In vivo assessment of bone resorption markers (osteoclast number, C-terminal telopeptides).
- In vitro studies on osteoblast differentiation and preosteoclast cultures.
Main Results:
- Krox20 haploinsufficiency resulted in low bone mass (LBM) in mice.
- LBM was caused by accelerated bone resorption, not reduced bone formation.
- Krox20 deficiency stimulated preosteoclast growth and differentiation, increasing cFms expression and cell-cycle progression.
Conclusions:
- Krox20 acts as an antimitogen in preosteoclasts, inhibiting their proliferation.
- Krox20 haploinsufficiency leads to increased osteoclast activity and LBM.
- Enhancing Krox20 expression in preosteoclasts could be a therapeutic strategy for osteoporosis.
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