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Published on: December 18, 2019
STAT1 mediates the increased apoptosis and reduced chondrocyte proliferation in mice overexpressing FGF2
1Department of Microbiology, NYU School of Medicine, New York, NY 10016, USA.
Abstract:
Unregulated FGF receptor signaling results in bone malformations that affect both endochondral and intramembranous ossification, and is the basis for several genetic forms of human dwarfism. FGF signaling inhibits chondrocyte proliferation and we have previously shown that the transcription factor STAT1 mediates the growth inhibitory effect of FGF in vitro. We provide genetic evidence that STAT1 is a modulator of the negative regulation of bone growth by FGF in vivo. We crossed Stat1(-/-) mice with a transgenic mouse line overexpressing human FGF2 (TgFGF). TgFGF mice exhibit phenotypes characterized by chondrodysplasia and macrocephaly, which affect endochondral and intramembranous ossification. We found that the chondrodysplasic phenotype of these mice results both from reduced proliferation and increased apoptosis of growth plate chondrocytes. Loss of STAT1 function in TgFGF mice led to a significant correction of the chondrodysplasic phenotype, but did not affect the skull malformations. The reduced proliferation of TgFGF growth plate chondrocytes, as well as their excessive apoptosis, were restored to near-normal levels in the absence of STAT1 function. Unregulated FGF signaling in TgFGF mice also induced apoptosis in calvarial osteoblasts that was not, however, corrected by the absence of STAT1. Detailed analysis of Stat1(-/-) growth plates uncovered a transient phenotype, characterized by an expansion of the proliferative zone and by acceleration of longitudinal bone growth, that attenuated as the animals grew older. These results document an essential role for STAT1 in FGF-mediated regulation of cell growth that is specific to the epiphyseal growth plate.
Insights
Signal transducer and activator of transcription 1 (STAT1) regulates bone growth by inhibiting chondrocyte proliferation. STAT1 deficiency corrects FGF2-induced dwarfism in mice, highlighting its role in skeletal development.
Area of Science:
- Skeletal Biology
- Molecular Genetics
- Endocrinology
Background:
- Unregulated Fibroblast Growth Factor (FGF) receptor signaling causes bone malformations and human dwarfism.
- FGF signaling inhibits chondrocyte proliferation, with STAT1 mediating this effect in vitro.
Purpose of the Study:
- To investigate the in vivo role of STAT1 in modulating FGF-mediated negative regulation of bone growth.
- To determine if STAT1 deficiency corrects skeletal and cranial malformations in a mouse model of FGF2 overexpression.
Main Methods:
- Crossed Stat1-deficient mice (Stat1(-/-)) with transgenic mice overexpressing human FGF2 (TgFGF).
- Phenotypic analysis of chondrodysplasia and macrocephaly, assessing growth plate chondrocyte proliferation and apoptosis.
- Evaluation of calvarial osteoblast apoptosis and longitudinal bone growth.
Main Results:
- Loss of STAT1 function significantly corrected the chondrodysplasia in TgFGF mice by restoring chondrocyte proliferation and reducing apoptosis.
- STAT1 deficiency did not affect FGF2-induced macrocephaly or calvarial osteoblast apoptosis.
- Stat1(-/-) mice exhibited a transient phenotype of accelerated longitudinal bone growth and expanded proliferative zones.
Conclusions:
- STAT1 is essential for the negative regulation of chondrocyte proliferation and survival in the epiphyseal growth plate.
- STAT1 plays a critical, growth plate-specific role in FGF-mediated regulation of skeletal development.
- STAT1 is a key mediator of FGF-induced chondrodysplasia but not cranial malformations.

