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Updated: Apr 21, 2026

Skeletal Phenotype Analysis of a Conditional Stat3 Deletion Mouse Model
Published on: July 3, 2020
Knockout of nuclear high molecular weight FGF2 isoforms in mice modulates bone and phosphate homeostasis
Collin Homer-Bouthiette1, Thomas Doetschman2, Liping Xiao3
1From the Department of Medicine, Institute for Systems Genomics, University of Connecticut Health Center, Farmington, Connecticut 06030 and.
Abstract:
We previously reported that targeted overexpression of the fibroblast growth factor 2 (FGF2) high molecular weight (HMW) isoforms in osteoblastic lineage cells in mice resulted in phenotypic changes, including dwarfism, rickets, osteomalacia, hypophosphatemia, increased serum parathyroid hormone, and increased levels of the phosphatonin FGF23 in serum and bone. This study examined the effects of genetically knocking out the FGF2HMW isoforms (HMWKO) on bone and phosphate homeostasis. HMWKO mice were not dwarfed and had significantly increased bone mineral density and bone mineral content in femurs and lumbar vertebrae when compared with the wild-type (WT) littermates. Micro-computed tomography analysis of femurs revealed increased trabecular bone volume, thickness, number, and connective tissue density with decreased trabecular spacing compared with WT. In addition, there was significantly decreased cortical porosity and increased cortical thickness and sub-periosteal area in femurs of HMWKO. Histomorphometric analysis demonstrated increased osteoblast activity and diminished osteoclast activity in the HMWKO. In vitro bone marrow stromal cell cultures showed there was a significant increase in alkaline phosphatase-positive colony number at 1 week in HMWKO. At 3 weeks of culture, the mineralized area was also significantly increased. There was increased expression of osteoblast differentiation marker genes and reduced expression of genes associated with impaired mineralization, including a significant reduction in Fgf23 and Sost mRNA. Normal serum phosphate and parathyroid hormone were observed in HMWKO mice. This study demonstrates a significant negative impact of HMWFGF2 on biological functions in bone and phosphate homeostasis in mice.
Insights
Removing high molecular weight fibroblast growth factor 2 (FGF2) isoforms in mice improves bone density and mineral content. This genetic knockout enhances osteoblast activity and bone formation, positively impacting skeletal health.
Area of Science:
- Skeletal Biology
- Endocrinology
- Mineral Metabolism
Background:
- Fibroblast growth factor 2 (FGF2) high molecular weight (HMW) isoforms are implicated in bone homeostasis.
- Previous studies showed FGF2 HMW overexpression causes dwarfism and skeletal abnormalities.
Purpose of the Study:
- To investigate the skeletal and phosphate homeostasis effects of genetically knocking out FGF2 HMW isoforms (HMWKO).
Main Methods:
- Comparative analysis of HMWKO mice and wild-type (WT) littermates.
- Utilized micro-computed tomography and histomorphometric analysis for bone structure and cell activity.
- In vitro studies on bone marrow stromal cell cultures assessed osteoblast differentiation and mineralization.
Main Results:
- HMWKO mice exhibited increased bone mineral density, content, and improved bone structure (trabecular and cortical).
- Histomorphometry revealed heightened osteoblast and reduced osteoclast activity in HMWKO mice.
- In vitro cultures showed increased osteogenic potential and expression of bone formation markers, with reduced Fgf23 and Sost mRNA.
Conclusions:
- High molecular weight FGF2 isoforms negatively impact bone and phosphate homeostasis.
- Genetic knockout of HMW FGF2 isoforms promotes bone formation and improves skeletal integrity.
- HMW FGF2 plays a critical role in regulating bone metabolism and mineral balance.
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