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Skeletal Phenotype Analysis of a Conditional Stat3 Deletion Mouse Model
Published on: July 3, 2020
High-Phosphate Diet Improved the Skeletal Development of Fam20c-Deficient Mice
Hua Zhang1, Lili Li2, Matthew J Kesterke2
1Department of Biomedical Sciences, Texas A&M University College of Dentistry, Dallas, Texas, USA, hzhang@tamu.edu.
Abstract:
FAM20C (family with sequence similarity 20 - member C) is a protein kinase that phosphorylates secretory proteins, including the proteins that are essential to the formation and mineralization of calcified tissues. Previously, we reported that inactivation of Fam20c in mice led to hypophosphatemic rickets/osteomalacia along with increased circulating fibroblast growth factor 23 (FGF23) levels and dental defects. In this study, we examined whether a high-phosphate (hPi) diet could rescue the skeletal defects in Fam20c-deficient mice. Fam20c conditional knockout (cKO) mice were generated by crossing female Fam20c-floxed mice (Fam20cfl/fl) with male Sox2-Cre;Fam20cfl/+ mice. The pregnant female Fam20cfi/fl mice were fed either a normal or hPi diet until the litters were weaned. The cKO and control offspring were continuously given a normal or hPi diet for 4 weeks after weaning. Plain X-ray radiography, micro-CT, histology, immunohistochemistry (FGF23, DMP1, OPN, and SOX9), and in situ hybridization (type II and type X collagen) analyses were performed to evaluate the effects of an hPi diet on the mouse skeleton. Plain X-ray radiography and micro-CT radiography analyses showed that the hPi diet improved the shape and mineral density of the Fam20c-deficient femurs/tibiae, and rescued the growth plate defects in the long bone. Histology analyses further demonstrated that an hPi diet nearly completely rescued the growth plate-widening defects in the long bone and restored the expanded hypertrophic zone to nearly normal width. These results suggested that the hPi diet significantly improved the skeletal development of the Fam20c-deficient mice, implying that hypophosphatemia partially contributed to the skeletal defects in Fam20c-deficient subjects.
Insights
A high-phosphate diet improved skeletal development in Fam20C-deficient mice, rescuing growth plate defects and bone mineral density. This suggests hypophosphatemia partially caused these skeletal issues.
Area of Science:
- Biochemistry
- Genetics
- Skeletal Biology
Background:
- FAM20C protein kinase is crucial for calcified tissue formation and mineralization.
- FAM20C inactivation in mice causes hypophosphatemic rickets, increased FGF23, and dental defects.
Purpose of the Study:
- To investigate if a high-phosphate diet can rescue skeletal defects in Fam20C-deficient mice.
- To evaluate the impact of dietary phosphate on bone development and mineralization in the absence of functional FAM20C.
Main Methods:
- Generated Fam20C conditional knockout (cKO) mice.
- Administered normal or high-phosphate diets to pregnant dams and weaned offspring.
- Utilized X-ray radiography, micro-CT, histology, immunohistochemistry, and in situ hybridization to assess skeletal phenotypes.
Main Results:
- High-phosphate diet improved femur/tibia shape and mineral density in Fam20C-cKO mice.
- Dietary intervention rescued growth plate defects and restored hypertrophic zone width.
- Skeletal improvements suggest hypophosphatemia partially contributes to Fam20C deficiency-related defects.
Conclusions:
- Dietary phosphate supplementation significantly ameliorates skeletal abnormalities in Fam20C-deficient mice.
- Hypophosphatemia is a key factor in the pathogenesis of skeletal defects observed in Fam20C deficiency.
- Targeting phosphate levels may offer therapeutic potential for related bone disorders.
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