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Updated: May 9, 2026

Quantitating Iron Transport Across the Mouse Placenta In Vivo Using Nonradioactive Iron Isotopes
Published on: May 10, 2022
Neonatal iron deficiency causes abnormal phosphate metabolism by elevating FGF23 in normal and ADHR mice
Erica L Clinkenbeard1, Emily G Farrow, Lelia J Summers
1Department of Medical and Molecular Genetics, Indiana University School of Medicine, Indianapolis, IN, USA.
Insights
Iron deficiency in newborns can disrupt phosphate regulation and skeletal development by affecting FGF23 levels. This study shows iron and oxygen metabolism are key factors in neonatal bone health.
Area of Science:
- Endocrinology
- Mineral Metabolism
- Skeletal Biology
Background:
- Fibroblast growth factor 23 (FGF23) gain of function mutations cause autosomal dominant hypophosphatemic rickets (ADHR).
- Iron deficiency and FGF23 mutations in adult mice mimic late-onset ADHR, suggesting a role for iron in phosphate homeostasis.
Purpose of the Study:
- To investigate the impact of iron deficiency on phosphate handling and FGF23 regulation in neonatal mice.
- To determine if hypoxia, a consequence of iron deficiency, independently affects FGF23 expression.
Main Methods:
- Neonatal wild-type (WT) and ADHR mice from mothers on control or iron-deficient diets were studied.
- Serum phosphate, FGF23 levels, bone FGF23 mRNA, and vitamin D metabolites were analyzed.
- Hypoxia was tested in vitro and in vivo for its effect on FGF23.
Main Results:
- Iron-deficient pups (both WT and ADHR) exhibited hypophosphatemia and widened growth plates.
- Elevated bone FGF23 mRNA and serum intact FGF23 were observed in iron-deficient pups, with ADHR mice showing a greater effect.
- Iron deficiency altered vitamin D metabolism, and hypoxia was found to stimulate FGF23 production.
Conclusions:
- Neonatal iron deficiency significantly impacts FGF23 levels and phosphate regulation in both WT and ADHR mice.
- Hypoxia independently stimulates FGF23, suggesting a dual mechanism for disturbed phosphate homeostasis.
- Disturbances in iron and oxygen metabolism during neonatal life may adversely affect skeletal development via FGF23 signaling.
Abstract:
Fibroblast growth factor 23 (FGF23) gain of function mutations can lead to autosomal dominant hypophosphatemic rickets (ADHR) disease onset at birth, or delayed onset following puberty or pregnancy. We previously demonstrated that the combination of iron deficiency and a knock-in R176Q FGF23 mutation in mature mice induced FGF23 expression and hypophosphatemia that paralleled the late-onset ADHR phenotype. Because anemia in pregnancy and in premature infants is common, the goal of this study was to test whether iron deficiency alters phosphate handling in neonatal life. Wild-type (WT) and ADHR female breeder mice were provided control or iron-deficient diets during pregnancy and nursing. Iron-deficient breeders were also made iron replete. Iron-deficient WT and ADHR pups were hypophosphatemic, with ADHR pups having significantly lower serum phosphate (p < 0.01) and widened growth plates. Both genotypes increased bone FGF23 mRNA (>50 fold; p < 0.01). WT and ADHR pups receiving low iron had elevated intact serum FGF23; ADHR mice were affected to a greater degree (p < 0.01). Iron-deficient mice also showed increased Cyp24a1 and reduced Cyp27b1, and low serum 1,25-dihydroxyvitamin D (1,25D). Iron repletion normalized most abnormalities. Because iron deficiency can induce tissue hypoxia, oxygen deprivation was tested as a regulator of FGF23, and was shown to stimulate FGF23 mRNA in vitro and serum C-terminal FGF23 in normal rats in vivo. These studies demonstrate that FGF23 is modulated by iron status in young WT and ADHR mice and that hypoxia independently controls FGF23 expression in situations of normal iron. Therefore, disturbed iron and oxygen metabolism in neonatal life may have important effects on skeletal function and structure through FGF23 activity on phosphate regulation.
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