Iron deficiency drives an autosomal dominant hypophosphatemic rickets (ADHR) phenotype in fibroblast growth factor-23 (Fgf23) knock-in mice
Male
0303 health sciences
Anemia, Iron-Deficiency
Hypophosphatemia
MAP Kinase Signaling System
Mice, Transgenic
Iron Deficiencies
Osteocytes
Protein Structure, Tertiary
Rats
Fibroblast Growth Factors
Fibroblast Growth Factor-23
Mice
03 medical and health sciences
Phenotype
Osteomalacia
Animals
Female
Gene-Environment Interaction
Familial Hypophosphatemic Rickets
Klotho Proteins
Glucuronidase
DOI:
10.1073/pnas.1110905108
Publication Date:
2011-10-18T05:23:13Z
AUTHORS (17)
ABSTRACT
Autosomal dominant hypophosphatemic rickets (ADHR) is unique among the disorders involving Fibroblast growth factor 23 (FGF23) because individuals with R176Q/W and R179Q/W mutations in the FGF23
176
RXXR
179
/S
180
proteolytic cleavage motif can cycle from unaffected status to delayed onset of disease. This onset may occur in physiological states associated with iron deficiency, including puberty and pregnancy. To test the role of iron status in development of the ADHR phenotype, WT and R176Q-Fgf23 knock-in (ADHR) mice were placed on control or low-iron diets. Both the WT and ADHR mice receiving low-iron diet had significantly elevated bone Fgf23 mRNA. WT mice on a low-iron diet maintained normal serum intact Fgf23 and phosphate metabolism, with elevated serum C-terminal Fgf23 fragments. In contrast, the ADHR mice on the low-iron diet had elevated intact and C-terminal Fgf23 with hypophosphatemic osteomalacia. We used in vitro iron chelation to isolate the effects of iron deficiency on Fgf23 expression. We found that iron chelation in vitro resulted in a significant increase in Fgf23 mRNA that was dependent upon Mapk. Thus, unlike other syndromes of elevated FGF23, our findings support the concept that late-onset ADHR is the product of gene–environment interactions whereby the combined presence of an Fgf23-stabilizing mutation and iron deficiency can lead to ADHR.
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