Scinovex
articleTop 1% cited

Pathogenic role of Fgf23 in <i>Hyp</i> mice

American Journal of Physiology-Endocrinology and Metabolism · 2006 · Vol. 291(1) · pp. E38–E49

Abstract

Inactivating mutations of the PHEX (phosphate-regulating gene with homologies to endopeptidases on the X chromosome) endopeptidase, the disease-causing gene in X-linked hypophosphatemia (XLH), results in increased circulating levels of fibroblastic growth factor-23 (FGF23), a bone-derived phosphaturic factor. To determine the causal role of FGF23 in XLH, we generated a combined Fgf23-deficient enhanced green fluorescent protein (eGFP) reporter and Phex-deficient Hyp mouse model (Fgf23(+/-)/Hyp). eGFP expression was expressed in osteocytes embedded in bone that exhibited marked upregulation of eGFP in response to Phex deficiency and in CD31-positive cells in bone marrow venules that expressed low eGFP levels independently of Phex. In bone marrow stromal cells (BMSCs) derived from Fgf23(-/-)/Hyp mice, eGFP expression was also selectively increased in osteocyte-like cells within mineralization nodules and detected in low levels in CD31-positive cells. Surprisingly, eGFP expression was not increased in cell surface osteoblasts, indicating that Phex deficiency is necessary but not sufficient for increased Fgf23 expression in the osteoblast lineage. Additional factors, associated with either osteocyte differentiation and/or extracellular matrix, are necessary for Phex deficiency to stimulate Fgf23 gene transcription in bone. Regardless, the deletion of Fgf23 from Hyp mice reversed the hypophosphatemia, abnormal 1,25(OH)(2)D(3) levels, rickets, and osteomalacia associated with Phex deficiency. These results suggest that Fgf23 acts downstream of Phex to cause both the renal and bone phenotypes in Hyp mice.

Parathyroid Disorders and TreatmentsGenetic Syndromes and ImprintingMagnesium in Health and DiseasePHEXHypophosphatemiaOsteocyteHypophosphatemic RicketsEndocrinologyInternal medicineOsteomalaciaOsteoblastBiologyFibroblast growth factor 23

MeSH terms

Fibroblast Growth Factor-23AnimalsBody WeightBone Marrow CellsCalciumCholecalciferolDisease Models, AnimalFemaleFemurFibroblast Growth FactorsGene Expression RegulationHypophosphatemia, FamilialMaleMembrane GlycoproteinsMetalloendopeptidases
Citations
491
FWCI
16.87
field-weighted impact
References
38
Percentile
99%
vs. same field & year
Citations per year
Cited by
The amazing osteocyte
Journal of Bone and Mineral Research · 2010 · 2,184 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.