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Osteocyte Regulation of Phosphate Homeostasis and Bone Mineralization Underlies the Pathophysiology of the Heritable Disorders of Rickets and Osteomalacia

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Journal Bone
Date 2013 Feb 14
PMID 23403405
Citations 42
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Abstract

Although recent studies have established that osteocytes function as secretory cells that regulate phosphate metabolism, the biomolecular mechanism(s) underlying these effects remain incompletely defined. However, investigations focusing on the pathogenesis of X-linked hypophosphatemia (XLH), autosomal dominant hypophosphatemic rickets (ADHR), and autosomal recessive hypophosphatemic rickets (ARHR), heritable disorders characterized by abnormal renal phosphate wasting and bone mineralization, have clearly implicated FGF23 as a central factor in osteocytes underlying renal phosphate wasting, documented new molecular pathways regulating FGF23 production, and revealed complementary abnormalities in osteocytes that regulate bone mineralization. The seminal observations leading to these discoveries were the following: 1) mutations in FGF23 cause ADHR by limiting cleavage of the bioactive intact molecule, at a subtilisin-like protein convertase (SPC) site, resulting in increased circulating FGF23 levels and hypophosphatemia; 2) mutations in DMP1 cause ARHR, not only by increasing serum FGF23, albeit by enhanced production and not limited cleavage, but also by limiting production of the active DMP1 component, the C-terminal fragment, resulting in dysregulated production of DKK1 and β-catenin, which contributes to impaired bone mineralization; and 3) mutations in PHEX cause XLH both by altering FGF23 proteolysis and production and causing dysregulated production of DKK1 and β-catenin, similar to abnormalities in ADHR and ARHR, but secondary to different central pathophysiological events. These discoveries indicate that ADHR, XLH, and ARHR represent three related heritable hypophosphatemic diseases that arise from mutations in, or dysregulation of, a single common gene product, FGF23 and, in ARHR and XLH, complimentary DMP1 and PHEX directed events that contribute to abnormal bone mineralization.

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References
1.
Benet-Pages A, Lorenz-Depiereux B, Zischka H, White K, Econs M, Strom T . FGF23 is processed by proprotein convertases but not by PHEX. Bone. 2004; 35(2):455-62. DOI: 10.1016/j.bone.2004.04.002. View

2.
Liu S, Zhou J, Tang W, Jiang X, Rowe D, Quarles L . Pathogenic role of Fgf23 in Hyp mice. Am J Physiol Endocrinol Metab. 2006; 291(1):E38-49. DOI: 10.1152/ajpendo.00008.2006. View

3.
Shimada T, Muto T, Urakawa I, Yoneya T, Yamazaki Y, Okawa K . Mutant FGF-23 responsible for autosomal dominant hypophosphatemic rickets is resistant to proteolytic cleavage and causes hypophosphatemia in vivo. Endocrinology. 2002; 143(8):3179-82. DOI: 10.1210/endo.143.8.8795. View

4.
Ye L, Mishina Y, Chen D, Huang H, Dallas S, Dallas M . Dmp1-deficient mice display severe defects in cartilage formation responsible for a chondrodysplasia-like phenotype. J Biol Chem. 2004; 280(7):6197-203. PMC: 2647591. DOI: 10.1074/jbc.M412911200. View

5.
Molloy S, Bresnahan P, Leppla S, Klimpel K, Thomas G . Human furin is a calcium-dependent serine endoprotease that recognizes the sequence Arg-X-X-Arg and efficiently cleaves anthrax toxin protective antigen. J Biol Chem. 1992; 267(23):16396-402. View