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Vitamin D receptor in chondrocytes promotes osteoclastogenesis and regulates FGF23 production in osteoblasts
Ritsuko Masuyama, … , Roger Bouillon, Geert Carmeliet
Ritsuko Masuyama, … , Roger Bouillon, Geert Carmeliet
Published December 1, 2006
Citation Information: J Clin Invest. 2006;116(12):3150-3159. https://doi.org/10.1172/JCI29463.
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Research Article Bone biology Article has an altmetric score of 1

Vitamin D receptor in chondrocytes promotes osteoclastogenesis and regulates FGF23 production in osteoblasts

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Abstract

Genomic actions induced by 1α25-dihydroxyvitamin D3 [1,25(OH)2D3] are crucial for normal bone metabolism, mainly because they regulate active intestinal calcium transport. To evaluate whether the vitamin D receptor (VDR) has a specific role in growth-plate development and endochondral bone formation, we investigated mice with conditional inactivation of VDR in chondrocytes. Growth-plate chondrocyte development was not affected by the lack of VDR. Yet vascular invasion was impaired, and osteoclast number was reduced in juvenile mice, resulting in increased trabecular bone mass. In vitro experiments confirmed that VDR signaling in chondrocytes directly regulated osteoclastogenesis by inducing receptor activator of NF-κB ligand (RANKL) expression. Remarkably, mineral homeostasis was also affected in chondrocyte-specific VDR-null mice, as serum phosphate and 1,25(OH)2D levels were increased in young mice, in whom growth-plate activity is important. Both in vivo and in vitro analysis indicated that VDR inactivation in chondrocytes reduced the expression of FGF23 by osteoblasts and consequently led to increased renal expression of 1α-hydroxylase and of sodium phosphate cotransporter type IIa. Taken together, our findings provide evidence that VDR signaling in chondrocytes is required for timely osteoclast formation during bone development and for the endocrine action of bone in phosphate homeostasis.

Authors

Ritsuko Masuyama, Ingrid Stockmans, Sophie Torrekens, Riet Van Looveren, Christa Maes, Peter Carmeliet, Roger Bouillon, Geert Carmeliet

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Figure 8

Signaling of 1,25(OH)2D3 in chondrocytes supports FGF23 expression in osteoblasts.

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Signaling of 1,25(OH)2D3 in chondrocytes supports FGF23 expression in os...
(A–D) qRT-PCR analysis of FGF23 mRNA expression in primary osteoblast cultures (A), in E16.5 metatarsal cultures (B), in cocultures of chondrocytes and osteoblasts (C), and in primary osteoblasts cultured in the Transwell system with chondrocytes cultured on the membrane (D), corrected for HPRT mRNA copies. Cultures derived from Cre–VDRfl/fl or Cre+VDRfl/fl mice were treated with 1,25(OH)2D3 (10–8 M) for 48 hours or vehicle. FGF23 mRNA expression in 1,25(OH)2D3-treated metatarsals is depicted as an increase relative to its vehicle-treated contralateral (B). (E) FGF23 protein level was measured in the culture media of the Transwell system after 1,25(OH)2D3 treatment. In the cocultures, only Cre–VDRfl/fl osteoblasts were used whereas the genotype of the chondrocytes varied as indicated. *P < 0.05; **P < 0.005 versus Cre–VDRfl/fl.

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ISSN: 0021-9738 (print), 1558-8238 (online)

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