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Increased PHOSPHO1 expression mediates cortical bone mineral density in renal osteodystrophy
Shun-Neng Hsu1,2, Louise A Stephen1, Scott Dillon1
1The Roslin Institute and Royal (Dick) School of Veterinary Studies, University of Edinburgh, Easter Bush, Midlothian, UK.
Abstract:
Patients with advanced chronic kidney disease (CKD) often present with skeletal abnormalities, a condition known as renal osteodystrophy (ROD). While tissue non-specific alkaline phosphatase (TNAP) and PHOSPHO1 are critical for bone mineralization, their role in the etiology of ROD is unclear. To address this, ROD was induced in both WT and Phospho1 knockout (P1KO) mice through dietary adenine supplementation. The mice presented with hyperphosphatemia, hyperparathyroidism, and elevated levels of FGF23 and bone turnover markers. In particular, we noted that in CKD mice, bone mineral density (BMD) was increased in cortical bone (P < 0.05) but decreased in trabecular bone (P < 0.05). These changes were accompanied by decreased TNAP (P < 0.01) and increased PHOSPHO1 (P < 0.001) expression in WT CKD bones. In P1KO CKD mice, the cortical BMD phenotype was rescued, suggesting that the increased cortical BMD of CKD mice was driven by increased PHOSPHO1 expression. Other structural parameters were also improved in P1KO CKD mice. We further investigated the driver of the mineralization defects, by studying the effects of FGF23, PTH, and phosphate administration on PHOSPHO1 and TNAP expression by primary murine osteoblasts. We found both PHOSPHO1 and TNAP expressions to be downregulated in response to phosphate and PTH. The in vitro data suggest that the TNAP reduction in CKD-MBD is driven by the hyperphosphatemia and/or hyperparathyroidism noted in these mice, while the higher PHOSPHO1 expression may be a compensatory mechanism. Increased PHOSPHO1 expression in ROD may contribute to the disordered skeletal mineralization characteristic of this progressive disorder.
Insights
This study reveals that increased PHOSPHO1 expression contributes to abnormal bone mineralization in chronic kidney disease (CKD) patients with renal osteodystrophy (ROD). Rescuing PHOSPHO1 levels improved bone density in mouse models.
Area of Science:
- Bone Biology
- Mineral Metabolism
- Renal Osteodystrophy
Background:
- Advanced chronic kidney disease (CKD) frequently causes skeletal abnormalities, termed renal osteodystrophy (ROD).
- Tissue non-specific alkaline phosphatase (TNAP) and PHOSPHO1 are crucial for bone mineralization, but their specific roles in ROD pathogenesis remain unclear.
Purpose of the Study:
- To investigate the roles of TNAP and PHOSPHO1 in the development of ROD.
- To elucidate the molecular mechanisms underlying skeletal mineralization defects in CKD.
Main Methods:
- Rodent models of CKD were established using dietary adenine supplementation in wild-type (WT) and Phospho1 knockout (P1KO) mice.
- Bone mineral density (BMD), bone turnover markers, and gene expression of TNAP and PHOSPHO1 were analyzed.
- Primary murine osteoblasts were treated with FGF23, parathyroid hormone (PTH), and phosphate to assess effects on PHOSPHO1 and TNAP expression.
Main Results:
- CKD mice exhibited hyperphosphatemia, hyperparathyroidism, and altered BMD (increased cortical, decreased trabecular).
- WT CKD bones showed decreased TNAP and increased PHOSPHO1 expression; P1KO CKD mice had rescued cortical BMD.
- In vitro studies indicated that phosphate and PTH downregulated both PHOSPHO1 and TNAP expression in osteoblasts.
Conclusions:
- Increased PHOSPHO1 expression in CKD mice contributes to elevated cortical bone mineral density.
- The observed TNAP reduction in CKD-related mineral and bone disorder (CKD-MBD) is likely driven by hyperphosphatemia and/or hyperparathyroidism.
- Elevated PHOSPHO1 may represent a compensatory response to disordered mineralization in ROD.
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