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Deregulated Renal Calcium and Phosphate Transport during Experimental Kidney Failure
Wilco P Pulskens1,2, Melissa Verkaik3, Fareeba Sheedfar1
1Dept. of Physiology, Radboud University Medical Center, Nijmegen, The Netherlands.
Abstract:
Impaired mineral homeostasis and inflammation are hallmarks of chronic kidney disease (CKD), yet the underlying mechanisms of electrolyte regulation during CKD are still unclear. Here, we applied two different murine models, partial nephrectomy and adenine-enriched dietary intervention, to induce kidney failure and to investigate the subsequent impact on systemic and local renal factors involved in Ca(2+) and Pi regulation. Our results demonstrated that both experimental models induce features of CKD, as reflected by uremia, and elevated renal neutrophil gelatinase-associated lipocalin (NGAL) expression. In our model kidney failure was associated with polyuria, hypercalcemia and elevated urinary Ca(2+) excretion. In accordance, CKD augmented systemic PTH and affected the FGF23-αklotho-vitamin-D axis by elevating circulatory FGF23 levels and reducing renal αklotho expression. Interestingly, renal FGF23 expression was also induced by inflammatory stimuli directly. Renal expression of Cyp27b1, but not Cyp24a1, and blood levels of 1,25-dihydroxy vitamin D3 were significantly elevated in both models. Furthermore, kidney failure was characterized by enhanced renal expression of the transient receptor potential cation channel subfamily V member 5 (TRPV5), calbindin-D28k, and sodium-dependent Pi transporter type 2b (NaPi2b), whereas the renal expression of sodium-dependent Pi transporter type 2a (NaPi2a) and type 3 (PIT2) were reduced. Together, our data indicates two different models of experimental kidney failure comparably associate with disturbed FGF23-αklotho-vitamin-D signalling and a deregulated electrolyte homeostasis. Moreover, this study identifies local tubular, possibly inflammation- or PTH- and/or FGF23-associated, adaptive mechanisms, impacting on Ca(2+)/Pi homeostasis, hence enabling new opportunities to target electrolyte disturbances that emerge as a consequence of CKD development.
Insights
Chronic kidney disease (CKD) impairs calcium and phosphate balance. This study reveals how CKD disrupts FGF23-αklotho-vitamin D signaling and renal electrolyte transporters, offering new therapeutic targets.
Area of Science:
- Nephrology
- Endocrinology
- Molecular Biology
Background:
- Chronic kidney disease (CKD) is characterized by impaired mineral homeostasis and inflammation.
- The precise mechanisms governing electrolyte regulation in CKD remain incompletely understood.
Purpose of the Study:
- To investigate the impact of experimental kidney failure on systemic and local renal factors regulating calcium (Ca2+) and phosphate (Pi) homeostasis.
- To elucidate the role of the FGF23-αklotho-vitamin D axis and renal electrolyte transporters in CKD.
Main Methods:
- Two murine models of kidney failure were utilized: partial nephrectomy and adenine-enriched diet.
- Systemic and renal factors involved in Ca2+ and Pi regulation were analyzed, including hormone levels, gene expression, and protein markers.
- Key markers assessed included neutrophil gelatinase-associated lipocalin (NGAL), parathyroid hormone (PTH), FGF23, αklotho, vitamin D metabolites, and renal electrolyte transporters (TRPV5, calbindin-D28k, NaPi2b, NaPi2a, PIT2).
Main Results:
- Both models successfully induced CKD features, including uremia and elevated renal NGAL.
- Kidney failure was associated with polyuria, hypercalcemia, increased urinary Ca2+ excretion, augmented systemic PTH, elevated FGF23, and reduced renal αklotho.
- Renal expression of Cyp27b1 and 1,25-dihydroxy vitamin D3 were increased, while TRPV5, calbindin-D28k, and NaPi2b were enhanced, and NaPi2a and PIT2 were reduced.
Conclusions:
- Experimental kidney failure comparably disrupts FGF23-αklotho-vitamin D signaling and electrolyte homeostasis.
- Local tubular adaptive mechanisms, potentially influenced by inflammation, PTH, or FGF23, contribute to the dysregulation of Ca2+/Pi homeostasis in CKD.
- These findings suggest novel therapeutic strategies for targeting electrolyte disturbances in CKD.
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