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Polycystin-1 dysfunction impairs electrolyte and water handling in a renal precystic mouse model for ADPKD
Eric H J Verschuren1, Sami G Mohammed1, Wouter N Leonhard2
1Department of Physiology, Radboud Institute for Molecular Life Sciences, Radboud University Medical Center , Nijmegen , The Netherlands.
Insights
Polycystin-1 (PC1) dysfunction impairs kidney electrolyte handling, causing low serum magnesium, calcium, and sodium levels. This study reveals PC1
Area of Science:
- Nephrology
- Molecular Biology
- Genetics
Background:
- Autosomal dominant polycystic kidney disease (ADPKD) is linked to mutations in the PKD1 gene, which encodes polycystin-1 (PC1).
- The role of PC1 in renal electrolyte homeostasis has not been fully elucidated, especially in the early stages of ADPKD before cyst formation.
Purpose of the Study:
- To investigate the function of PC1 in renal electrolyte handling in a precystic ADPKD model.
- To determine the impact of PC1 deficiency on serum and urinary electrolyte levels and the expression of key renal transporters.
Main Methods:
- Utilized inducible kidney-specific Pkd1 knockout mice (iKsp-Pkd1-/-) to model precystic ADPKD.
- Measured serum and urinary levels of electrolytes (Mg2+, Ca2+, Na+, Pi).
- Analyzed gene expression of electrolyte and water transporters in different kidney segments (TAL, DCT, CNT, PT, CD).
Main Results:
- iKsp-Pkd1-/- mice exhibited significantly lower serum Mg2+, Ca2+, Na+, and Pi compared to controls.
- These mice showed evidence of renal wasting for Mg2+, Ca2+, and Pi.
- Downregulation of key electrolyte reabsorption genes in the thick ascending limb, distal convoluted tubule, and connecting tubule was observed, alongside a water reabsorption defect.
Conclusions:
- PC1 plays a crucial role in regulating renal magnesium, calcium, and water handling.
- PC1 dysfunction leads to systemic electrolyte imbalances, characterized by hypoelectrolytemia.
- These findings highlight PC1's importance in maintaining kidney electrolyte balance beyond its known role in cystogenesis.
Abstract:
The PKD1 gene encodes polycystin-1 (PC1), a mechanosensor triggering intracellular responses upon urinary flow sensing in kidney tubular cells. Mutations in PKD1 lead to autosomal dominant polycystic kidney disease (ADPKD). The involvement of PC1 in renal electrolyte handling remains unknown since renal electrolyte physiology in ADPKD patients has only been characterized in cystic ADPKD. We thus studied the renal electrolyte handling in inducible kidney-specific Pkd1 knockout (iKsp- Pkd1-/-) mice manifesting a precystic phenotype. Serum and urinary electrolyte determinations indicated that iKsp- Pkd1-/- mice display reduced serum levels of magnesium (Mg2+), calcium (Ca2+), sodium (Na+), and phosphate (Pi) compared with control ( Pkd1+/+) mice and renal Mg2+, Ca2+, and Pi wasting. In agreement with these electrolyte disturbances, downregulation of key genes for electrolyte reabsorption in the thick ascending limb of Henle's loop (TA;, Cldn16, Kcnj1, and Slc12a1), distal convoluted tubule (DCT; Trpm6 and Slc12a3) and connecting tubule (CNT; Calb1, Slc8a1, and Atp2b4) was observed in kidneys of iKsp- Pkd1-/- mice compared with controls. Similarly, decreased renal gene expression of markers for TAL ( Umod) and DCT ( Pvalb) was observed in iKsp- Pkd1-/- mice. Conversely, mRNA expression levels in kidney of genes encoding solute and water transporters in the proximal tubule ( Abcg2 and Slc34a1) and collecting duct ( Aqp2, Scnn1a, and Scnn1b) remained comparable between control and iKsp- Pkd1-/- mice, although a water reabsorption defect was observed in iKsp- Pkd1-/- mice. In conclusion, our data indicate that PC1 is involved in renal Mg2+, Ca2+, and water handling and its dysfunction, resulting in a systemic electrolyte imbalance characterized by low serum electrolyte concentrations.
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