Acid-Base Status Determines the Renal Expression of Ca2+ and Mg2+ Transport Proteins
- 1 March 2006
- journal article
- research article
- Published by Wolters Kluwer Health in Journal of the American Society of Nephrology
- Vol. 17 (3) , 617-626
- https://doi.org/10.1681/asn.2005070732
Abstract
Chronic metabolic acidosis results in renal Ca2+ and Mg2+ wasting, whereas chronic metabolic alkalosis is known to exert the reverse effects. It was hypothesized that these adaptations are mediated at least in part by the renal Ca2+ and Mg2+ transport proteins. The aim of this study, therefore, was to determine the effect of systemic acid-base status on renal expression of the epithelial Ca2+ channel TRPV5, the Ca2+-binding protein calbindin-D28K, and the epithelial Mg2+ channel TRPM6 in relation to Ca2+ and Mg2+ excretion. Chronic metabolic acidosis that was induced by NH4Cl loading or administration of the carbonic anhydrase inhibitor acetazolamide for 6 d enhanced calciuresis accompanied by decreased renal TRPV5 and calbindin-D28K mRNA and protein abundance in wild-type mice. In contrast, metabolic acidosis did not affect Ca2+ excretion in TRPV5 knockout (TRPV5−/−) mice, in which active Ca2+ reabsorption is effectively abolished. This demonstrates that downregulation of renal Ca2+ transport proteins is responsible for the hypercalciuria. Conversely, chronic metabolic alkalosis that was induced by NaHCO3 administration for 6 d increased the expression of Ca2+ transport proteins accompanied by diminished urine Ca2+ excretion in wild-type mice. However, this Ca2+-sparing action persisted in TRPV5−/− mice, suggesting that additional mechanisms apart from upregulation of active Ca2+ transport contribute to the hypocalciuria. Furthermore, chronic metabolic acidosis decreased renal TRPM6 expression, increased Mg2+ excretion, and decreased serum Mg2+ concentration, whereas chronic metabolic alkalosis resulted in the exact opposite effects. In conclusion, these data suggest that regulation of Ca2+ and Mg2+ transport proteins contributes importantly to the effects of acid-base status on renal divalent handling.Keywords
This publication has 44 references indexed in Scilit:
- pH dependence of extracellular calcium sensing receptor activity determined by a novel techniqueKidney International, 2005
- Downregulation of Ca2+ and Mg2+ Transport Proteins in the Kidney Explains Tacrolimus (FK506)-Induced Hypercalciuria and HypomagnesemiaJournal of the American Society of Nephrology, 2004
- Proton-sensing G-protein-coupled receptorsNature, 2003
- 1,25-Dihydroxyvitamin D3-Independent Stimulatory Effect of Estrogen on the Expression of ECaC1 in the KidneyJournal of the American Society of Nephrology, 2002
- Paracellin-1 is critical for magnesium and calcium reabsorption in the human thick ascending limb of HenleKidney International, 2001
- Stimulation by in Vivo and in VitroMetabolic Acidosis of Expression of rBSC-1, the Na+-K+(NH4+)-2Cl−Cotransporter of the Rat Medullary Thick Ascending LimbJournal of Biological Chemistry, 1998
- Effects of acetazolamide on Na+-HCO-3 cotransport in basolateral membrane vesicles isolated from rabbit renal cortex.Journal of Clinical Investigation, 1989
- Potassium bicarbonate, but not sodium bicarbonate, reduces urinary calcium excretion and improves calcium balance in healthy menKidney International, 1989
- Responses to Hydrochlorothiazide and Acetazolamide in Patients with Calcium StonesNew England Journal of Medicine, 1980
- Effects of metabolic acidosis and alkalosis on sodium and calcium transport in the dog kidneyKidney International, 1979