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Updated: Jul 13, 2026

Cytosolic Calcium Measurements in Renal Epithelial Cells by Flow Cytometry
Published on: October 28, 2014
Effects of furosemide on renal calcium handling
Chien-Te Lee1, Hung-Chun Chen, Li-Wen Lai
1Division of Nephrology, Department of Medicine, Chang-Gung Memorial Hospital, Kaohsiung Medical Center, Chang-Gung University College of Medicine, Kaohsiung, Taiwan.
Abstract:
Furosemide is a loop diuretic agent that has been used to treat hypercalcemia because it increases renal calcium excretion. The effect of furosemide on calcium transport molecules in distal tubules has yet to be investigated. We conducted studies to examine the effects of furosemide on renal calcium excretion and expression of calcium transport molecules in mice. Mice were administered with a single dose of furosemide (15 mg/kg) and examined 4 h later or were given twice-daily furosemide injections for 3 days. To evaluate the effects of volume depletion, drinking water was supplemented with salt. Our results showed that, in acute experiments, furosemide enhanced urinary calcium excretion, which was associated with a significant increase in mRNA levels of TRPV5, TRPV6, and calbindin-D28k but not calbindin-D9k as measured by real-time PCR (TRPV5 and TRPV6 are transient receptor potential vanilloid 5 and 6). Chronic furosemide administration induced three- to fourfold increases in urinary calcium excretion and elevated mRNA levels of TRPV5, TRPV6, calbindin-D28k, and calbindin-D9k without or with salt supplement. Similar upregulation of calcium transport molecules was observed in mice with gentamicin-induced hypercalciuria. Coadministration of chlorothiazide decreased furosemide-induced calciuria, either acutely or chronically, although still accompanied by upregulation of these transport molecules. Immunofluorescent staining studies revealed comparably increased protein abundance in TRPV5 and calbindin-D28k. We conclude that furosemide treatment enhances urinary calcium excretion. Increased abundance of calcium transport molecules in the distal convoluted tubule represents a solute load-dependent effect in response to increased calcium delivery and serves as a compensatory adaptation in the downstream segment.
Insights
Furosemide increases urinary calcium excretion by upregulating calcium transport molecules like TRPV5 and calbindin-D28k in mouse kidneys. This effect is dose-dependent and represents a compensatory adaptation to increased calcium delivery.
Area of Science:
- Nephrology
- Renal Physiology
- Molecular Biology
Background:
- Furosemide, a loop diuretic, is known to increase renal calcium excretion.
- The precise mechanisms by which furosemide influences calcium transport molecules in the distal tubules remain unclear.
Purpose of the Study:
- To investigate the effects of furosemide on renal calcium excretion.
- To examine the impact of furosemide on the expression of calcium transport molecules in mouse distal tubules.
Main Methods:
- Mice were treated with single or multiple doses of furosemide.
- Real-time PCR and immunofluorescent staining were used to measure mRNA and protein levels of calcium transport molecules.
- Urinary calcium excretion was quantified.
Main Results:
- Furosemide significantly enhanced urinary calcium excretion in both acute and chronic treatment models.
- mRNA levels of TRPV5, TRPV6, and calbindin-D28k were upregulated by furosemide.
- Protein abundance of TRPV5 and calbindin-D28k also increased, suggesting enhanced calcium reabsorption capacity.
Conclusions:
- Furosemide treatment effectively increases urinary calcium excretion.
- The observed upregulation of calcium transport molecules in the distal convoluted tubule is a solute load-dependent compensatory adaptation.
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