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Updated: May 13, 2026

Single-channel Analysis and Calcium Imaging in the Podocytes of the Freshly Isolated Glomeruli
Published on: June 27, 2015
TRP channels as therapeutic targets in kidney disease and hypertension
Paolo Menè1, Giorgio Punzo, Nicola Pirozzi
1Department of Clinical and Molecular Medicine, Sapienza University of Rome, School of Medicine and Psychology, Rome, Italy. Paolo.Mene@uniroma1.it
Abstract:
The Drosophila trp homologue Transient Receptor Potential (TRP) cation channels are ubiquitous in most species and cell types. The functional TRP subclasses TRPC, TRPV and TRPP gate Ca2+ and other cations in mammalian tissues, including the kidney. It is now clear that TRP channels play an important role in renal physiology and in certain genetic disorders of the kidney. Hence, there is considerable interest in targeting mutated or dysfunctional TRP channels in an effort to treat such diseases. Transcellular epithelial cell Ca2+ reabsorption occurs in the distal tubule via luminal TRPV5/V6 channels. Indeed, TRPV5 KO mice display phenotypic defects of renal disease, including hypercalciuria and impaired bone mineral density. Similar to Ca2+, Mg2+ transcellular reabsorption occurs in the distal convoluted tubule via apical TRPM6/TRPM7 channels. TRPC6 is a component of the glomerular podocyte "slit diaphragm" and its autosomic dominant mutation has been linked to a familial, steroid-resistant form of nephrotic syndrome. A more common inherited disorder of the tubular epithelium, autosomal dominant polycystic kidney disease (ADPKD), is at least in part related to mutation of polycystin 2 (PC2), a protein encoded by the PKD2 gene. PC2 is now identified as TRPP2, a Ca(2+)-permeable non-selective cation channel located on the cilia of tubular epithelial cells. TRP-related ion transport may also play a role in the pathogenesis of arterial systemic and/or pulmonary hypertension through regulation of vascular smooth muscle contraction, renal perfusion/hemodynamics, as well as the total body balance of divalent cations. Thus, multiple renal TRP channels are potential targets for pharmacological intervention aimed at preventing or attenuating the burden of chronic kidney disease.
Insights
Transient Receptor Potential (TRP) channels are crucial for kidney function and ion transport. Targeting these renal TRP channels offers potential therapeutic strategies for chronic kidney diseases.
Area of Science:
- Physiology
- Molecular Biology
- Nephrology
Background:
- Transient Receptor Potential (TRP) cation channels are vital for cellular function across species.
- Specific TRP subclasses (TRPC, TRPV, TRPP) are expressed in mammalian kidneys, regulating ion transport.
- Dysfunctional TRP channels are implicated in various kidney diseases, highlighting their therapeutic potential.
Purpose of the Study:
- To review the role of TRP channels in renal physiology and disease.
- To explore the potential of targeting TRP channels for treating kidney disorders.
- To emphasize TRP channels as pharmacological targets for chronic kidney disease.
Main Methods:
- Literature review of studies on TRP channels in renal function and disease.
- Analysis of genetic mutations and their association with kidney pathologies.
- Examination of TRP channel involvement in ion reabsorption and cellular processes.
Main Results:
- TRPV5/TRPV6 channels mediate epithelial calcium reabsorption; their dysfunction causes hypercalciuria.
- TRPM6/TRPM7 channels are essential for magnesium reabsorption in the distal tubules.
- TRPC6 mutations link to nephrotic syndrome, and TRPP2 (PC2) mutations are involved in autosomal dominant polycystic kidney disease (ADPKD).
Conclusions:
- Multiple TRP channel subclasses play critical roles in kidney function, including ion homeostasis and filtration.
- TRP channels are implicated in the pathogenesis of inherited and acquired kidney diseases.
- Targeting renal TRP channels presents a promising avenue for developing novel therapies for chronic kidney disease.
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