Related Experiment Video
Updated: Feb 10, 2026

Single-channel Analysis and Calcium Imaging in the Podocytes of the Freshly Isolated Glomeruli
Published on: June 27, 2015
A NOX4/TRPC6 Pathway in Podocyte Calcium Regulation and Renal Damage in Diabetic Kidney Disease
Daria V Ilatovskaya1, Gregory Blass1, Oleg Palygin1
1Department of Physiology, Medical College of Wisconsin, Milwaukee, Wisconsin.
Abstract:
Background Loss of glomerular podocytes is an indicator of diabetic kidney disease (DKD). The damage to these cells has been attributed in part to elevated intrarenal oxidative stress. The primary source of the renal reactive oxygen species, particularly H2O2, is NADPH oxidase 4 (NOX4). We hypothesized that NOX4-derived H2O2 contributes to podocyte damage in DKD via elevation of podocyte calcium.Methods We used Dahl salt-sensitive (SS) rats with a null mutation for the Nox4 gene (SSNox4-/-) and mice with knockout of the nonselective calcium channel TRPC6 or double knockout of TRPC5 and TRPC6. We performed whole animal studies and used biosensor measurements, electron microscopy, electrophysiology, and live calcium imaging experiments to evaluate the contribution of this pathway to the physiology of the podocytes in freshly isolated glomeruli.Results Upon induction of type 1 diabetes with streptozotocin, SSNox4-/- rats exhibited significantly lower basal intracellular Ca2+ levels in podocytes and less DKD-associated damage than SS rats did. Furthermore, the angiotensin II-elicited calcium flux was blunted in glomeruli isolated from diabetic SSNox4-/- rats compared with that in glomeruli from diabetic SS rats. H2O2 stimulated TRPC-dependent calcium influx in podocytes from wild-type mice, but this influx was blunted in podocytes from Trpc6-knockout mice and, in a similar manner, in podocytes from Trpc5/6 double-knockout mice. Finally, electron microscopy revealed that podocytes of glomeruli isolated from Trpc6-knockout or Trpc5/6 double-knockout mice were protected from damage induced by H2O2 to the same extent.Conclusions These data reveal a novel signaling mechanism involving NOX4 and TRPC6 in podocytes that could be pharmacologically targeted to abate the development of DKD.
Insights
NADPH oxidase 4 (NOX4) and TRPC6 channels contribute to diabetic kidney disease (DKD) by increasing calcium in podocytes. Inhibiting this pathway may protect against DKD progression.
Area of Science:
- Nephrology
- Molecular Biology
- Oxidative Stress Research
Background:
- Diabetic kidney disease (DKD) is characterized by glomerular podocyte loss.
- Elevated intrarenal oxidative stress, primarily from NADPH oxidase 4 (NOX4)-derived hydrogen peroxide (H2O2), contributes to podocyte damage.
- NOX4-derived H2O2 may elevate podocyte calcium, exacerbating DKD.
Purpose of the Study:
- To investigate the role of NOX4-derived H2O2 in DKD-associated podocyte damage via calcium signaling.
- To determine the involvement of TRPC calcium channels in this NOX4-dependent pathway.
Main Methods:
- Utilized Dahl salt-sensitive (SS) rats with and without the Nox4 gene (SSNox4-/-).
- Employed TRPC6 knockout and TRPC5/TRPC6 double knockout mice.
- Conducted whole animal studies, biosensor measurements, electron microscopy, electrophysiology, and live calcium imaging.
Main Results:
- Diabetic SSNox4-/- rats showed reduced podocyte calcium and DKD damage compared to SS rats.
- Angiotensin II-induced calcium flux was blunted in diabetic SSNox4-/- rats.
- H2O2-stimulated calcium influx in podocytes was dependent on TRPC6 and TRPC5/TRPC6 channels, and knockout protected podocytes from H2O2-induced damage.
Conclusions:
- A novel signaling pathway involving NOX4 and TRPC6 in podocytes contributes to DKD.
- Targeting this NOX4-TRPC6 pathway presents a potential therapeutic strategy for mitigating DKD development.
Related Concept Videos
Kidney Structure
Feedback Regulation of Calcium Concentration
Various transmembrane receptors, such as G protein-coupled receptors (GPCRs), elicit a response to extracellular signals by increasing cytosolic calcium. Activated GPCRs...
Hormonal Regulation
Renal Regulation of Acid-Base Balance
In the kidneys, cells within the proximal convoluted tubules (PCT) and the collecting ducts secrete hydrogen ions (H+) into the tubular fluid. Specifically, in the PCT, Na+/H+ antiporters secrete H+ while reabsorbing Na+.
However, the intercalated cells in...
Chronic Kidney Disease I: Introduction
Chronic Kidney Disease II: Clinical Manifestations

