Related Experiment Video
Updated: Apr 23, 2026

Mechanism of Kemeng Fang's Inhibition of Podocyte Apoptosis in Rats with Membranous Nephropathy through the PI3K/AKT Signaling Pathway
Published on: August 23, 2024
Smad3/Nox4-mediated mitochondrial dysfunction plays a crucial role in puromycin aminonucleoside-induced podocyte
Lixia Yu1, Yanbo Liu2, Yanfeng Wu3
1Department of Nephrology, First People's Hospital of Kunshan, Affiliated Kunshan Hospital of Jiangsu University, Kunshan, Jiangsu 215300, China.
Abstract:
Podocyte depletion due to apoptosis is the key hallmark of proteinuric kidney disease progression. Recently, several studies reported that mitochondrial (mt) dysfunction is involved in podocyte injury, while the underlying molecular mechanisms remain elusive. This study investigated the potential proximal signaling related to in vitro and in vivo mitochondrial dysfunction in a puromycin aminonucleoside (PA)-induced podocyte injury model. PA time- and dose-dependently resulted in cultured mouse podocyte damage, presenting with an increase of apoptotic cells and induction of activated caspase3/9. PA also caused mitochondrial damage and dysfunction based on the downregulation of the mtDNA level, decrease of transcriptional factors mtTfa and Nrf-1, decrease of CoxI, II and IV, and reduction of the oxygen consumption level and mitochondrial membrane potential level as well as excessive production of cellular ROS. Additionally, antioxidant MnSOD and catalase levels were decreased in mitochondrial fractions, and reduction of complex I and IV activity was also observed in PA-stimulated podocytes. Furthermore, an obvious translocation of p-Smad3 from the cytosol to nuclei and induction of mitochondrial Nox4 were detected following PA application. The PA-induced shift of cytochrome c was observed from mitochondria to the cytoplasm. Induction of Nox4 by PA administration was significantly repressed by Smad3-shRNA, while Nox4-shRNA showed no effect on PA-induced p-Smad3 activation. Notably, both Smad3 and Nox4 silencing significantly prevented the reduction of the mtDNA level, restored mitochondrial function, and decreased cellular apoptosis in PA-stimulated podocytes. A similar mitochondrial dysfunction was obtained in a PA-injected nephropathy rat, which was effectively inhibited by treatment with the antiproteinuric drug prednisone. In addition, Dab2 knockdown decreased albumin uptake and influx whereas it showed no effect on cellular apoptosis in PA-stimulated podocytes. In conclusion, our findings demonstrated that Smad3-Nox4 axis-mediated mitochondrial dysfunction is involved in PA-induced podocyte damage likely via increasing ROS generation and activating the cytochrome c-caspase9-caspase3 apoptotic signaling pathway. Dab2 may be required for the increased permeability of podocytes following injury.
Insights
Mitochondrial dysfunction drives podocyte injury in proteinuric kidney disease. The Smad3-Nox4 pathway promotes this damage by increasing reactive oxygen species and apoptosis, a process inhibited by prednisone.
Area of Science:
- Nephrology
- Molecular Biology
- Cell Biology
Background:
- Podocyte depletion and apoptosis are hallmarks of proteinuric kidney disease.
- Mitochondrial dysfunction is implicated in podocyte injury, but mechanisms are unclear.
Purpose of the Study:
- To investigate the molecular mechanisms of mitochondrial dysfunction in puromycin aminonucleoside (PA)-induced podocyte injury.
- To explore the role of the Smad3-Nox4 axis in this process.
Main Methods:
- Utilized an in vitro puromycin aminonucleoside (PA) model of cultured mouse podocytes and an in vivo PA-induced nephropathy rat model.
- Assessed mitochondrial function, apoptosis markers (caspase3/9), reactive oxygen species (ROS) production, and gene/protein expression (mtDNA, mtTfa, Nrf-1, Cox, MnSOD, catalase, p-Smad3, Nox4, cytochrome c).
- Employed gene silencing techniques (Smad3-shRNA, Nox4-shRNA, Dab2 knockdown) and drug treatment (prednisone).
Main Results:
- PA induced podocyte damage, apoptosis, and mitochondrial dysfunction, characterized by decreased mtDNA, impaired mitochondrial respiration, increased ROS, and altered antioxidant levels.
- PA treatment led to p-Smad3 translocation and Nox4 induction, with Nox4 induction dependent on Smad3.
- Silencing Smad3 or Nox4 protected podocytes from PA-induced mitochondrial damage and apoptosis; prednisone treatment ameliorated mitochondrial dysfunction in rats.
Conclusions:
- The Smad3-Nox4 axis mediates mitochondrial dysfunction and apoptosis in PA-induced podocyte injury, likely through ROS generation and the cytochrome c-caspase pathway.
- Dab2 may play a role in podocyte permeability changes post-injury.
Related Concept Videos
The Electron Transport Chain
Inhibitors of the electron transport chain
Rotenone, a widely used pesticide, prevents electron transfer from Fe-S cluster to ubiquinone or Q...
Electron Transport Chain: Complex I and II
ROS generation is regulated and maintained at moderate levels necessary...

