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Oxalate-induced apoptosis through ERS-ROS-NF-κB signalling pathway in renal tubular epithelial cell
Shaoxiong Ming1, Jia Tian2, Ke Ma1
1Department of Urology, Changhai Hospital of Shanghai, No. 168, Changhai Road, Yangpu District, Shanghai, 200433, China.
Background:
Kidney stones are composed of approximately 70-80% calcium oxalate. However, the exact mechanism of formation of calcium oxalate kidney stones remains unclear. In this study, we investigated the roles of endoplasmic reticulum stress (ERS), reactive oxygen species (ROS), and the NF-κB signalling pathway in the pathogenesis of oxalate-induced renal tubular epithelial cell injury and its possible molecular mechanisms.
Methods:
We established a model to evaluate the formation of kidney stones by intraperitoneal injection of glyoxylic acid solution into mice and assessed cell morphology, apoptosis, and the expression levels of ERS, ROS, and NF-κB signalling pathway-related proteins in mouse renal tissues. Next, we treated HK-2 cells with potassium oxalate to construct a renal tubular epithelial cell injury model. We detected the changes in autophagy, apoptosis, and mitochondrial membrane potential and investigated the ultrastructure of the cells by transmission electron microscopy. Western blotting revealed the expression levels of apoptosis and autophagy proteins; mitochondrial structural and functional proteins; and ERS, ROS, and NF-κB (p65) proteins. Lastly, we studied the downregulation of NF-κB activity in HK-2 cells by lentivirus interference and confirmed the interaction between the NF-κB signalling and ERS/ROS pathways.
Results:
We observed swelling of renal tissues, increased apoptosis of renal tubular epithelial cells, and activation of the ERS, ROS, and NF-κB signalling pathways in the oxalate group. We found that oxalate induced autophagy, apoptosis, and mitochondrial damage in HK-2 cells and activated the ERS/ROS/NF-κB pathways. Interestingly, when the NF-κB signalling pathway was inhibited, the ERS/ROS pathway was also inhibited.
Conclusion:
Oxalate induces HK-2 cell injury through the interaction between the NF-κB signalling and ERS/ROS pathways.
Insights
Calcium oxalate kidney stones involve endoplasmic reticulum stress (ERS), reactive oxygen species (ROS), and NF-κB signaling. Oxalate damages kidney cells via interactions between these pathways, particularly NF-κB.
Area of Science:
- Nephrology
- Cell Biology
- Molecular Mechanisms
Background:
- Calcium oxalate stones, prevalent in kidney stones, lack clear formation mechanisms.
- Investigating endoplasmic reticulum stress (ERS), reactive oxygen species (ROS), and NF-κB signaling in oxalate-induced kidney injury is crucial.
Purpose of the Study:
- To elucidate the molecular mechanisms of oxalate-induced renal tubular epithelial cell injury.
- To investigate the roles of ERS, ROS, and the NF-κB signaling pathway in kidney stone formation.
Main Methods:
- Established mouse and HK-2 cell models of oxalate-induced kidney injury.
- Assessed cell morphology, apoptosis, autophagy, and mitochondrial function.
- Analyzed protein expression of ERS, ROS, and NF-κB signaling pathway components.
Main Results:
- Oxalate induced renal tissue swelling and tubular epithelial cell apoptosis.
- Oxalate activated ERS, ROS, and NF-κB signaling pathways in kidney cells.
- Inhibition of NF-κB signaling also reduced ERS and ROS activation.
Conclusions:
- Oxalate induces kidney cell injury through the interplay of NF-κB signaling, ERS, and ROS.
- The NF-κB pathway is a key mediator in oxalate-induced renal damage.
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