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Reactive oxygen species-initiated autophagy opposes aldosterone-induced podocyte injury
Mi Bai1,2, Ruochen Che1,2, Yue Zhang1,2
1Department of Nephrology, Nanjing Children's Hospital, Nanjing Medical University, Nanjing, China.
Abstract:
Evidence has demonstrated that aldosterone (Aldo) is involved in the development and progression of chronic kidney diseases. The purpose of the present study was to investigate the role of autophagy in Aldo-induced podocyte damage and the underlying mechanism. Mouse podocytes were treated with Aldo in the presence or absence of 3-methyladenine and N-acetylcysteine. Cell apoptosis was investigated by detecting annexin V conjugates, apoptotic bodies, caspase-3 activity, and alterations of the podocyte protein nephrin. Autophagy was evaluated by measuring the expressions of light chain 3, p62, beclin-1, and autophagy-related gene 5. Aldo (10-7 mol/l) induced podocyte apoptosis, autophagy, and downregulation of nephrin protein in a time-dependent manner. Aldo-induced apoptosis was further promoted by the inhibition of autophagy via 3-methyladenine and autophagy-related gene 5 small interfering RNA pretreatment. Moreover, Aldo time dependently increased ROS generation, and H2O2 (10-4 mol/l) application remarkably elevated podocyte autophagy. After treatment with N-acetylcysteine, the autophagy induced by Aldo or H2O2 was markedly attenuated, suggesting a key role of ROS in mediating autophagy formation in podocytes. Inhibition of ROS could also lessen Aldo-induced podocyte injury. Taken together, our findings suggest that ROS-triggered autophagy played a protective role against Aldo-induced podocyte injury, and targeting autophagy in podocytes may represent a new therapeutic strategy for the treatment of podocytopathy.
Insights
Aldosterone induces kidney podocyte damage by triggering reactive oxygen species (ROS) and autophagy. This ROS-mediated autophagy protects against podocyte injury, offering a potential therapeutic target for kidney diseases.
Area of Science:
- Nephrology
- Cell Biology
- Molecular Medicine
Background:
- Aldosterone (Aldo) is implicated in the pathogenesis of chronic kidney diseases.
- Understanding the mechanisms of podocyte injury is crucial for treating kidney disease.
Purpose of the Study:
- To investigate the role of autophagy in aldosterone-induced podocyte damage.
- To elucidate the underlying molecular mechanisms, particularly the involvement of reactive oxygen species (ROS).
Main Methods:
- Primary mouse podocytes were treated with aldosterone (Aldo).
- Intervention with 3-methyladenine (autophagy inhibitor) and N-acetylcysteine (ROS scavenger).
- Assessment of apoptosis, nephrin expression, and autophagy markers (LC3, p62, beclin-1, ATG5).
Main Results:
- Aldo induced time-dependent podocyte apoptosis, autophagy, and nephrin downregulation.
- Inhibition of autophagy exacerbated Aldo-induced apoptosis.
- Aldo increased ROS generation, which mediated autophagy; N-acetylcysteine attenuated this effect and reduced podocyte injury.
Conclusions:
- ROS-triggered autophagy plays a protective role against aldosterone-induced podocyte injury.
- Targeting autophagy in podocytes represents a potential therapeutic strategy for podocytopathy.
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