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Updated: Jul 9, 2026

Modeling Hypoxia/Reoxygenation Injury in Proximal Tubular Epithelial Cells
Published on: November 21, 2025
[Cyclosporin A causes oxidative stress and mitochondrial dysfunction in renal tubular cells]
J Pérez de Hornedo1, G de Arriba, M Calvino
1Unidad de Investigación y Sección de Nefrología, Hospital Universitario de Guadalajara, Guadalajara, España.
Abstract:
Reactive oxygen species (ROS) have been implicated in cyclosporin A (CsA) nephrotoxicity. As mitochondria are one of the main sources of ROS in cells, we evaluated the role of CsA in mitochondrial structure and function in LLC-PK1 cells. We incubated cells with CsA 1 microM for 24 hours and studies were performed with flow citometry and confocal microscopy. We studied mitochondrial NAD(P)H content, superoxide anion (O2.-) production (MitoSOX Red), oxidation of cardiolipin of inner mitochondrial membrane (NAO) and mitochondrial membrane potential (DIOC2(3)). Also we analyzed the intracellular ROS synthesis (H2DCF-DA) and reduced glutation (GSH) of cells. Our results showed that CsA decreased NAD(P)H and membrane potential, and increased O2.- in mitochondria. CsA also provoked oxidation of cardiolipin. Furthermore, CsA increased intracellular ROS production and decreased GSH content. These results suggest that CsA has crucial effects in mitochondria. CsA modified mitochondrial physiology through the decrease of antioxidant mitochondrial compounds as NAD(P)H and the dissipation of mitochondrial membrane potential and increase of oxidants as O2.-. Also, CsA alters lipidic structure of inner mitochondrial membrane through the oxidation of cardiolipin. These effects trigger a chain of events that favour intracellular synthesis of ROS and depletion of GSH that can compromise cellular viability. Nephrotoxic cellular effects of CsA can be explained, at least in part, through its influence on mitochondrial functionalism.
Insights
Cyclosporin A (CsA) damages kidney cells by disrupting mitochondrial function, increasing reactive oxygen species (ROS) and decreasing protective antioxidants like glutathione (GSH). This study reveals CsA
Area of Science:
- Cell Biology
- Toxicology
- Mitochondrial Biology
Context:
- Cyclosporin A (CsA) is a known nephrotoxic agent.
- Mitochondria are a primary source of cellular reactive oxygen species (ROS).
- Understanding CsA's cellular mechanisms is crucial for mitigating kidney damage.
Purpose:
- To investigate the impact of CsA on mitochondrial structure and function in LLC-PK1 cells.
- To elucidate the role of mitochondrial ROS production in CsA-induced nephrotoxicity.
Summary:
- CsA treatment (1 microM, 24 hours) in LLC-PK1 cells led to decreased mitochondrial NAD(P)H content and membrane potential.
- CsA increased mitochondrial superoxide anion (O2.-) production and cardiolipin oxidation.
- Intracellular ROS levels rose while reduced glutathione (GSH) content decreased following CsA exposure.
Impact:
- CsA disrupts mitochondrial physiology by reducing antioxidants and dissipating membrane potential, promoting ROS generation.
- Oxidation of cardiolipin by CsA alters the inner mitochondrial membrane's lipid structure.
- These mitochondrial dysfunctions contribute to CsA nephrotoxicity by increasing oxidative stress and depleting cellular defenses.
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