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Updated: Apr 27, 2026

A Flow Cytometry-based Assay for Measuring Mitochondrial Membrane Potential in Cardiac Myocytes After Hypoxia/Reoxygenation
Published on: July 13, 2018
Phosphodiesterase-3 inhibitor (cilostazol) attenuates oxidative stress-induced mitochondrial dysfunction in the heart
Siriporn C Chattipakorn1, Savitree Thummasorn2, Jantira Sanit2
1Cardiac Electrophysiology Research and Training Center, Department of Physiology, Faculty of Medicine, Chiang Mai University, Chiang Mai 50200, Thailand ; Faculty of Dentistry, Chiang Mai University, Chiang Mai 50200, Thailand.
Insights
Cilostazol protects heart mitochondria from oxidative stress, preserving function and reducing damaging reactive oxygen species. This suggests a mechanism for its previously observed anti-arrhythmic effects.
Area of Science:
- Cardiovascular Research
- Mitochondrial Biology
- Pharmacology
Background:
- Cilostazol, a phosphodiesterase 3 inhibitor, is known to prevent tachyarrhythmia and improve defibrillation.
- The precise mechanism behind cilostazol's cardioprotective effects remains unclear.
- Cardiac mitochondria are critical in arrhythmias, with oxidative stress being a major contributing factor.
Purpose of the Study:
- To investigate the effects of cilostazol on cardiac mitochondria under severe oxidative stress.
- To elucidate the role of cilostazol in mitigating mitochondrial dysfunction induced by oxidative damage.
Main Methods:
- Isolated rat cardiac mitochondria were subjected to hydrogen peroxide (H2O2)-induced oxidative stress.
- Cilostazol's protective effects were assessed at varying concentrations.
- Mitochondrial function was evaluated by measuring reactive oxygen species (ROS) production, membrane potential, and swelling, with interventions using mPTP and IMAC blockers.
Main Results:
- Cilostazol significantly preserved cardiac mitochondrial function under oxidative stress.
- It prevented mitochondrial depolarization and swelling.
- Cilostazol treatment led to a decrease in reactive oxygen species (ROS) production.
Conclusions:
- Cilostazol's cardioprotective effects may stem from its ability to prevent mitochondrial dysfunction.
- The drug mitigates severe oxidative stress-induced damage to cardiac mitochondria.
- This provides a mechanistic explanation for cilostazol's anti-arrhythmic properties.
Background:
Cilostazol is a type 3 phosphodiesterase inhibitor which has been previously demonstrated to prevent the occurrence of tachyarrhythmia and improve defibrillation efficacy. However, the mechanism for this beneficial effect is still unclear. Since cardiac mitochondria have been shown to play a crucial role in fatal cardiac arrhythmias and that oxidative stress is one of the main contributors to arrhythmia generation, we tested the effects of cilostazol on cardiac mitochondria under severe oxidative stress.
Methods:
Mitochondria were isolated from rat hearts and treated with H2O2 to induce oxidative stress. Cilostazol, at various concentrations, was used to study its protective effects. Pharmacological interventions, including a mitochondrial permeability transition pore (mPTP) blocker, cyclosporine A (CsA), and an inner membrane anion channel (IMAC) blocker, 4'-chlorodiazepam (CDP), were used to investigate the mechanistic role of cilostazol on cardiac mitochondria. Cardiac mitochondrial reactive oxygen species (ROS) production, mitochondrial membrane potential change and mitochondrial swelling were determined as indicators of cardiac mitochondrial function.
Results:
Cilostazol preserved cardiac mitochondrial function when exposed to oxidative stress by preventing mitochondrial depolarization, mitochondrial swelling, and decreasing ROS production.
Conclusions:
Our findings suggest that cardioprotective effects of cilostazol reported previously could be due to its prevention of cardiac mitochondrial dysfunction caused by severe oxidative stress.
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