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Updated: Oct 21, 2025

Analyses of Mitochondrial Calcium Influx in Isolated Mitochondria and Cultured Cells
Published on: April 27, 2018
The mitochondrial calcium uniporter promotes arrhythmias caused by high-fat diet
Leroy C Joseph1, Michael V Reyes1, Edwin A Homan1
1Department of Medicine, College of Physicians and Surgeons of Columbia University, New York, NY, 10032, USA.
Insights
Mitochondrial calcium overload from a high-fat diet promotes heart arrhythmias. Blocking mitochondrial calcium uptake or CaMKII protects against these metabolic abnormalities and cardiac events.
Area of Science:
- Cardiology
- Mitochondrial Biology
- Metabolic Syndrome
Background:
- Obesity and diabetes elevate arrhythmia and sudden cardiac death risk.
- Molecular mechanisms linking metabolic issues to arrhythmia remain unclear.
- High-fat diets (HFD) induce mitochondrial dysfunction, potentially promoting ventricular arrhythmias.
Purpose of the Study:
- To investigate if mitochondrial calcium uptake contributes to HFD-induced mitochondrial dysfunction and arrhythmias.
- To explore the role of the mitochondrial calcium uniporter (MCU) and CaMKII in metabolic arrhythmia.
Main Methods:
- Used mice with cardiac-specific deletion of MCU (MCU KO) and controls.
- Conducted in vivo heart rhythm monitoring, perfused heart, and isolated cardiomyocyte experiments.
- Assessed effects of saturated fat, ROS, calcium handling, and CaMKII activity.
Main Results:
- MCU KO mice were protected from HFD-induced long QT, ventricular tachycardia, and abnormal repolarization.
- MCU KO cardiomyocytes resisted saturated fat-induced ROS and mitochondrial dysfunction.
- CaMKII activation correlated with arrhythmias; CaMKII inhibition protected cardiomyocytes and HFD-fed hearts.
Conclusions:
- Mitochondrial dysfunction from calcium overload is a key mechanism in HFD-induced arrhythmia.
- MCU and CaMKII are potential therapeutic targets for metabolic abnormality-related arrhythmias.
Abstract:
Obesity and diabetes increase the risk of arrhythmia and sudden cardiac death. However, the molecular mechanisms of arrhythmia caused by metabolic abnormalities are not well understood. We hypothesized that mitochondrial dysfunction caused by high fat diet (HFD) promotes ventricular arrhythmia. Based on our previous work showing that saturated fat causes calcium handling abnormalities in cardiomyocytes, we hypothesized that mitochondrial calcium uptake contributes to HFD-induced mitochondrial dysfunction and arrhythmic events. For experiments, we used mice with conditional cardiac-specific deletion of the mitochondrial calcium uniporter (Mcu), which is required for mitochondrial calcium uptake, and littermate controls. Mice were used for in vivo heart rhythm monitoring, perfused heart experiments, and isolated cardiomyocyte experiments. MCU KO mice are protected from HFD-induced long QT, inducible ventricular tachycardia, and abnormal ventricular repolarization. Abnormal repolarization may be due, at least in part, to a reduction in protein levels of voltage gated potassium channels. Furthermore, isolated cardiomyocytes from MCU KO mice exposed to saturated fat are protected from increased reactive oxygen species (ROS), mitochondrial dysfunction, and abnormal calcium handling. Activation of calmodulin-dependent protein kinase (CaMKII) corresponds with the increase in arrhythmias in vivo. Additional experiments showed that CaMKII inhibition protects cardiomyocytes from the mitochondrial dysfunction caused by saturated fat. Hearts from transgenic CaMKII inhibitor mice were protected from inducible ventricular tachycardia after HFD. These studies identify mitochondrial dysfunction caused by calcium overload as a key mechanism of arrhythmia during HFD. This work indicates that MCU and CaMKII could be therapeutic targets for arrhythmia caused by metabolic abnormalities.
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