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Updated: May 29, 2026

Simultaneous Measurement of Mitochondrial Calcium and Mitochondrial Membrane Potential in Live Cells by Fluorescent Microscopy
Published on: January 24, 2017
Glucose and its metabolites have distinct effects on the calcium-induced mitochondrial permeability transition
1Institute of Medical Biochemistry, First Faculty of Medicine, Charles University in Prague, Prague, Czech Republic.
Abstract:
Mitochondrial production of reactive oxygen species (ROS) due to up-regulated glucose oxidation is thought to play a crucial, unifying role in the pathogenesis of chronic complications associated with diabetes mellitus. Mitochondrial permeability transition (MPT) is an interesting phenomenon involved in calcium signalling and cell death. We investigated the effects of glucose and several of its metabolites on calcium-induced MPT (measured as mitochondrial swelling) in isolated rat liver mitochondria. The presence of glucose, glucose 1-phosphate (both at 30 mM) or methylglyoxal (6 mM) significantly slowed calcium-induced mitochondrial swelling. Thirty mM glucose also resulted in a significant delay of MPT onset. In contrast, 30 mM fructose 6-phosphate accelerated swelling, whereas glucose 6-phosphate did not influence the MPT. The calcium binding potentials of the three hexose phosphates were tested and found similar. In vitro hydrogen peroxide production by mitochondria respiring on succinate in the presence of rotenone was independent of mitochondrial membrane potential and increased transiently during calcium-induced MPT. Inhibition of MPT with cyclosporine A resulted in decreased mitochondrial ROS production in response to calcium. In contrast, inhibition of MPT by methylglyoxal was accompanied by increased ROS production in response to calcium. In conclusion, we confirm that methylglyoxal is a potent inhibitor of MPT. In addition, high levels of glucose, glucose 1-phosphate and fructose 6-phosphate can also affect MPT. Methylglyoxal simultaneously inhibits MPT and increases mitochondrial ROS production in response to calcium. Our findings provide a novel context for the role of MPT in glucose sensing and the cellular toxicity caused by methylglyoxal.
Insights
High glucose and its metabolites, like methylglyoxal, impact mitochondrial permeability transition (MPT) and reactive oxygen species (ROS) production. Methylglyoxal inhibits MPT while increasing ROS, offering new insights into diabetes complications.
Area of Science:
- Mitochondrial biochemistry
- Cellular signaling
- Diabetes mellitus pathogenesis
Background:
- Mitochondrial reactive oxygen species (ROS) production from glucose oxidation is implicated in diabetic complications.
- Mitochondrial permeability transition (MPT) is a key process in calcium signaling and cell death.
Purpose of the Study:
- To investigate the effects of glucose and its metabolites on calcium-induced MPT in isolated rat liver mitochondria.
- To explore the relationship between MPT, ROS production, and methylglyoxal toxicity.
Main Methods:
- Measurement of mitochondrial swelling as an indicator of MPT in isolated rat liver mitochondria.
- Assessment of in vitro hydrogen peroxide production by mitochondria.
- Evaluation of the impact of cyclosporine A and methylglyoxal on MPT and ROS production.
Main Results:
- Glucose, glucose 1-phosphate, and methylglyoxal significantly slowed calcium-induced mitochondrial swelling (MPT).
- Fructose 6-phosphate accelerated MPT, while glucose 6-phosphate had no effect.
- Methylglyoxal inhibited MPT and increased mitochondrial ROS production in response to calcium.
Conclusions:
- High glucose, glucose 1-phosphate, and methylglyoxal influence MPT.
- Methylglyoxal is a potent MPT inhibitor that simultaneously increases mitochondrial ROS production.
- Findings provide a novel context for MPT's role in glucose sensing and methylglyoxal toxicity in diabetes.
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