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Updated: Aug 14, 2026

Multi-parameter Measurement of the Permeability Transition Pore Opening in Isolated Mouse Heart Mitochondria
Published on: September 7, 2012
Fluctuations in mitochondrial membrane potential caused by repetitive gating of the permeability transition pore
1Department of Physiology, Stritch School of Medicine, Loyola University Chicago, 2160 S. First Avenue, Maywood, IL 60153, USA. jhueser@luc.edu
Abstract:
Confocal laser scanning microscopy and the potentiometric fluorescence probe tetramethylrhodamine ethyl ester were used to measure changes in membrane electrical potential (DeltaPsi(m)) in individual mitochondria after isolation or in the living cell. Recordings averaged over small mitochondrial populations revealed a gradual decline in DeltaPsi(m) caused by the light-induced generation of free radicals. Depolarization was attenuated by dithiothreitol or acidification. In contrast, individual organelles displayed rapid spontaneous depolarizations caused by openings of the mitochondrial permeability transition pore (MTP). Repetitive openings and closings of the pore gave rise to marked fluctuations in DeltaPsi(m) between the fully charged and completely depolarized state. Rapid spontaneous fluctuations in DeltaPsi(m) were observed in mitochondria isolated from rat heart and in mitochondria in living endothelial cells. The loss of DeltaPsi(m) of mitochondria in the living cell coincided with swelling of the organelle and the breakdown of long mitochondrial filaments. In the individual mitochondrion, oxidative stress initially triggered pore openings of shorter duration, before prolonged openings caused the complete dissipation of DeltaPsi(m) and a measurable efflux of larger solutes. Generalizing this scheme, we suggest that under conditions of prolonged oxidative stress and/or cellular Ca(2+) overload, short openings of MTP might serve as an emergency mechanism allowing the partial dissipation of DeltaPsi(m), the fast release of accumulated Ca(2+) ions and the decreased generation of endogenous oxygen radicals. In contrast, loss of matrix metabolites, swelling and other structural damage of the organelle render prolonged openings of the transition pore deleterious to mitochondria and to the cell.
Insights
Mitochondria
Area of Science:
- Mitochondrial physiology and bioenergetics
- Cellular signaling and stress responses
Background:
- Mitochondrial membrane potential (DeltaPsi(m)) is crucial for cellular energy production.
- Dysregulation of DeltaPsi(m) is implicated in various pathologies.
- The mitochondrial permeability transition pore (MTP) plays a role in regulating mitochondrial function.
Purpose of the Study:
- To investigate dynamic changes in mitochondrial membrane potential (DeltaPsi(m)) in individual mitochondria.
- To differentiate responses to oxidative stress versus MTP openings.
- To elucidate the role of MTP in mitochondrial dysfunction.
Main Methods:
- Confocal laser scanning microscopy
- Potentiometric fluorescence probe (tetramethylrhodamine ethyl ester)
- Measurement of DeltaPsi(m) in isolated and in-cell mitochondria
Main Results:
- Gradual DeltaPsi(m) decline observed in mitochondrial populations due to oxidative stress.
- Individual mitochondria exhibit rapid, spontaneous DeltaPsi(m) fluctuations from MTP openings.
- MTP openings correlate with mitochondrial swelling and filament breakdown in living cells.
- Short MTP openings may be a protective mechanism, while prolonged openings are detrimental.
Conclusions:
- Mitochondrial permeability transition pore (MTP) dynamics significantly influence mitochondrial membrane potential (DeltaPsi(m)).
- Short MTP openings can serve a protective role under stress by releasing Ca(2+) and reducing radical generation.
- Prolonged MTP openings lead to mitochondrial damage and cellular dysfunction.
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