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Updated: Jun 25, 2026

Assessment of Open Probability of the Mitochondrial Permeability Transition Pore in the Setting of Coenzyme Q Excess
Published on: June 1, 2022
Postconditioning inhibits mPTP opening independent of oxidative phosphorylation and membrane potential
Melanie Paillard1, Ludovic Gomez, Lionel Augeul
1INSERM U 886, Université Claude Bernard Lyon I, Lyon, France.
Abstract:
Mitochondrial permeability transition pore (mPTP) inhibition plays a relevant role in postconditioning (PostC). Ischemia damages the electron transport chain, and the potential contribution of additional modifications in mitochondrial function caused by PostC remains unknown. We sought to determine which mitochondrial functions are involved in the inhibition of mPTP opening during the first minutes of reperfusion. Anesthetized New Zealand White rabbits underwent 30-min ischemia followed by 10-min reperfusion. At reperfusion, they received either no intervention (Control, C), PostC with 4 cycles of 1-min ischemia followed by 1-min reperfusion, or an IV injection of 5 mg/kg cyclosporine A (CsA: a powerful inhibitor of mPTP opening). Sham rabbits underwent no ischemia throughout the 40-min experiment. At the end of the 10-min reperfusion, mitochondria were isolated from the area at risk by differential centrifugations. Calcium retention capacity (CRC) and mitochondrial membrane potential (DeltaPsi(m)) were assessed by fluorimetry in subsarcolemmal (SSM) and interfibrillar (IFM) mitochondria. Oxidative phosphorylation was assessed using a Clark-type electrode, and oxidative stress via protein carbonylation by Western blotting. PostC and CsA treatments improved CRC when compared to the C group. Control, PostC and CsA mitochondria exhibited a comparable significant dissipation of DeltaPsi(m), together with a comparable significant decrease in state 3 and an increase in state 4 respiration, in both SSM and IFM. However, PostC but not CsA treatment reduced total heart oxidative stress. These data suggest that during the early minutes of reperfusion, PostC reduces oxidative stress and inhibits mPTP opening, independent of alteration of oxidative phosphorylation or of DeltaPsi(m).
Insights
Postconditioning (PostC) and cyclosporine A (CsA) inhibit the mitochondrial permeability transition pore (mPTP) opening. PostC also reduces oxidative stress, independent of mitochondrial function changes.
Area of Science:
- Cardiology
- Mitochondrial Biology
- Biochemistry
Background:
- Ischemia-reperfusion injury impacts cardiac function.
- Mitochondrial permeability transition pore (mPTP) opening is a key event in cell death following ischemia.
- Postconditioning (PostC) is a protective phenomenon that limits ischemia-reperfusion injury, partly through mPTP inhibition.
Purpose of the Study:
- To investigate the specific mitochondrial functions affected by PostC during the early minutes of reperfusion.
- To determine if PostC-mediated mPTP inhibition is linked to changes in oxidative phosphorylation or mitochondrial membrane potential.
- To compare the effects of PostC with cyclosporine A (CsA), a direct mPTP inhibitor.
Main Methods:
- Rabbits underwent 30-min cardiac ischemia followed by 10-min reperfusion.
- Interventions included no treatment (Control), PostC, or CsA administration.
- Mitochondria were isolated to assess calcium retention capacity (CRC), mitochondrial membrane potential (DeltaPsi(m)), oxidative phosphorylation, and oxidative stress.
Main Results:
- Both PostC and CsA improved calcium retention capacity (CRC) compared to controls.
- Mitochondrial membrane potential (DeltaPsi(m)) dissipated similarly in all groups.
- PostC, but not CsA, significantly reduced oxidative stress, while both treatments impaired oxidative phosphorylation similarly.
Conclusions:
- Early PostC inhibits mPTP opening and reduces cardiac oxidative stress.
- These protective effects occur independently of alterations in oxidative phosphorylation or mitochondrial membrane potential.
- PostC offers benefits beyond direct mPTP inhibition, including oxidative stress reduction.
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