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Assessment of Open Probability of the Mitochondrial Permeability Transition Pore in the Setting of Coenzyme Q Excess
Published on: June 1, 2022
Melatonin preserves the transient mitochondrial permeability transition for protection during mitochondrial Ca(2+)
1Department of Physiology and Pharmacology School of Medicine, Chang Gung University, Kwei-Shan, Tao-Yuan, Taiwan. mjjou@mail.cgu.edu.tw
Abstract:
Cells have two modes of mitochondrial permeability transition (MPT) which produce virtually opposite pathophysiological outcomes of survival or death when responding to apoptotic insults. The transient-MPT (t-MPT) protects mitochondria, whereas the prolonged-MPT (p-MPT), once activated, triggers the 'point of no return' for apoptosis or necrosis. Our previous studies show that in addition to scavenging mitochondrial reactive oxygen species, melatonin targets mitochondrial Ca(2+) (mCa(2+))-mediated MPT for protection during mCa(2+)-mediated apoptosis in astrocytes. The precise mechanism for how melatonin modulates the MPT during mCa(2+) stress, however, remains unelucidated. With the application of fluorescence laser scanning imaging microscopy, this study demonstrated for the first time that melatonin does not inhibit the MPT pore, rather it crucially preserves the pore in its protective mode of t-MPT during mCa(2+) stress. Melatonin-preserved t-MPT importantly maintained mitochondrial membrane potential (ΔΨ(m)) which not only prevented depolarized ΔΨ(m)-induced p-MPT but also retained ΔΨ(m)-dependent ATP formation during disturbed Ca(2+) homeostasis. Additionally, the melatonin-preserved t-MPT allowed mitochondria to release the toxic overload of mCa(2+) to sublethal levels, which prevented mCa(2+)-mediated fission and mCa(2+)-dependent p-MPT and possibly also improved mCa(2+)-dependent ATP synthesis. Melatonin's effect in reducing the Ca(2+) load greatly diminished when the MPT was inhibited by cyclosporine A, suggesting its pore dependency as well as that a preserved t-MPT may be superior to a MPT inhibition in protecting mCa(2+)-mediated apoptosis. The unique modulation on the MPT provided by melatonin may have extraordinary therapeutic potential in the treatment of mCa(2+)-mediated astrocyte-associated neurodegenerative pathologies and diseases.
Insights
Melatonin protects cells from apoptosis by preserving the transient mitochondrial permeability transition (t-MPT) pore, not by inhibiting it. This mechanism maintains mitochondrial function and ATP production during calcium stress.
Area of Science:
- Cell Biology
- Neuroscience
- Biochemistry
Background:
- Mitochondrial permeability transition (MPT) has two modes: transient (t-MPT) for survival and prolonged (p-MPT) for cell death.
- Melatonin protects against apoptosis by targeting mitochondrial calcium (mCa2+)-mediated MPT in astrocytes.
- The exact mechanism of melatonin's modulation of MPT under mCa2+ stress was unclear.
Purpose of the Study:
- To elucidate the precise mechanism by which melatonin modulates MPT during mCa2+ stress.
- To investigate whether melatonin inhibits or preserves the MPT pore.
- To assess the functional consequences of melatonin's action on mitochondrial membrane potential and ATP synthesis.
Main Methods:
- Fluorescence laser scanning imaging microscopy was used to observe MPT dynamics.
- Mitochondrial membrane potential (ΔΨm) was monitored.
- Calcium homeostasis and ATP production were assessed under melatonin treatment and MPT inhibition (cyclosporine A).
Main Results:
- Melatonin preserves the MPT pore in its protective t-MPT mode, rather than inhibiting it.
- Preserved t-MPT maintained mitochondrial membrane potential (ΔΨm), preventing p-MPT and supporting ATP formation.
- Melatonin facilitated the release of excess mCa2+ to sublethal levels, preventing mCa2+-dependent damage and promoting ATP synthesis.
Conclusions:
- Melatonin uniquely modulates MPT by preserving t-MPT, offering a protective mechanism against mCa2+-mediated apoptosis.
- Preserving t-MPT may be more beneficial than MPT inhibition for protecting against mCa2+-induced cell death.
- Melatonin's action on MPT suggests therapeutic potential for neurodegenerative diseases involving mCa2+ dysregulation in astrocytes.
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