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Updated: May 23, 2026

Simultaneous Measurement of Mitochondrial Calcium and Mitochondrial Membrane Potential in Live Cells by Fluorescent Microscopy
Published on: January 24, 2017
Development of mitochondrial permeability transition inhibitory agents: a novel drug target
1Institute of Science and Technology in Medicine, School of Pharmacy, Keele University, UK.
Abstract:
Apoptosis is a genetically conserved mechanism that eliminates unnecessary or surplus cells and is also involved in the pathomechanism of a wide variety of diseases. The intrinsic pathway of apoptosis includes the mitochondria where numerous pro-apoptotic proteins are sequestered and their release marks the point-of-no-return, indicating the ultimate commitment to cell death. The mitochondrial permeability transition (mPT) is a mechanism enabling the release of Cytochrome-c (Cyt-c), AIF and other pro-apoptotic proteins, and is characterized by an alteration in the permeability of the organelle's membrane. This is due to reactive oxygen species or Ca(2+) triggered dynamic assemble of a trans bi-membrane channel from various protein components including the voltage dependent anion channel, the adenine nucleotide translocase, the cyclophyllin D that enables solutes up to 1.5 kDa to pass through. The resultant influx of water into the mitochondrial matrix leads to mitochondrial swelling and the rupture of the membranes. Numerous agents can inhibit mPT including amiodarone, a widely used antiarrhythmic agent. Modification of this benzofuran derivate with nitroxides or their secondary amine derivates that exhibits antioxidant properties leads to the enhancement of mPT inhibitory effect of the original compound. Furthermore this hybrid compound is also capable of influencing the necrotic cell death pathway. This strategy may prove to be beneficial to increase the effectiveness of other mPT inhibitory agents. However, further studies are necessary to identify the components and structure of the permeability transition pore in order to design more effective mPT inhibitory compounds to fully exploit the therapeutic potential of this novel drug target.
Insights
Mitochondrial permeability transition (mPT) is key in apoptosis and disease. Modified amiodarone compounds enhance mPT inhibition, offering potential therapeutic benefits for various conditions.
Area of Science:
- Cell Biology
- Biochemistry
- Pharmacology
Background:
- Apoptosis is a crucial cell elimination process implicated in numerous diseases.
- The intrinsic apoptosis pathway involves mitochondria and the release of pro-apoptotic proteins.
- Mitochondrial permeability transition (mPT) facilitates this release via a pore complex.
Purpose of the Study:
- To investigate the modification of amiodarone to enhance its mPT inhibitory effects.
- To explore the potential of novel compounds in modulating cell death pathways.
- To identify new therapeutic strategies targeting mPT.
Main Methods:
- Chemical modification of amiodarone with antioxidant nitroxides.
- Assessment of the enhanced compounds' ability to inhibit mPT.
- Evaluation of the compounds' impact on necrotic cell death.
Main Results:
- Modified amiodarone derivatives demonstrated enhanced mPT inhibitory activity.
- The hybrid compounds influenced necrotic cell death pathways.
- This modification strategy shows promise for improving existing mPT inhibitors.
Conclusions:
- Novel amiodarone derivatives effectively inhibit mPT and modulate cell death.
- This approach may enhance the therapeutic efficacy of mPT inhibitors.
- Further research into the mPT pore structure is needed for optimized drug design.
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