Mitochondrial Permeability Transition Pore as a Suitable Targ e t for Neuroprotective Agents Against Alzheimer's
Elena F Shevtsova1, Daria V Vinogradova1, Margarita E Neganova1
1Institute of Physiologically Active Compounds of Russian Academy of Science, Chernogolovka. Russian Federation.
Background:
A considerable amount of data suggests the age-related impairments of mitochondrial functions in the development of sporadic forms of neurodegenerative pathologies. Mitochondria and the phenomenon of mitochondrial permeability transition (MPT), which marks the point of no return in cell death cascades, have special value in this regard. It is important that the vulnerability to MPT-inducing factors is increased with aging. Simultaneously, a decrease in the calcium retention capacity of mitochondria is developed, which leads to the disturbance of the functional activity of neurons.
Method:
The systematic investigations and web content related to the importance of MPT as the target for the search of neuroprotective and cognitive enhancing drugs, especially with multitargeted action, are reviewed.
Results:
Here, we have highlighted some experimental data that determines the importance of mitochondria for the search of neuroprotective drugs, and drugs with multitargeted action. We have also discussed a number of new compounds with similar properties. Being MPT inhibitors/modulators, virtually all the compounds described in this review have the ability to exhibit a neuroprotective effect, interact with some other targets, providing coupled beneficial therapeutic effects such as cognitive stimulation, anti-seizure, and antidepressant actions.
Conclusion:
Inhibitors of MPT, which increases calcium retention capacity of mitochondria, are considered as promising neuroprotective drugs able not only to halt the neurodegenerative cascade, but also to increase the functional activity of neurons.
Insights
Mitochondrial permeability transition (MPT) inhibitors show promise for neuroprotection by enhancing mitochondrial calcium retention. These compounds may halt neurodegeneration and improve neuronal function, offering cognitive and mood benefits.
Area of Science:
- Neuroscience
- Pharmacology
- Mitochondrial Biology
Background:
- Age-related mitochondrial dysfunction is linked to neurodegenerative diseases.
- Mitochondrial permeability transition (MPT) is a critical cell death pathway, with increased vulnerability in aging.
- Aging reduces mitochondrial calcium retention, impairing neuronal function.
Purpose of the Study:
- To review the role of MPT as a therapeutic target for neuroprotective and cognitive-enhancing drugs.
- To explore multitargeted drug actions for neurodegenerative conditions.
Main Methods:
- Systematic review of scientific literature and web content.
- Analysis of experimental data on MPT inhibitors.
Main Results:
- Mitochondria are crucial targets for developing neuroprotective and multitargeted drugs.
- New compounds acting as MPT inhibitors/modulators demonstrate neuroprotective effects.
- These compounds offer additional benefits like cognitive enhancement, anti-seizure, and antidepressant actions.
Conclusions:
- MPT inhibitors are promising neuroprotective agents.
- By increasing mitochondrial calcium retention, they can halt neurodegeneration.
- These drugs have the potential to restore and enhance neuronal functional activity.
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