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Published on: January 22, 2017
Mitochondrial dysfunction and aging can be alleviated by modulating calcineurin and cardiolipin dynamics following
Pallab Bhattacharya1, Shailendra Saraf1, Anirban Barik1
1Department of Pharmacology and Toxicology, National Institute of Pharmaceutical Education and Research (NIPER), Ahmedabad, Gandhinagar 382355 Gujarat, India.
Abstract:
The crucial influence of mitochondria in ischemic stroke pathophysiology presents many unexplored yet promising avenues for therapeutic strategies and clinical outcomes. Post-stroke mitochondrial dysfunction contributes to aggravated levels of calcium overload and apoptosis. This dysfunction is signified by disruption of the mitochondrial lipids such as cardiolipin, along with mitochondrial DNA mutation, leading to an imbalance in mitophagy. Calcium overload-mediated calcineurin overexpression has been reported to exacerbate mitochondrial damage and further contribute to neuronal apoptosis. In our study, we explored the alterations in the mitochondrial function following inhibition of the calcium-mediated calcineurin levels in post-stroke condition. In a rodent model of middle cerebral artery occlusion (MCAo), we observed that the inhibition of the calcium channels in post-stroke condition led to restored neuronal histology and viability following upregulation of the antioxidant levels. At the mitochondrial level, calcium channel inhibition downregulated calcineurin activation and normalized cardiolipin concentration, mitochondrial membrane potential, and respiratory control ratio in post-stroke condition. This inhibition also balanced the mitochondrial dynamics proteins and mitophagy towards neuronal recovery following ischemic stress. Moreover, it also normalized the expression of TERT, a key marker of mitochondrial health and aging. These findings highlight the role of calcium-mediated calcineurin in influencing mitochondrial dysfunction and aging in ischemic stroke. Thus, calcium channel inhibition offers a promising therapeutic strategy by preserving mitochondrial integrity and promoting neuroprotection following stroke.
Insights
Inhibition of calcium channels after ischemic stroke restores neuronal health by improving mitochondrial function. This neuroprotective strategy targets calcium-mediated calcineurin pathways, offering hope for stroke recovery.
Area of Science:
- Neuroscience
- Mitochondrial Biology
- Ischemic Stroke Pathophysiology
Background:
- Mitochondrial dysfunction is central to ischemic stroke, leading to calcium overload, apoptosis, and cardiolipin disruption.
- Calcium overload activates calcineurin, exacerbating mitochondrial damage and neuronal death post-stroke.
Purpose of the Study:
- To investigate the effects of inhibiting calcium-mediated calcineurin on mitochondrial function in a rodent model of ischemic stroke.
- To explore calcium channel inhibition as a therapeutic strategy for stroke recovery.
Main Methods:
- Utilized a rodent model of middle cerebral artery occlusion (MCAo) to simulate ischemic stroke.
- Administered calcium channel inhibitors post-stroke to assess impact on neuronal and mitochondrial parameters.
- Analyzed neuronal histology, viability, antioxidant levels, cardiolipin concentration, mitochondrial membrane potential, and TERT expression.
Main Results:
- Calcium channel inhibition restored neuronal histology and viability by upregulating antioxidant levels.
- Mitochondrial function was normalized, evidenced by downregulated calcineurin activation, normalized cardiolipin, improved membrane potential, and respiratory control ratio.
- Mitochondrial dynamics, mitophagy, and TERT expression were normalized, promoting neuronal recovery.
Conclusions:
- Calcium-mediated calcineurin signaling plays a critical role in post-stroke mitochondrial dysfunction and aging.
- Inhibiting calcium channels represents a promising therapeutic approach for neuroprotection by preserving mitochondrial integrity in ischemic stroke.
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