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Updated: Aug 10, 2025

Evaluation of Bioenergetic Function in Cerebral Vascular Endothelial Cells
Published on: November 19, 2016
Altered trafficking of miRNAs at mitochondria modulates mitochondrial functions and cell death in brain ischemia
Dhruv Gohel1, Shatakshi Shukla2, Wenson David Rajan3
1Department of Biochemistry, Faculty of Science, The M.S. University of Baroda, Vadodara, 390002, Gujarat, India; Department of Genomic Medicine, Lerner Research Institute, Cleveland Clinic, Cleveland, OH, 44195, USA.
Abstract:
Stroke is one of the major causes of death and disabilities worldwide. The rapid induction of cell death by necrosis and apoptosis is observed at the ischemic core, while long lasting apoptosis and brain inflammation continue in the penumbra. The emerging evidence suggests a critical role of mitochondria in acute and chronic inflammation and cell death. Mitochondrial dysfunction may result in the release of mitokines and/or mitochondrial DNA into the cytoplasm and activate multiple cytosolic pathways which in turn triggers inflammation. The role of miRNA, specifically mitochondria-associated miRNAs (mitomiRs) in the regulation of mitochondrial functions is emerging. In the current study, we hypothesized that ischemia-induced mitomiRs may modulate the mitochondrial functions and such alterations under stress conditions may lead to mitochondrial dysfunction and cell death. We have demonstrated the specific pattern of miRNAs associated with mitochondria that is altered under ischemic condition induced by transient middle artery occlusion (tMCAo) in rats. The putative targets of altered miRNAs include several mitochondrial proteins which signifies their involvement in maintaining mitochondrial homeostasis. The alteration of selected miRNAs in mitochondria was further detected in a cellular models when hypoxia was induced using a chemical agent CoCl2, in three cell lines. Two candidate mitomiRs, hsa-miR-149-3p and hsa-miR-204-5p were further analyzed for their functional role during in vitro hypoxia by transfecting mitomiR mimics into cells and determining critical mitochondrial functions and cell viability. The results here emphasize the role of certain mitomiRs as an important modulator of mitochondrial function under the ischemic condition.
Insights
Stroke-induced mitochondrial dysfunction involves altered mitochondria-associated microRNAs (mitomiRs). These mitomiRs regulate mitochondrial function, impacting cell death and inflammation following ischemic events.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Stroke is a leading cause of death and disability globally, characterized by ischemic cell death and inflammation.
- Mitochondria play a crucial role in cell death and inflammation, with dysfunction potentially releasing inflammatory signals.
- Mitochondria-associated microRNAs (mitomiRs) are emerging as regulators of mitochondrial function.
Purpose of the Study:
- To investigate the role of ischemia-induced mitomiRs in modulating mitochondrial function and cell death during stroke.
- To identify specific mitomiRs altered during ischemic conditions and their potential targets in mitochondria.
Main Methods:
- Transient middle artery occlusion (tMCAo) in rats to induce ischemic stroke.
- Analysis of mitochondrial miRNA profiles in ischemic rat brains.
- Hypoxia induction in cell lines using CoCl2 and transfection with mitomiR mimics (hsa-miR-149-3p, hsa-miR-204-5p).
- Assessment of mitochondrial function and cell viability.
Main Results:
- Identified specific alterations in mitochondrial miRNA patterns following ischemic stroke in rats.
- Putative targets of altered mitomiRs include mitochondrial proteins involved in homeostasis.
- Confirmed alterations of selected mitomiRs in cell lines under hypoxic stress.
- Demonstrated functional roles of hsa-miR-149-3p and hsa-miR-204-5p in regulating mitochondrial function and cell viability during hypoxia.
Conclusions:
- Ischemia significantly alters mitochondrial miRNA expression.
- Specific mitomiRs, such as hsa-miR-149-3p and hsa-miR-204-5p, are key modulators of mitochondrial function under ischemic stress.
- These findings highlight mitomiRs as potential therapeutic targets for stroke treatment.
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