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Updated: Aug 1, 2025

Mitochondrial Respiration Quantification in Yeast Whole Cells
Published on: November 8, 2024
Resveratrol Attenuates the Mitochondrial RNA-Mediated Cellular Response to Immunogenic Stress
Jimin Yoon1, Doyeong Ku1, Minseok Lee1
1Department of Chemical and Biomolecular Engineering, Korea Advanced Institute of Science and Technology (KAIST), Daejeon 34141, Republic of Korea.
Abstract:
Human mitochondria contain a circular genome that encodes 13 subunits of the oxidative phosphorylation system. In addition to their role as powerhouses of the cells, mitochondria are also involved in innate immunity as the mitochondrial genome generates long double-stranded RNAs (dsRNAs) that can activate the dsRNA-sensing pattern recognition receptors. Recent evidence shows that these mitochondrial dsRNAs (mt-dsRNAs) are closely associated with the pathogenesis of human diseases that accompany inflammation and aberrant immune activation, such as Huntington's disease, osteoarthritis, and autoimmune Sjögren's syndrome. Yet, small chemicals that can protect cells from a mt-dsRNA-mediated immune response remain largely unexplored. Here, we investigate the potential of resveratrol (RES), a plant-derived polyphenol with antioxidant properties, on suppressing mt-dsRNA-mediated immune activation. We show that RES can revert the downstream response to immunogenic stressors that elevate mitochondrial RNA expressions, such as stimulation by exogenous dsRNAs or inhibition of ATP synthase. Through high-throughput sequencing, we find that RES can regulate mt-dsRNA expression, interferon response, and other cellular responses induced by these stressors. Notably, RES treatment fails to counter the effect of an endoplasmic reticulum stressor that does not affect the expression of mitochondrial RNAs. Overall, our study demonstrates the potential usage of RES to alleviate the mt-dsRNA-mediated immunogenic stress response.
Insights
Resveratrol (RES) may suppress immune activation triggered by mitochondrial double-stranded RNAs (mt-dsRNAs). This study shows RES can regulate cellular responses to mt-dsRNA stressors, offering potential therapeutic benefits for inflammatory diseases.
Area of Science:
- Mitochondrial biology
- Immunology
- Molecular medicine
Background:
- Mitochondria play a role in innate immunity via mitochondrial double-stranded RNAs (mt-dsRNAs).
- mt-dsRNAs are implicated in inflammatory diseases like Huntington's disease and Sjögren's syndrome.
- Few chemical compounds are known to mitigate mt-dsRNA-induced immune responses.
Purpose of the Study:
- To investigate the potential of resveratrol (RES) in suppressing mt-dsRNA-mediated immune activation.
- To explore RES's effects on cellular responses to mitochondrial RNA expression.
Main Methods:
- Utilized high-throughput sequencing to analyze cellular responses.
- Investigated RES's effects on cells stimulated by exogenous dsRNAs or ATP synthase inhibition.
- Examined RES's impact on endoplasmic reticulum stressors.
Main Results:
- RES treatment reverted downstream responses to immunogenic stressors that increase mitochondrial RNA expression.
- RES modulated mt-dsRNA expression and interferon responses.
- RES did not counteract endoplasmic reticulum stress not involving mitochondrial RNA.
Conclusions:
- Resveratrol shows potential in alleviating immune stress responses mediated by mt-dsRNAs.
- RES may offer a therapeutic strategy for inflammatory conditions linked to mitochondrial dysfunction.
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