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Published on: June 29, 2022
Oxidative Stress, Mitochondrial Homeostasis, and Sirtuins in Atrial Fibrillation
Jan Krekora1, Elzbieta Pawlowska2, Marcin Derwich2
12nd Department of Cardiology, Medical University of Lodz, 92-213 Lodz, Poland.
Abstract:
Atrial fibrillation (AF) is the most common cardiac arrhythmia. Yet, its treatment has serious challenges and is unsuccessful in a considerable fraction of patients. One reason may be a limited understanding of the molecular mechanisms underlying AF. Recent studies suggest that oxidative stress is involved in AF pathogenesis. Enhanced oxidative stress is largely determined by disrupted mitochondrial homeostasis, as cardiomyocytes heavily rely on mitochondrial energy production and calcium transfer between mitochondria and the sarcoplasmic reticulum. Atrial fibrillation involves metabolic, structural, and electrical remodeling, all of which are influenced by mitochondrial mechanisms. Mitochondrial homeostasis is controlled by mitochondrial quality control (mtQC), which is a multi-pathway mechanism to maintain integrity and functionality of mitochondria. Impaired mtQC may result in disturbed mitochondria-related calcium handling, decreased energy production, mitochondria-related inflammation and fibrosis, and impaired mitophagy. Sirtuins (SIRTs) are a family of seven members of histone deacetylases which have antioxidant properties, and three of them are localized to mitochondria. Therefore, at least some SIRTs may ameliorate enhanced oxidative stress related to damaged mitochondria. SIRTs have shown potential to improve AF outcomes in studies on AF patients and animal models. Therefore, SIRTs may have potential to ameliorate AF by decreasing oxidative stress and restoring mitochondrial homeostasis disrupted in AF. In this narrative review, we provide information on how mitochondrial dysfunctions, expressed as a disturbance in mtQC, contribute to AF through oxidative stress, calcium handling abnormalities, energy deficiency, inflammation and fibrosis, and genetic changes. In addition, we present the protective potential of sirtuins in AF.
Insights
Atrial fibrillation (AF) involves mitochondrial dysfunction and oxidative stress. Sirtuins (SIRTs) show promise in restoring mitochondrial health and potentially treating AF by reducing oxidative stress.
Area of Science:
- Cardiovascular Research
- Mitochondrial Biology
- Molecular Medicine
Background:
- Atrial fibrillation (AF) is a common arrhythmia with challenging treatments, partly due to incomplete understanding of its molecular basis.
- Oxidative stress and disrupted mitochondrial homeostasis are increasingly implicated in AF pathogenesis.
- Mitochondrial quality control (mtQC) is crucial for cardiomyocyte function, and its impairment contributes to AF pathology.
Purpose of the Study:
- To review the role of mitochondrial dysfunction, specifically impaired mtQC, in AF development.
- To explore how mitochondrial disturbances contribute to AF through oxidative stress, calcium handling, energy deficits, inflammation, and fibrosis.
- To present the potential therapeutic benefits of sirtuins (SIRTs) in ameliorating AF.
Main Methods:
- This is a narrative review synthesizing current research on AF, mitochondrial function, and sirtuins.
- Literature search focused on studies investigating mitochondrial mechanisms, mtQC, oxidative stress, and sirtuins in AF.
- Analysis of existing data on the impact of mitochondrial dysfunction and the protective effects of SIRTs.
Main Results:
- Impaired mtQC leads to mitochondrial dysfunction in AF, causing oxidative stress, abnormal calcium handling, reduced energy production, inflammation, and fibrosis.
- Sirtuins, particularly those localized in mitochondria, possess antioxidant properties that can counteract oxidative stress.
- Studies in AF patients and animal models suggest SIRTs can improve outcomes.
Conclusions:
- Mitochondrial dysfunction, driven by impaired mtQC, is a significant contributor to AF pathophysiology.
- Sirtuins hold therapeutic potential for AF by restoring mitochondrial homeostasis and reducing oxidative stress.
- Targeting mitochondrial pathways, including mtQC and SIRTs, may offer novel strategies for AF treatment.
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