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NADPH Oxidases and Oxidative Stress in the Pathogenesis of Atrial Fibrillation
Roberto Ramos-Mondragón1, Andrey Lozhkin2, Aleksandr E Vendrov2
1Department of Pharmacology, University of Michigan, 1150 West Medical Center Drive, 2301 Medical Science Research Building III, Ann Arbor, MI 48109, USA.
Insights
Atrial fibrillation (AF) involves oxidative stress from NADPH oxidases (NOX) and mitochondria. Targeting these pathways offers new treatments for AF progression.
Area of Science:
- Cardiology
- Molecular Biology
- Biochemistry
Background:
- Atrial fibrillation (AF) is a common age-related arrhythmia.
- AF pathogenesis involves reactive oxygen species (ROS) from NADPH oxidases (NOX) and mitochondria.
- Dysregulated NOX activation and mitochondrial dysfunction are key contributors to AF.
Purpose of the Study:
- To review the role of oxidative stress in AF.
- To discuss how NOX and mitochondria contribute to AF initiation and progression.
- To explore therapeutic strategies targeting oxidative stress in AF.
Main Methods:
- Literature review focusing on oxidative stress, NOX, and mitochondria in AF.
- Analysis of mechanisms linking oxidative stress to electrophysiological and structural changes in AF.
- Examination of therapeutic interventions targeting oxidative stress pathways.
Main Results:
- Oxidative stress from NOX and mitochondria drives AF by altering atrial myocyte electrophysiology and structure.
- Mitochondrial metabolic stress occurs during persistent AF, impacting Ca2+ handling and ATP production.
- AF progression involves changes in extracellular matrix, inflammation, ion channels, and myofibril structure.
Conclusions:
- Targeting NOX and mitochondrial oxidative stress presents a therapeutic window for AF.
- Isoform-specific NOX inhibitors and ROS scavengers are potential treatments.
- Improving mitochondrial dynamics and metabolism may treat persistent and permanent AF.
Abstract:
Atrial fibrillation (AF) is the most common type of cardiac arrhythmia and its prevalence increases with age. The irregular and rapid contraction of the atria can lead to ineffective blood pumping, local blood stasis, blood clots, ischemic stroke, and heart failure. NADPH oxidases (NOX) and mitochondria are the main sources of reactive oxygen species in the heart, and dysregulated activation of NOX and mitochondrial dysfunction are associated with AF pathogenesis. NOX- and mitochondria-derived oxidative stress contribute to the onset of paroxysmal AF by inducing electrophysiological changes in atrial myocytes and structural remodeling in the atria. Because high atrial activity causes cardiac myocytes to expend extremely high energy to maintain excitation-contraction coupling during persistent AF, mitochondria, the primary energy source, undergo metabolic stress, affecting their morphology, Ca2+ handling, and ATP generation. In this review, we discuss the role of oxidative stress in activating AF-triggered activities, regulating intracellular Ca2+ handling, and functional and anatomical reentry mechanisms, all of which are associated with AF initiation, perpetuation, and progression. Changes in the extracellular matrix, inflammation, ion channel expression and function, myofibril structure, and mitochondrial function occur during the early transitional stages of AF, opening a window of opportunity to target NOX and mitochondria-derived oxidative stress using isoform-specific NOX inhibitors and mitochondrial ROS scavengers, as well as drugs that improve mitochondrial dynamics and metabolism to treat persistent AF and its transition to permanent AF.
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