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Reactive Oxygen Species, Endoplasmic Reticulum Stress and Mitochondrial Dysfunction: The Link with Cardiac Arrhythmogenesis.

Published version
Peer-reviewed

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Authors

Tse, Gary 
Yan, Bryan P 
Chan, Yin WF 
Tian, Xiao Yu 
Huang, Yu 

Abstract

BACKGROUND: Cardiac arrhythmias represent a significant problem globally, leading to cerebrovascular accidents, myocardial infarction, and sudden cardiac death. There is increasing evidence to suggest that increased oxidative stress from reactive oxygen species (ROS), which is elevated in conditions such as diabetes and hypertension, can lead to arrhythmogenesis. METHOD: A literature review was undertaken to screen for articles that investigated the effects of ROS on cardiac ion channel function, remodeling and arrhythmogenesis. RESULTS: Prolonged endoplasmic reticulum stress is observed in heart failure, leading to increased production of ROS. Mitochondrial ROS, which is elevated in diabetes and hypertension, can stimulate its own production in a positive feedback loop, termed ROS-induced ROS release. Together with activation of mitochondrial inner membrane anion channels, it leads to mitochondrial depolarization. Abnormal function of these organelles can then activate downstream signaling pathways, ultimately culminating in altered function or expression of cardiac ion channels responsible for generating the cardiac action potential (AP). Vascular and cardiac endothelial cells become dysfunctional, leading to altered paracrine signaling to influence the electrophysiology of adjacent cardiomyocytes. All of these changes can in turn produce abnormalities in AP repolarization or conduction, thereby increasing likelihood of triggered activity and reentry. CONCLUSION: ROS plays a significant role in producing arrhythmic substrate. Therapeutic strategies targeting upstream events include production of a strong reducing environment or the use of pharmacological agents that target organelle-specific proteins and ion channels. These may relieve oxidative stress and in turn prevent arrhythmic complications in patients with diabetes, hypertension, and heart failure.

Description

This is the final version of the article. It first appeared from Frontiers via http://dx.doi.org/10.3389/fphys.2016.00313

Keywords

arrhythmia, conduction, endoplasmic reticulum, mitochondria, oxidative stress, reactive oxygen species, remodeling, repolarization

Journal Title

Front Physiol

Conference Name

Journal ISSN

1664-042X
1664-042X

Volume Title

7

Publisher

Frontiers Media SA
Sponsorship
Biotechnology and Biological Sciences Research Council (Doctoral Training Award), Croucher Foundation of Hong Kong