Mitochondrial Oxidative Stress, DNA Damage, and Heart Failure
- 1 September 2006
- journal article
- review article
- Published by Mary Ann Liebert Inc in Antioxidants and Redox Signaling
- Vol. 8 (9-10) , 1737-1744
- https://doi.org/10.1089/ars.2006.8.1737
Abstract
Recent experimental and clinical studies have suggested that oxidative stress is enhanced in heart failure. The production of oxygen radicals is increased in the failing heart, whereas antioxidant enzyme activities are preserved as normal. Mitochondrial electron transport is an enzymatic source of oxygen radical generation and also a target of oxidant-induced damage. Chronic increases in oxygen radical production in the mitochondria can lead to a catastrophic cycle of mitochondrial DNA (mtDNA) damage as well as functional decline, further oxygen radical generation, and cellular injury. Reactive oxygen species induce myocyte hypertrophy, apoptosis, and interstitial fibrosis by activating matrix metalloproteinases. These cellular events play an important role in the development and progression of maladaptive cardiac remodeling and failure. Therefore, mitochondrial oxidative stress and mtDNA damage are good therapeutic targets. Overexpression of mitochondrial transcription factor A (TFAM) could ameliorate the decline in mtDNA copy number and preserve it at a normal level in failing hearts. Consistent with alterations in mtDNA, the decrease in oxidative capacities was also prevented. Therefore, the activation of TFAM expression could ameliorate the pathophysiologic processes seen in myocardial failure. Inhibition of mitochondrial oxidative stress and mtDNA damage could be novel and potentially very effective treatment strategies for heart failure.Keywords
This publication has 56 references indexed in Scilit:
- Depressed mitochondrial transcription factors and oxidative capacity in rat failing cardiac and skeletal musclesThe Journal of Physiology, 2003
- Mitochondrial deficiency and cardiac sudden death in mice lacking the MEF2A transcription factorNature Medicine, 2002
- Transcriptional co-activator PGC-1α drives the formation of slow-twitch muscle fibresNature, 2002
- Greater susceptibility of failing cardiac myocytes to oxygen free radical-mediated injuryCardiovascular Research, 2001
- Mechanisms Controlling Mitochondrial Biogenesis and Respiration through the Thermogenic Coactivator PGC-1Cell, 1999
- Frontotemporal dementia: Neuropil spheroids and presynaptic terminal degenerationAnnals of Neurology, 1998
- Reactive oxygen species produced by macrophage-derived foam cells regulate the activity of vascular matrix metalloproteinases in vitro. Implications for atherosclerotic plaque stability.Journal of Clinical Investigation, 1996
- The epidemiology of heart failure: The Framingham StudyJournal of the American College of Cardiology, 1993
- Buthionine Sulfoximine Reduces the Protective Capacity of Myocytes to Withstand Peroxide-Derived Free Radical AttackJournal of Molecular and Cellular Cardiology, 1993
- Oxygen-Derived Free Radicals in Postischemic Tissue InjuryNew England Journal of Medicine, 1985