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Targeting antioxidants to mitochondria: a potential new therapeutic strategy for cardiovascular diseases
1Centro Nacional de Investigaciones Cardiovasculares, Melchor Fernandez Almagro, 3, Madrid, Spain. vmvictor@cnic.es
Abstract:
Mitochondria produce large amounts of free radicals and play an important role in the life and death of a cell. Thus, mitochondrial oxidative damage and dysfunction contribute to a number of cell pathologies that manifest themselves through a range of conditions including ischemia-reperfusion injury, sepsis, diabetes, atherosclerosis and, consequently, cardiovascular diseases (CVD). In fact, endothelial dysfunction, characterized by a loss of nitric oxide (NO) bioactivity, occurs early on in the development of atherosclerosis, and determines future vascular complications. Although the molecular mechanisms responsible for mitochondria-mediated disease processes are not yet clear, oxidative stress seems to play an important role. This review considers the process of CVD from a mitochondrial perspective. Accordingly, strategies for the targeted delivery of antioxidants to mitochondria are being developed. In this review, we will provide a summary of the following areas: the cellular metabolism of reactive oxygen species (ROS) and its role in pathophysiological processes such as CVD; currently available antioxidants and possible reasons for their efficacy and inefficacy in ameliorating oxidative stress-mediated diseases; recent developments in mitochondrially-targeted antioxidants that concentrate on the matrix-facing surface of the inner mitochondrial membrane and therefore protect against mitochondrial oxidative damage, and their therapeutic potential for future treatment of CVDs. More pre-clinical and clinical studies, however, are necessary in order to evaluate the effectiveness and toxicity of mitochondrially-targeted antioxidants.
Insights
Mitochondria generate free radicals, contributing to cell damage and diseases like cardiovascular disease (CVD). Targeted antioxidants delivered to mitochondria show promise for treating these conditions, but require further study.
Area of Science:
- Mitochondrial biology
- Cardiovascular pathophysiology
- Oxidative stress research
Background:
- Mitochondria are key producers of free radicals, influencing cellular life and death.
- Mitochondrial dysfunction and oxidative damage are implicated in various pathologies, including cardiovascular diseases (CVD).
- Endothelial dysfunction, marked by reduced nitric oxide (NO) bioactivity, is an early event in atherosclerosis.
Purpose of the Study:
- To review cardiovascular disease (CVD) from a mitochondrial perspective.
- To explore the role of reactive oxygen species (ROS) in CVD.
- To summarize current and emerging antioxidant strategies targeting mitochondria for CVD treatment.
Main Methods:
- Literature review focusing on mitochondrial roles in CVD.
- Analysis of cellular reactive oxygen species (ROS) metabolism in disease.
- Evaluation of existing and novel mitochondrially-targeted antioxidants.
Main Results:
- Oxidative stress is a significant factor in mitochondria-mediated disease processes.
- Mitochondria-targeted antioxidants concentrate on the inner mitochondrial membrane to prevent oxidative damage.
- Current antioxidants have variable efficacy, necessitating targeted approaches.
Conclusions:
- Mitochondrial oxidative damage contributes to CVD development.
- Mitochondrially-targeted antioxidants offer therapeutic potential for CVD.
- Further pre-clinical and clinical studies are essential to validate the effectiveness and safety of these targeted antioxidants.
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