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Published on: December 21, 2011
Oxidative Stress Triggers Defective Autophagy in Endothelial Cells: Role in Atherothrombosis Development
Cristina Carresi1, Rocco Mollace1, Roberta Macrì1
1Research for Food Safety & Health IRC-FSH, Department of Health Sciences, University Magna Graecia, 88100 Catanzaro, Italy.
Insights
Oxidative stress disrupts antioxidant defenses, promoting atherothrombosis. Defective autophagy exacerbates this, highlighting the autophagic pathway as a therapeutic target for endothelial cell dysfunction.
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- Pathophysiology
Background:
- Atherothrombosis is a major global cause of death, driven by lifestyle and genetic factors.
- Oxidative stress and antioxidant imbalance initiate pro-oxidant states, fueling atherothrombotic processes.
- Endothelial cell dysfunction and impaired autophagy are increasingly recognized in atherothrombosis pathogenesis.
Purpose of the Study:
- To review the role of oxidative stress-induced autophagy in endothelial cell dysfunction.
- To explore the link between autophagy, oxidative stress, and atherothrombosis development.
- To identify potential therapeutic targets within the autophagic pathway.
Main Methods:
- Literature review focusing on oxidative stress, autophagy, and endothelial cell function.
- Analysis of molecular mechanisms linking reactive oxygen species (ROS) and autophagy.
- Synthesis of evidence on the contribution of impaired autophagy to atherothrombosis.
Main Results:
- Defective autophagy correlates with increased reactive oxygen species (ROS) production.
- Oxidative stress modulates autophagy, impacting endothelial cell (EC) function.
- This interplay is central to the development and progression of atherothrombosis.
Conclusions:
- The autophagic pathway, influenced by oxidative stress, plays a critical role in endothelial dysfunction.
- Targeting autophagy presents a promising strategy for managing atherothrombosis.
- Further research into autophagy modulation could yield novel atherothrombotic therapies.
Abstract:
Atherothrombosis, a multifactorial and multistep artery disorder, represents one of the main causes of morbidity and mortality worldwide. The development and progression of atherothrombosis is closely associated with age, gender and a complex relationship between unhealthy lifestyle habits and several genetic risk factors. The imbalance between oxidative stress and antioxidant defenses is the main biological event leading to the development of a pro-oxidant phenotype, triggering cellular and molecular mechanisms associated with the atherothrombotic process. The pathogenesis of atherosclerosis and its late thrombotic complications involve multiple cellular events such as inflammation, endothelial dysfunction, proliferation of vascular smooth muscle cells (SMCs), extracellular matrix (ECM) alterations, and platelet activation, contributing to chronic pathological remodeling of the vascular wall, atheromatous plague formation, vascular stenosis, and eventually, thrombus growth and propagation. Emerging studies suggest that clotting activation and endothelial cell (EC) dysfunction play key roles in the pathogenesis of atherothrombosis. Furthermore, a growing body of evidence indicates that defective autophagy is closely linked to the overproduction of reactive oxygen species (ROS) which, in turn, are involved in the development and progression of atherosclerotic disease. This topic represents a large field of study aimed at identifying new potential therapeutic targets. In this review, we focus on the major role played by the autophagic pathway induced by oxidative stress in the modulation of EC dysfunction as a background to understand its potential role in the development of atherothrombosis.
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