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Updated: Jan 4, 2026

Quantification of Atherosclerosis in Mice
Published on: June 12, 2019
Role of reactive oxygen species in atherosclerosis: Lessons from murine genetic models
Anne Negre-Salvayre1, Paul Guerby2, Stephanie Gayral1
1Inserm U-1048, Université de Toulouse, France.
Insights
Reactive oxygen species (ROS) drive atherosclerosis development by promoting LDL oxidation and inflammation. Genetically modified animal studies reveal ROS sources and antioxidant defenses crucial for understanding this cardiovascular disease.
Area of Science:
- Cardiovascular Research
- Molecular Biology
- Pathophysiology
Background:
- Atherosclerosis is a major cause of global cardiovascular mortality.
- Key events include hypercholesterolemia, endothelial dysfunction, and LDL oxidation.
- Reactive oxygen species (ROS) are central to atherogenesis and lesion progression.
Purpose of the Study:
- To review the role of ROS in atherosclerosis.
- To summarize findings from genetically engineered animal models.
- To assess the relevance of ROS and antioxidant defenses in vascular walls.
Main Methods:
- Analysis of genetically modified animal models (transgenic, knockout, etc.).
- Investigation of ROS production and neutralization systems in the vascular wall.
- Review of studies on redox balance mechanisms in atherosclerosis.
Main Results:
- Genetically altered animals provide insights into ROS sources and antioxidant roles.
- Studies highlight the impact of manipulating ROS pathways on atherosclerosis.
- Understanding redox balance is critical for disease progression.
Conclusions:
- ROS play a pivotal role in endothelial dysfunction and LDL oxidation.
- Genetically engineered animal models are essential for studying the oxidative theory of atherosclerosis.
- Targeting ROS and enhancing antioxidant defenses may offer therapeutic strategies.
Abstract:
Atherosclerosis is a multifactorial chronic and inflammatory disease of medium and large arteries, and the major cause of cardiovascular morbidity and mortality worldwide. The pathogenesis of atherosclerosis involves a number of risk factors and complex events including hypercholesterolemia, endothelial dysfunction, increased permeability to low density lipoproteins (LDL) and their sequestration on extracellular matrix in the intima of lesion-prone areas. These events promote LDL modifications, particularly by oxidation, which generates acute and chronic inflammatory responses implicated in atherogenesis and lesion progression. Reactive oxygen species (ROS) (which include both free radical and non-free radical oxygen intermediates), play a key-role at each step of atherogenesis, in endothelial dysfunction, LDL oxidation, and inflammatory events involved in the initiation and development of atherosclerosis lesions. Most advanced knowledge supporting the "oxidative theory of atherosclerosis" i.e. the nature and the cellular sources of ROS and antioxidant defences, as well as the mechanisms involved in the redox balance, is based on the use of genetically engineered animals, i.e. transgenic, genetically modified, or altered for systems producing or neutralizing ROS in the vessels. This review summarizes the results obtained from animals genetically manipulated for various sources of ROS or antioxidant defences in the vascular wall, and their relevance (advance or limitation), for understanding the place and role of ROS in atherosclerosis.
Related Concept Videos
Atherosclerosis I: Introduction
Coronary Artery Disease II: Pathophysiology

