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Published on: October 12, 2017
Low-density lipoprotein-cholesterol-induced endothelial dysfunction and oxidative stress: the role of statins
Nerea Hermida1, Jean-Luc Balligand
11 Pole of Pharmacology and Therapeutics (FATH), Institut de Recherche Experimentale et Clinique (IREC), Université catholique de Louvain , Brussels, Belgium .
Insights
Statins reduce cardiovascular disease (CVD) by lowering LDL-cholesterol and through other mechanisms like modulating oxidative stress. Further research into these pathways can reveal new therapeutic targets for CVD.
Area of Science:
- Cardiovascular Medicine
- Pharmacology
Background:
- Endothelial dysfunction is a key early step in atherosclerosis and a risk factor for cardiovascular events.
- Elevated LDL-cholesterol contributes to endothelial dysfunction and complications via oxidative stress, impacting nitric oxide signaling.
Purpose of the Study:
- To explore the mechanisms of statin action beyond LDL-cholesterol reduction.
- To identify novel therapeutic targets for cardiovascular diseases (CVD).
Main Methods:
- Review of clinical and experimental studies on statin mechanisms.
- Analysis of evidence regarding ancillary effects of statins on cardiovascular biology.
Main Results:
- Statins reduce CVD morbidity and mortality, with effects extending beyond LDL-cholesterol reduction.
- Statins modulate oxidative stress, suggesting broader impacts on cardiovascular health.
Conclusions:
- Understanding statins' ancillary effects, such as oxidative stress modulation, enhances knowledge of their mechanisms.
- Further research into non-lipid-mediated pathways, including epigenetic regulation and cell metabolism, is crucial for a comprehensive approach to CVD pathogenesis.
Significance:
Cardiovascular diseases (CVD) represent a major public health burden. High low-density lipoprotein (LDL)-cholesterol is a recognized pathogenic factor for atherosclerosis, and its complications and statins represent the most potent and widely used therapeutic approach to prevent and control these disorders.
Recent Advances:
A number of clinical and experimental studies concur to identify endothelial dysfunction as a primary step in the development of atherosclerosis, as well as a risk factor for subsequent clinical events. Oxidant stress resulting from chronic elevation of plasma LDL-cholesterol (LDL-chol) is a major contributor to both endothelial dysfunction and its complications, for example, through alterations of endothelial nitric oxide signaling.
Critical Issues:
Statin treatment reduces morbidity and mortality of CVD, but increasing evidence questions that this is exclusively through reduction of plasma LDL-chol. The identification of ancillary effects on (cardio)vascular biology, for example, through their modulation of oxidative stress, will not only increase our understanding of their mechanisms of action, with a potential broadening of their indication(s), but also lead to the identification of new molecular targets for future therapeutic developments in CVD.
Future Directions:
Further characterization of molecular pathways targeted by statins, for example, not directly mediated by changes in plasma lipid concentrations, should enable a more comprehensive approach to the pathogenesis of (cardio)vascular disease, including, for example, epigenetic regulation and fine tuning of cell metabolism.
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