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Updated: Aug 24, 2026

Quantification of Atherosclerosis in Mice
Published on: June 12, 2019
Anti-atherosclerotic effects of vitamin E--myth or reality?
Adelina Munteanu1, J-M Zingg, A Azzi
1Institute of Biochemistry and Molecular Biology, University of Bern, Bern, Switzerland.
Insights
Vitamin E prevents atherosclerosis by inhibiting key cellular processes, not just by its antioxidant effects. Its molecular actions on enzymes and gene expression offer new strategies for cardiovascular disease prevention.
Area of Science:
- Cardiovascular Research
- Nutritional Science
- Molecular Biology
Background:
- Atherosclerosis and its complications are leading global causes of death.
- Risk factors include hypertension, diabetes, smoking, and diet; genetic factors also play a role.
- Vitamin E has been studied for its potential to prevent atherosclerosis.
Purpose of the Study:
- To explore the non-antioxidant mechanisms of vitamin E in preventing atherosclerosis.
- To identify specific molecular interactions of vitamin E involved in atherosclerosis progression.
- To elucidate how vitamin E influences cellular processes and gene expression related to atherosclerosis.
Main Methods:
- Review of epidemiological studies and intervention trials involving vitamin E.
- Analysis of cellular-level effects of vitamin E on smooth muscle cells, platelets, and monocytes.
- Investigation of vitamin E's interactions with enzymes and modulation of gene expression relevant to atherosclerosis.
Main Results:
- Vitamin E inhibits smooth muscle cell proliferation, platelet aggregation, monocyte adhesion, and oxidized LDL uptake.
- These effects are attributed to precise molecular actions, not solely antioxidant activity.
- Vitamin E influences enzymes like PKC, COX-2, and nitric oxide synthase, and modulates genes such as scavenger receptors and cytokines.
Conclusions:
- Vitamin E's protective effects against atherosclerosis stem from specific molecular interactions.
- These non-antioxidant actions target key cellular pathways implicated in atherosclerosis progression.
- Understanding these mechanisms can lead to improved strategies for preventing cardiovascular disease.
Abstract:
Atherosclerosis and its complications such as coronary heart disease, myocardial infarction and stroke are the leading causes of death in the developed world. High blood pressure, diabetes, smoking and a diet high in cholesterol and lipids clearly increase the likelihood of premature atherosclerosis, albeit other factors, such as the individual genetic makeup, may play an additional role. Several epidemiological studies and intervention trials have been performed with vitamin E, and some of them showed that it prevents atherosclerosis. For a long time, vitamin E was assumed to act by decreasing the oxidation of LDL, a key step in atherosclerosis initiation. However, at the cellular level, vitamin E acts by inhibition of smooth muscle cell proliferation, platelet aggregation, monocyte adhesion, oxLDL uptake and cytokine production, all reactions implied in the progression of atherosclerosis. Recent research revealed that these effects are not the result of the antioxidant activity of vitamin E, but rather of precise molecular actions of this compound. It is assumed that specific interactions of vitamin E with enzymes and proteins are at the basis of its non-antioxidant effects. Vitamin E influences the activity of several enzymes (e.g. PKC, PP2A, COX-2, 5-lipooxygenase, nitric oxide synthase, NADPH-oxidase, superoxide dismutase, phopholipase A2) and modulates the expression of genes that are involved in atherosclerosis (e.g. scavenger receptors, integrins, selectins, cytokines, cyclins). These interactions promise to reveal the biological properties of vitamin E and allow designing better strategies for the protection against atherosclerosis progression.
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