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Inflammation in the vascular bed: importance of vitamin C
1Department of Medicine, Vanderbilt University School of Medicine, Nashville, TN 37232-6303, USA.
Insights
Vitamin C (ascorbic acid) may prevent early atherosclerosis by protecting vascular cells from oxidant stress. Research suggests it benefits endothelial cells, smooth muscle cells, and macrophages, potentially reducing cardiovascular disease risk.
Area of Science:
- Cardiovascular Science
- Nutritional Science
- Cell Biology
Background:
- Atherosclerosis remains a leading cause of mortality despite advances.
- Oxidant stress from inflammation is a key contributor to residual risk.
- Previous antioxidant trials have yielded negative results, possibly due to timing.
Purpose of the Study:
- To review the role of vitamin C (ascorbic acid) in preventing early inflammatory changes in atherosclerosis.
- To examine ascorbate's function in endothelial cells, vascular smooth muscle cells, and macrophages.
- To assess the potential of vitamin C in mitigating early atherosclerotic processes.
Main Methods:
- Review of in vitro, cellular, and animal data on ascorbate's role in atherosclerosis.
- Focus on ascorbate chemistry, recycling, and function in key vascular cell types.
- Analysis of how vitamin C affects the inflammatory process in atherosclerosis.
Main Results:
- In endothelial cells, ascorbate prevents dysfunction, aids collagen synthesis, and promotes proliferation.
- In smooth muscle cells, ascorbate inhibits dedifferentiation and proliferation in damaged areas.
- In macrophages, ascorbate reduces oxidant stress, may decrease oxidized LDL uptake, and enhances function.
Conclusions:
- Available evidence supports a beneficial role for vitamin C in the early stages of atherosclerosis.
- Further studies in cell types and animal models are warranted.
- Vitamin C may be a promising therapeutic agent for early atherosclerotic intervention.
Abstract:
Despite decreases in atherosclerotic coronary vascular disease over the last several decades, atherosclerosis remains a major cause of mortality in developed nations. One possible contributor to this residual risk is oxidant stress, which is generated by the inflammatory response of atherosclerosis. Although there is a wealth of in vitro, cellular, and animal data supporting a protective role for antioxidant vitamins and nutrients in the atherosclerotic process, the best clinical trials have been negative. This may be due to the fact that antioxidant therapies are applied "too little and too late." This review considers the role of vitamin C, or ascorbic acid in preventing the earliest inflammatory changes in atherosclerosis. It focuses on the three major vascular cell types involved in atherosclerosis: endothelial cells, vascular smooth muscle cells, and macrophages. Ascorbate chemistry, recycling, and function are described for these cell types, with emphasis on whether and how the vitamin might affect the inflammatory process. For endothelial cells, ascorbate helps to prevent endothelial dysfunction, stimulates type IV collagen synthesis, and enhances cell proliferation. For vascular smooth muscle cells, ascorbate inhibits dedifferentiation, recruitment, and proliferation in areas of vascular damage. For macrophages, ascorbate decreases oxidant stress related to their activation, decreases uptake and degradation of oxidized LDL in some studies, and enhances several aspects of their function. Although further studies of ascorbate function in these cell types and in novel animal models are needed, available evidence generally supports a salutary role for this vitamin in ameliorating the earliest stages of atherosclerosis.
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