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Published on: February 25, 2016
Copper deficiency and cardiovascular disease: role of peroxidation, glycation, and nitration
1U.S. Department of Agriculture, Agricultural Research Service, Grand Forks Human Nutrition Research Center, ND 58202, USA. jsaari@gfhnrc.ars.usda.gov
Insights
Dietary copper deficiency harms cardiovascular health, leading to high blood pressure and inflammation. It damages heart and blood vessels through oxidative stress, glycation, and nitration, potentially worsening aging and diabetes effects.
Area of Science:
- Cardiovascular physiology
- Nutritional biochemistry
Background:
- Dietary copper deficiency is linked to numerous cardiovascular issues.
- These include systemic effects like hypertension and inflammation, and organ-specific damage to the heart and vasculature.
Purpose of the Study:
- To elucidate the mechanisms underlying cardiovascular deficits in copper deficiency.
- To investigate the roles of peroxidation, glycation, and nitration in these defects.
Main Methods:
- The study reviews existing literature on copper deficiency and cardiovascular pathology.
- It focuses on the implicated damage mechanisms: peroxidation, glycation, and nitration.
Main Results:
- Copper deficiency impairs heart contractility, vascular function, and blood cell integrity.
- Three key damage pathways—peroxidation, glycation, and nitration—are implicated.
- These pathways may interact and exacerbate conditions like diabetes and aging.
Conclusions:
- Copper deficiency significantly compromises cardiovascular structure and function.
- Nonspecific mechanisms like peroxidation, glycation, and nitration are critical contributors to damage.
- Copper deficiency may worsen age-related and diabetes-related cardiovascular complications.
Abstract:
Dietary copper deficiency causes a variety of cardiovascular deficits. Systemic effects include high blood pressure, enhancement of inflammation, anemia, reduced blood clotting, and possibly arteriosclerosis. Effects on specific organs or tissues include weakened structural integrity of the heart and blood vessels, impairment of energy use by the heart, reduced ability of the heart to contract, altered ability of blood vessels to control their diameter and grow, and altered structure and function of circulating blood cells. In some instances, the cause of a defect can be directly attributed to reduced activity of a specific copper-dependent enzyme. However, three nonspecific mechanisms of damage have been implicated in cardiovascular defects of copper deficiency. They are peroxidation, the interaction of oxygen-derived free radicals with lipids and proteins (possibly DNA); glycation, the nonenzymatic glycosylation of proteins; and nitration, the interaction of nitric oxide and its metabolites with peptides and proteins. Though independently these mechanisms present great potential for damage, the possibility that they may interact presents an added reason for concern. Furthermore, the fact that at least two of these mechanisms are associated with diabetes and aging suggests that copper deficiency may exacerbate deficits associated with these two conditions.
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