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Cardiovascular Effects of Environmental Metal Antimony: Redox Dyshomeostasis as the Key Pathogenic Driver
Yi Tan1,2,3, Karim El-Kersh4, Sara E Watson3,5
1Department of Pediatrics, Pediatric Research Institute, University of Louisville School of Medicine, Louisville, Kentucky, USA.
Insights
Antimony exposure may contribute to cardiovascular diseases (CVDs) through redox imbalance. Further research is needed to understand antimony
Area of Science:
- Environmental toxicology
- Cardiovascular medicine
- Oxidative stress research
Background:
- Cardiovascular diseases (CVDs) are a leading global cause of death, linked to lifestyle and aging.
- Environmental factors, including nonessential metals, are increasingly implicated in CVDs.
- Antimony, a less-studied environmental metal, warrants investigation for its cardiovascular effects.
Purpose of the Study:
- To review current evidence on antimony's role in cardiovascular disease pathogenesis.
- To explore potential mechanisms, focusing on redox dyshomeostasis.
- To identify knowledge gaps requiring further preclinical and mechanistic research.
Main Methods:
- Literature review of epidemiological and mechanistic studies on antimony and CVDs.
- Analysis of evidence for antimony-induced redox dyshomeostasis.
- Identification of research needs in mitochondrial dysfunction and epigenetic regulation.
Main Results:
- Epidemiological studies suggest antimony negatively impacts the cardiovascular system.
- Antimony-mediated redox dyshomeostasis is a likely mechanism in CVD pathogenesis.
- Evidence for antimony's sole contribution and specific mechanisms remains limited.
Conclusions:
- Antimony is a potential environmental contributor to cardiovascular diseases.
- Redox dyshomeostasis is a key proposed mechanism.
- Further preclinical and mechanistic studies are essential to confirm antimony's role and elucidate its effects on mitochondrial function and epigenetics.
Abstract:
Cardiovascular diseases (CVDs) are the leading cause of death worldwide, which may be due to sedentary lifestyles with less physical activity and over nutrition as well as an increase in the aging population; however, the contribution of pollutants, environmental chemicals, and nonessential metals to the increased and persistent CVDs needs more attention and investigation. Among environmental contaminant nonessential metals, antimony has been less addressed. Among environmental contaminant nonessential metals, several metals such as lead, arsenic, and cadmium have been associated with the increased risk of CVDs. Antimony has been less addressed, but its potential link to CVDs is being gradually recognized. Several epidemiological studies have revealed the significant deleterious effects of antimony on the cardiovascular system in the absence or presence of other nonessential metals. There has been less focus on whether antimony alone can contribute to the pathogenesis of CVDs and the proposed mechanisms of such possible effects. This review addresses this gap in knowledge by presenting the current available evidence that highlights the potential role of antimony in the pathogenesis of CVDs, most likely via antimony-mediated redox dyshomeostasis. More direct evidence from preclinical and mechanistic studies is urgently needed to evaluate the possible roles of antimony in mitochondrial dysfunction and epigenetic regulation in CVDs. Antioxid. Redox Signal. 38, 803-823.
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