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Utilizing Thermal Shift Assay to Probe Substrate Binding to Selenoprotein O
Published on: August 9, 2024
Selenistasis: epistatic effects of selenium on cardiovascular phenotype
Jacob Joseph1, Joseph Loscalzo
1Department of Medicine, VA Boston Healthcare System, Boston, MA 02132, USA. Jacob.joseph@va.gov
Insights
Selenium
Area of Science:
- Cardiovascular Biology
- Nutritional Biochemistry
- Oxidative Stress
Background:
- Selenium is crucial for cardiovascular function, with deficiency linked to heart disease.
- Its primary role is antioxidant defense via selenoproteins like glutathione peroxidases.
- Selenium compounds have complex metabolic fates beyond selenoprotein expression.
Purpose of the Study:
- To explore the complex role of selenium in cardiovascular health.
- To understand why preclinical benefits of selenium supplementation aren't consistently seen in clinical trials.
- To investigate selenium's dual effects on redox balance and methylation.
Main Methods:
- Review of preclinical and clinical studies on selenium supplementation and cardiovascular disease.
- Analysis of selenium's biochemical functions, including antioxidant and methylation effects.
- Consideration of systems biology approaches to selenium metabolism.
Main Results:
- Preclinical benefits of selenium in cardiovascular models are not consistently replicated in human trials.
- Unselective selenium supplementation may be harmful.
- Selenium's effects on redox and methylation can explain biphasic dose-dependent responses.
Conclusions:
- The complex biology of selenium, including its antioxidant and methylation roles, complicates its therapeutic use in cardiovascular disease.
- Optimizing selenium status requires a nuanced understanding beyond simple supplementation.
- Systems biology approaches are needed to harness selenium's potential for cardiovascular health.
Abstract:
Although selenium metabolism is intricately linked to cardiovascular biology and function, and deficiency of selenium is associated with cardiac pathology, utilization of selenium in the prevention and treatment of cardiovascular disease remains an elusive goal. From a reductionist standpoint, the major function of selenium in vivo is antioxidant defense via its incorporation as selenocysteine into enzyme families such as glutathione peroxidases and thioredoxin reductases. In addition, selenium compounds are heterogeneous and have complex metabolic fates resulting in effects that are not entirely dependent on selenoprotein expression. This complex biology of selenium in vivo may underlie the fact that beneficial effects of selenium supplementation demonstrated in preclinical studies using models of oxidant stress-induced cardiovascular dysfunction, such as ischemia-reperfusion injury and myocardial infarction, have not been consistently observed in clinical trials. In fact, recent studies have yielded data that suggest that unselective supplementation of selenium may, indeed, be harmful. Interesting biologic actions of selenium are its simultaneous effects on redox balance and methylation status, a combination that may influence gene expression. These combined actions may explain some of the biphasic effects seen with low and high doses of selenium, the potentially harmful effects seen in normal individuals, and the beneficial effects noted in preclinical studies of disease. Given the complexity of selenium biology, systems biology approaches may be necessary to reach the goal of optimization of selenium status to promote health and prevent disease.
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