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High selenium diet attenuates pressure overload-induced cardiopulmonary oxidative stress, inflammation, and heart
Umesh Bhattarai1, Rui Xu1, Xiaochen He1
1Department of Physiology and Biophysics, School of Medicine, University of Mississippi Medical Center, Jackson, MS, United States.
Insights
A high selenium diet protected mice from heart failure by reducing inflammation and oxidative stress. This dietary intervention offers a potential strategy to combat heart failure and associated lung damage.
Area of Science:
- Cardiovascular Science
- Nutritional Science
- Immunology
Background:
- Selenium deficiency is linked to Keshan disease, a cardiomyopathy causing heart failure (HF) due to immune cell infiltration.
- Systolic overload can induce cardiopulmonary inflammation and HF.
Purpose of the Study:
- To investigate if a high selenium diet can mitigate inflammation and HF induced by systolic overload.
- To assess the impact of high selenium on cardiac and pulmonary remodeling.
Main Methods:
- Male mice underwent transverse aortic constriction (TAC) to induce systolic overload.
- Mice were fed either a high selenium or normal selenium diet.
- Cardiac and pulmonary oxidative stress, inflammation, dysfunction, and remodeling markers were analyzed.
Main Results:
- High selenium diet protected against TAC-induced left ventricular hypertrophy, dysfunction, and increased lung/right ventricular weight.
- It reduced cardiac and pulmonary inflammation, fibrosis, and oxidative stress markers (ROS, 4-HNE, 3-NT).
- High selenium also attenuated immune cell activation, including macrophages and T cells.
Conclusions:
- High selenium diet effectively attenuates cardiac oxidative stress, inflammation, and HF development.
- It also mitigates consequent pulmonary inflammation and remodeling following systolic pressure overload.
- Dietary selenium represents a promising therapeutic avenue for preventing or treating heart failure.
Abstract:
Selenium (Se) deficiency is associated with the development of Keshan disease, a cardiomyopathy associated with massive cardiac immune cell infiltration that can lead to heart failure (HF). The purpose of this study was to determine whether high Se diet can attenuate systolic overload-induced cardiopulmonary inflammation and HF. Briefly, transverse aortic constriction (TAC)-induced cardiopulmonary oxidative stress, inflammation, left ventricular (LV) dysfunction, and pulmonary remodeling were determined in male mice fed with either high Se diet or normal Se diet. High Se diet had no detectable effect on LV structure and function in mice under control conditions, but high Se diet significantly protected mice from TAC-induced LV hypertrophy, dysfunction, increase of lung weight, and right ventricular hypertrophy. As compared with mice treated with normal Se diet, high Se diet also reduced TAC-induced LV cardiomyocyte hypertrophy, fibrosis, leukocyte infiltration, pulmonary inflammation, pulmonary fibrosis, and pulmonary micro-vessel muscularization. In addition, high Se diet significantly ameliorated TAC-induced accumulation and activation of pulmonary F4/80+ macrophages, and activation of dendritic cells. Interestingly, high Se diet also significantly attenuated TAC-induced activation of pulmonary CD4+ and CD8+ T cells. Moreover, we found that TAC caused a significant increase in cardiac and pulmonary ROS production, increases of 4-hydroxynonenal (4-HNE) and 3-nitrotyrosine (3-NT), as well as a compensatory increases of LV glutathione peroxidase 1 (GPX1) and 4 (GPX4) in mice fed with normal Se diet. Above changes were diminished in mice fed with high Se diet. Collectively, these data demonstrated that high Se diet significantly attenuated systolic pressure overload-induced cardiac oxidative stress, inflammation, HF development, and consequent pulmonary inflammation and remodeling.
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